Inflation method for air cushion body, inflation system of same, and inflation apparatus thereof
11402066 · 2022-08-02
Inventors
- Jiaying ZHANG (Shanghai, CN)
- Huiping Nie (Shanghai, CN)
- Yupeng Zhang (Shanghai, CN)
- Jiulong Hu (Shanghai, CN)
Cpc classification
B65D81/03
PERFORMING OPERATIONS; TRANSPORTING
B65D81/052
PERFORMING OPERATIONS; TRANSPORTING
B65D85/30
PERFORMING OPERATIONS; TRANSPORTING
F17C5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F17C5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D81/03
PERFORMING OPERATIONS; TRANSPORTING
F17C5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D81/05
PERFORMING OPERATIONS; TRANSPORTING
B31D5/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An inflation method for an air cushion body which includes one or more air storing units formed by at least two air cell films, an inflation valve formed by at least two valve films, and an inflation unit integrally connected with the air storing units and formed by two inflation end portions overlapping with each other to define an inflation channel, includes the following steps: sealing off two ends of the inflation channel to form an inflatable cavity, filling air into the inflatable cavity where the air that enters the inflatable cavity enters the corresponding air storing units through the air inlet channel, and releasing the two ends of the inflation channel upon completion of inflation to acquire the air cushion body that is inflated.
Claims
1. An inflation apparatus for an air cushion body, wherein the air cushion body comprises one or more air storing units formed by at least two air cell films, an inflation valve formed by at least two valve films, and an inflation unit integrally connected with the one or more air storing units and formed by two inflation end portions overlapping with each other, wherein an inflation channel is formed between the two inflation end portions, wherein the inflation valve forms at least one air inlet channel for inflating the corresponding air storing units, wherein the inflation apparatus comprises: an inflation pipe made of a rigid material and adapted for being connected to an air supply device, wherein the inflation pipe comprises an inflating portion which comprises a main portion having at least one vent hole and a sealed distal end portion extended from the main portion; and a clamping device which comprises a first clamping unit, a second clamping unit, a clamping power source, and at least one holding unit, wherein the inflating portion of the inflation pipe is positioned between the first clamping unit and the second clamping unit, wherein said first clamping unit and said second clamping unit move towards or away from each other under effect of the clamping power source, so as to close or open two ends of the inflation channel of the air cushion body, wherein when the main portion of the inflating portion is arranged in the inflation channel during an inflating process, the two ends of the inflation channel are sealed off by the clamping device to form an inflatable cavity, wherein air is inflated into the inflatable cavity through the at least one vent hole, whereby the air entered the inflatable cavity enters the corresponding air storing units through the at least one air inlet channel, so as to inflate the air cushion body, wherein the first clamping unit comprises two spaced first clamping portions, wherein the second clamping unit comprises two spaced second clamping portions coordinating with the two spaced first clamping portions respectively, wherein each of the first clamping portions has a first clamping surface and a first clamping groove arranged on a bottom thereof, wherein each of the second clamping portions has a second clamping surface and a second clamping groove arranged on a top thereof, wherein in a clamped state, the first clamping portions and the second clamping portions clamp two ends of the inflation unit with the first clamping surfaces and the second clamping surfaces in response to an actuation of the clamping power source, so as to form an entire clamping groove by each of the first clamping groove and the second clamping groove to accommodate the sealed distal end of the inflation pipe, wherein the first clamping unit further comprises a first connecting portion connecting the two first clamping portions, wherein the second clamping unit further comprises a second connecting portion connecting the two second clamping portions, wherein the clamping power source comprises two clamping air cylinders and two driving portions connected with the two clamping air cylinders, wherein the two driving portions are respectively connected with the first connecting portion and the second connecting portion, wherein said two clamping air cylinders drive said first clamping unit and said second clamping unit of said first clamping portion and said second clamping portion respectively to move towards or away from each other, wherein the at least one holding unit comprises two holding blocks and a guide rod arranged between the two holding blocks, wherein each of the first clamping unit and the second clamping unit further has a top-to-bottom through guide rod hole in each of the first connecting portion and the second connecting portion for the guide rod to pass through respectively, such that both the first clamping unit and the second clamping unit are located between the two holding blocks and the two holding blocks are further affixed on the mounting plate.
2. An inflation apparatus for one or more air cushion bodies, wherein each of the one or more air cushion bodies comprises one or more air storing units formed by at least two air cell films, an inflation valve formed by at least two valve films, and an inflation unit integrally connected with the one or more air storing units and formed by two inflation end portions overlapping with each other, wherein an inflation channel is formed between the two inflation end portions, wherein the inflation valve forms at least one air inlet channel for inflating the corresponding air storing units, wherein the inflation apparatus comprises: an inflation pipe made of a rigid material and adapted for being connected to an air supply device, wherein the inflation pipe comprises an inflating portion which comprises a main portion having at least one vent hole and a sealed distal end portion extended from the main portion; a clamping device, wherein when the main portion of said inflating portion is arranged in the inflation channel during an inflating process, two ends of the inflation channel are sealed off by the clamping device to form an inflatable cavity, wherein air is inflated into the inflatable cavity through the at least one vent hole, whereby the air entered the inflatable cavity enters the corresponding air storing units through the air inlet channel, so as to inflate the air cushion body, wherein the one or more air cushion bodies are connected to form a continuous type air cushion body; a conveyor driving the continuous type air cushion body to move forward along the inflating portion of the inflation pipe; and a splitting device which comprises a splitting tool and a holding device, wherein the splitting tool is extended from a proximal end portion of the inflating portion of the inflation pipe to split the inflation unit of each of the one or more air cushion bodies which has been inflated, so as to allow each of the one or more air cushion bodies which has been inflated to be detached from the inflation pipe, wherein the holding device has a mounting hole and the splitting tool is a rotary cutting tool which has a stationary axle rotatably mounting the splitting tool at the mounting hole of the holding device.
3. An inflation apparatus for one or more air cushion bodies, wherein each of the one or more air cushion bodies comprises one or more air storing units formed by at least two air cell films, an inflation valve formed by at least two valve films, and an inflation unit integrally connected with the one or more air storing units and formed by two inflation end portions overlapping with each other, wherein an inflation channel is formed between the two inflation end portions, wherein the inflation valve forms at least one air inlet channel for inflating the corresponding air storing units, wherein the inflation apparatus comprises: an inflation pipe made of a rigid material and adapted for being connected to an air supply device, wherein the inflation pipe comprises an inflating portion which comprises a main portion having at least one vent hole and a sealed distal end portion extended from the main portion; a clamping device, wherein when the main portion of said inflating portion is arranged in the inflation channel during an inflating process, two ends of the inflation channel are sealed off by the clamping device to form an inflatable cavity, wherein air is inflated into the inflatable cavity through the at least one vent hole, whereby the air entered the inflatable cavity enters the corresponding air storing units through the air inlet channel, so as to inflate the air cushion body, wherein the one or more air cushion bodies are connected to form a continuous type air cushion body; a conveyor driving the continuous type air cushion body to move forward along the inflating portion of the inflation pipe; a splitting device which comprises a splitting tool extended from a proximal end portion of the inflating portion of the inflation pipe to split the inflation unit of each of the one or more air cushion bodies which has been inflated, so as to allow each of the one or more air cushion bodies which has been inflated to be detached from the inflation pipe; and a shifting device, mounted on a mounting plate to drive the one or more air cushion bodies to move along the inflation pipe for a predetermined distance during the inflation process, comprising an actuating mechanism, a clamping mechanism and a shifting mechanism, wherein the actuating mechanism provides a driving force for the clamping mechanism to clamp on the one or more air cushion bodies and the shifting mechanism to drive the one or more air cushion bodies to move along the inflation pipe during the inflation process.
4. The inflation apparatus, as recited in claim 3, wherein the actuating mechanism comprises two second clamping air cylinders, wherein the clamping mechanism comprises a first clamping block and a second clamping block, which are operatively connected with the two second clamping air cylinders respectively, so as to achieve clamping or loosening of the clamping mechanism, wherein the actuating mechanism further comprises two driving air cylinders operatively connected with the shifting mechanism so as to move the shifting mechanism.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(59) The following description is disclosed to enable any person skilled in the art to make and use the present invention. Preferred embodiments are provided in the following description only as examples and modifications will be apparent to those skilled in the art. The general principles defined in the following description would be applied to other embodiments, alternatives, modifications, equivalents, and applications without departing from the spirit and scope of the present invention.
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(61) According to this preferred embodiment, a plurality of the air cushion bodies 10 is connected to form a continuous type air cushion body 100. Each of the air cushion bodies 10 comprises one or more connected air storing unit s 13 formed by heat sealing at least two layers of air cell films 11 and 12. Referring to
(62) More specifically, the two layers of air cell films 11 and 12 are divided into a plurality of the air storing units 13 by numerous rows of dividing seams 101. Specifically, each row of the dividing seams 101 is formed by heat-sealing technology that the seam connects two layers of the air cell films 11 and 12 so as to form a row of the dividing seam 101 between two adjacent air storing units 13. The dividing seam 101 may be a continuous heat sealing line so as to allow a plurality of the air storing units 13 be independent to one another. The dividing seam 101 may also be an interrupted heat sealing line so as to have a plurality of the air storing units 13 be interconnected. The air storing unit 13 can be in various shapes, such as linear, circular, polygon, irregular, etc. Referring to
(63) According to this preferred embodiment, the air cushion body 10 further comprises an inflation valve 20 formed by at least two valve films 21 and 22. The two valve films 21 and 22 of the inflation valve 20 and the air cell films 11 and 12 are overlappedly arranged. Besides, an air inlet channel 23 is formed between the valve films 21 and 22 for inflating to the air storage chamber 14. When the air storage chamber 14 is inflated via the air inlet channel 23 and the air pressure in the air storage chamber 14 has attained the predetermined required value, the air pressure in the air storage chamber 14 will act on the valve films 21 and 22 so as to attach the valve films 21 and 22 on one of the air cell film, which closes the air inlet channel 23 and makes the inflation valve 20 serve as a one-way valve. When each air storing unit 13 has at least an air inlet channel 23 formed therein and each of the air storing units 13 is independent to one another, even if one of the air storing units 13 is damaged and leaks, the rest of the air storing units 13 will not be affected, but still serve as air cushions.
(64) The air cushion body 10 further comprises an inflation unit 15 connected with each of the air storing units 13 or, preferably, integrally formed with each of the air storing units 13. More specifically, according to this preferred embodiment, the air cell films 11 and 12 respectively form air cell film main portions 111 and 121 and inflation end portions 151 and 152 respectively integrally extended from the air cell film main portions 111 and 121. The air cell film main portions 111 and 121 are formed in the air storing unit 13 through heat-sealing technology. The inflation end portions 151 and 152 of the inflation unit 15 are respectively formed by part of the air cell films 11 and 12 at the inflation side. The inflation end portions 151 and 152 overlap with each other and each has a terminal fringe 1511 and 1521 interconnected through a fringe heat sealing seam 102. The fringe heat sealing seam 102 is formed through heat-sealing technology and is to heat-sealingly connect the fringes 1511 and 1521 of the inflation end portions 151 and 152.
(65) Referring to
(66) The air cell films 11 and 12 are respectively connected with the valve films 21 and 22 through an inflation channel heat sealing seam 103 at the positions where the air cell film main portions 111 and 121 of the air cell films 11 and 12 respectively connected with the inflation end portions 151 and 152. For example, the inflation channel heat sealing seam 103 can make it through heat-sealing four layers of films at once. It heat-sealingly connects and encloses the air cell film 11 and the valve film 21 and heat-sealingly connects and encloses the air cell film 12 and the valve film 22, but does not heat-sealingly connect and enclose the valve films 21 and 22, such that the air inlet channel 23 for inflating to the air storing unit 13 can be formed between the valve films 21 and 22.
(67) It is worth mentioning that when the inflation channel heat sealing seam 103 is formed through heat-sealing technology, there can be a heatproof barrier applied between the valve films 21 and 22, so as to prevent the valve films 21 and 22 from be heat sealed together. According to this embodiment, the valve films 21 and 22 may also have a plurality of heatproof layers 24, such as thermostable inks, etc., arranged therebetween, to be spacedly arranged in correspondence to the air inlet channel(s) 23 and be attached on the inner surface of either of the valve films 21 and 22, such that the heatproof layer 24 can prevent the valve films 21 and 22 from being connected due to the heat-sealing operation of the inflation channel heat sealing seam 103 in the heat-sealing technology. Therefore, the air inlet channels 23 can be formed between the valve films 21 and 22 for connecting and communicating with the inflation channel 153 in the inflation unit 15.
(68) More specifically, the inflation unit 15 of the air cushion body 10 has the inflation channel 153 formed between the fringe heat sealing seam 102 and the inflation channel heat sealing seam 103. Referring to
(69) The valve films 21 and 22 are respectively defined into proximal end portions 211 and 221 and distal end portions 212 and 222 along the length thereof. The proximal end portions 211 and 221 of the valve films 21 and 22 are extended into the inflation channel 153 of the inflation unit 15. The distal end portions 212 and 222 of the valve films 21 and 22 are overlapped to each other and extended into the air storage chamber 14 to form the air inlet channel 23. The inflation end portions 151 and 152 of the inflation unit 15 are respectively heat-sealingly connected with the proximal end portions 211 and 221 of the valve films 21 and 22 through the connecting seam 104 at a proper position below the top of the heatproof layer 24. Therefore, during the inflation, the proximal end portions 211 and 221 of the valve films 21 and 22 can respectively be synchronizedly expanded with the inflation end portions 151 and 152 of the inflation unit 15, which means to respectively be synchronizedly expanded with the inflation end portions formed by the air cell films 11 and 12 respectively, so as to open the channel between the valve films 21 and 22. Similarly, because there is the heatproof layer 24 in the technology of heat-sealing four films, though the inflation end portion 151 and the proximal end portion 211 of the valve film 21 is heat-sealingly connected and the inflation end portion 152 and the proximal end portion 221 of the valve film 22 is heat-sealingly connected so as to form the connecting seam, nonetheless, the proximal end portions 211 and 221 of the valve films 21 and 22 will not be heat-sealingly connected. According to this embodiment, a plurality of the connecting seams 104 have interrupted heat sealing spots arranged along the extending direction of the inflation channel 153 of the inflation unit 15.
(70) The distal end portion 212 and 222 of the valve films 21 and 22 further have a plurality of blocking seams 105 formed by heat-sealingly connecting the distal end portion 212 and 222 of the valve films 21 and 22 with the air cell film 11 through heat-sealing technology. In other words, the blocking seam 105 heat-sealingly connects three layers of films. The shape and size of the arrangement of the blocking seam 105 will not affect the air intake function of the air inlet channel 23, but it can block the air in the air storage chamber 14 of the air storing unit 13 from reversing into the inflation channel 153 after the inflation is done. Besides, because the blocking seam 105 heat-sealingly connects three layers of films, when the air storage chamber 14 of the air storing unit 13 has attained a predetermined air pressure, the distal end portions 212 and 222 of the valve films 21 and 22 can be expanded with the air cell film 11 at the same time so as to eventually attach on the air cell film 11 to close the air inlet channel 23.
(71) The dividing seam 101 is not extended to the fringe heat sealing seam 102 on the two sides of each of the air cushion bodies 10 of the continuous type air cushion body 100, but connected to the inflation channel heat sealing seam 103, such that the two sides of the inflation channel 153 respectively have an opening 154 correspondingly extended between the fringe heat sealing seam 102 and the inflation channel heat sealing seam 103. According to the prior art illustrated in
(72) Preferably, the continuous type air cushion body 100 can have a continuously communicated inflation channel 153 formed therein. That is to say, the inflation channels 153 of the adjacent air cushion bodies 10 are interconnected and communicated, so as to form an overall interconnected inflation channel 153. When an air cushion body 10 having one or more of the air storing units 13 is inflated, the two sides of the inflation channel 153 is sealed, so as to form a sealed inflatable cavity 155, such that air enters the inflatable cavity 155 will be able to further enter the air storage chamber 14 of each air storing unit 13 through each corresponding air inlet channel 23.
(73) In addition, the air cell films 11 and 12 of the air cushion body 10 and the valve films 21 and 22 of the inflation valve 20 can respectively be made of various suitable membrane materials, such as polyethylene film, polypropylene film, polyvinyl chloride film, polyester film, polystyrene film, composite film, and etc., wherein the present invention shall not be limited thereto, as long as suitable flexible films are utilized. It is worth mentioning that in order to enhance the one-way sealing function, the valve films 21 and 22 of the inflation valve 20 can also be self-adhesive films acquired by adding chemical composition to the above films.
(74) It is worth mentioning that the air cushion body 10 of the continuous type air cushion body 100 according to the above embodiment is a plane cushion body, while the air cushion body 10 according to another alternative mode will be further introduced as follows.
(75) Referring to
(76) The air cell films 11 and 12 further respectively heat-sealingly connect with the valve films 21 and 22 through continuous connecting seam 104B. Because there is the heatproof layer main body 241B, the connecting seam 104B will not heat-sealingly connect between the valve films 21 and 22. Therefore, when the inflatable cavity 155 is formed during the inflation operation, the valve films 21 and 22 can respectively be synchronizedly expanded with the air cell films 11 and 12 respectively, which helps to open each of the air inlet channels 23.
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(78) In addition, referring to
(79) Referring to
(80) Specifically, the inflation unit 15F comprises two inflation end portions 151F and 152F respectively integrally extended from the valve films 21F and 22F, while the air cell films 11F and 12F is only extended to the position of the inflation channel heat sealing seam 103F. Therefore, as the inflation starts, the gas in the inflation pipe 32 will enter the inflation channel 153F defined by the inflation end portions 151F and 152F formed by the external end of the two valve films 21F and 22F directly, so as to further enter each of the air inlet channels 23F. Correspondingly, the splitting tool 35 will split the inflation unit 15F formed by the two valve films 21F and 22F in the splitting operation. Besides, the conveyor 34 will also act on the inflation unit 15F formed by the two valve films 21F and 22F.
(81) In addition, according to this alternative mode, the two inflation end portions 151F and 152F can be formed by two independent films and heat-sealingly connected through a continuous fringe heat sealing seam 102F. Nevertheless, referring to
(82) The inflation system of the present invention can continuously and automatically inflate the continuous type air cushion bodies 100. Specifically, the inflation apparatus 30 comprises a bracket 31, an inflation pipe 32 arranged on the bracket 31, a clamping device 33, a conveyor 34, and a splitting device 35.
(83) More specifically, referring to
(84) In the embodiment illustrated in the drawings, the inflation pipe 32 is an elongated shaped tubular component, which can be arranged along a horizontal direction and allow gas to be conveyed internally. Referring to
(85) According to this preferred embodiment of the present invention, the inflation pipe 32 is a rigid structure, which, for example, can be made of metal material. The inflation pipe 32 can further be communicatively connected with the air supply device 40 through other rigid or soft tube, such that the inflating portion 321 of the inflation pipe 32 can conduct inflation process to the air cushion body 10.
(86) Further, the mounting portion 322 is mounted in position through the mounting plate 311. Referring to
(87) The inflating portion 321 comprises a main portion 3211 as well as a distal end portion 3212 and a proximal end portion 3213 respectively on the two sides of the main portion 3211. The distal end portion 3212 is sealed off. The proximal end portion 3213 is connected on the mounting portion 322. An elongated shaped vent hole 3214 is formed on the main portion 3211 along the length direction thereof, such that gas from the air supply device 40 can only enter the air cushion bodies 10 from the vent hole 3214.
(88) Person skilled in the art should be able to understand that though the elongated-shaped vent hole 3214 is in a linear narrow gap shape in the embodiment illustrated in the drawing, it may also be embodied as other shapes. According to other feasible embodiment, the main portion 3211 may have a plurality of spaced vent holes along the length direction thereof.
(89) According to this preferred embodiment of the present invention, the elongated shaped vent hole 3214 can be arranged on the top of the main portion 3211 of the inflating portion 321 of the inflation pipe 32, such that air can be upwards emitted from the vent hole 3214 in the inflation process. In real cases of practice, it may also be arranged on the bottom thereof so that air is discharged downward from the vent hole 3214 or arranged on the front side or back side thereof so as to discharge air forward or backward from the vent hole 3214.
(90) In other words, according to this embodiment of the present invention, the vent hole 3214 can be formed on a side, rather than an end, of the inflating portion 321. According to the prior art illustrated
(91) In an inflation process, the main portion 3211 of the inflating portion 321 of the inflation pipe 32 is placed between the inflation end portions 151 and 152 of the inflation unit 15 of the air cushion body 10, such that air released from the vent hole 3214 will enter the inflation channel 153 of the inflation unit 15 and then enter each of the air storing units 13. Because the elongated shaped vent hole 3214 is extended on the entire inflation channel 153, air output from the vent hole 3214 can therefore enter each of the air storing units 13 substantially at the same time.
(92) In other words, the output gas volume per unit time can be significantly increased through arranging elongated shaped inflating portion 321 of the inflation pipe 32 and vent hole 3214 thereof. Moreover, the elongated shape of the vent hole 3214 allows each air inlet channel 23 correspondingly in each air storing unit 13 to output gas, such that when air is output from the vent hole 3214, it can enter each of the air storing units 13 simultaneously so as to enhance the charge efficiency. According to the prior art, as
(93) The clamping device 33 is mounted on the bracket 31 for clamping the two sides of the inflation unit 15 of the air cushion body 10 to be inflated in the inflation process, so as to create an airtight inflatable cavity 155 through sealing the two sides of the inflation channel 153, such that air output from the vent hole 3214 will not leak from the air cushion body 10, but enter the air inlet channel 23 formed by the valve films 21 and 22 of the inflation valve 20. Then the inflation process can be conducted for each of the air storing units 13.
(94) More specifically, the clamping device 33 comprises two movable clamping units 331 and 332 and a clamping power source 333. According to the embodiment illustrated in
(95) The two clamping units 331 and 332 may have identical structures and be symmetrically arranged toward the inflation pipe 32. Besides, the clamping units can be driven by the clamping power source 333 to move towards move towards each other when the inflation process is demanded. In the end of a cycle of inflation process, the clamping units can be driven by the clamping power source 333 to move from each other and return to the original positions thereof.
(96) Correspondingly, the first clamping unit 331 comprises two first clamping portions 3311 and two first connecting portion 3312 extended between the two first clamping portions 3311. According to this preferred embodiment of the present invention, the two first clamping portions 3311 have the same structure and are respectively protrudingly extended toward the outer side of the first connecting portion 3312. A first clamping surface 3313 and a first clamping groove 3314 are respectively formed on the bottom side of each first clamping portion 3311.
(97) Correspondingly, the second clamping unit 332 comprises two second clamping portions 3321 and two second connecting portions 3322 extended between the two second clamping portions 3321. According to this preferred embodiment of the present invention, the two second clamping portion 3321 have the same structure and are respectively protrudingly extended toward the outer side of the second connecting portion 3322. A second clamping surface 3323 and a second clamping groove 3324 are respectively formed on the top side of each second clamping portion 3321.
(98) According to the embodiment illustrated in the drawings, the first clamping portion 3311 on the left side of the first clamping unit 331 and the second clamping portion 3321 on the left side of the second clamping unit 332 are coupled with each other so as to serve to seal the opening 154 on the left side of the inflation channel 153 of the air cushion body 10. Correspondingly, the first clamping portion 3311 on the right side of the first clamping unit 331 and the second clamping portion 3321 on the right side of the second clamping unit 332 are coupled with each other so as to serve to seal the opening 154 on the right side of the inflation channel 153 of the air cushion body 10.
(99) The first connecting portion 3312 and the second connecting portion 3322 respectively have a contact hole 3315 and 3325 in the middle portion thereof. The clamping power source 333 comprises two clamping air cylinders 3331 and two driving portions 3332 respectively connected with the clamping air cylinders 3331. The driving portions 3332 move up and down in the perpendicularly arranged chutes 3333 under the drive of the clamping air cylinders 3331. Also, an end of each of the driving portions 3332 is connected with the clamping air cylinders 3331 respectively, while the other end thereof is mounted in the contact holes 3315 and 3325 respectively. Hence, when the clamping air cylinders 3331 are in operation, they will drive the driving portions 3332 to move, so as to further drive the first connecting portion 3312 and the second connecting portion 3322 to move, which will drive the first clamping portion 3311 and the second clamping portion 3321 to move, such that a clamping operation can be conducted.
(100) More specifically, according to this preferred embodiment of the present invention, the two clamping air cylinders 3331 output the power through the clamping air cylinders respectively. Also, the clamping air cylinder 3331 is connected with the air supply device 40 to obtain air pressure supply, such that the clamping air cylinder can be pushed to function, which detail will be further specified as follows. Person skilled in the art should be able to understand that the above mentioned way of providing power source can also be substituted by other ways.
(101) Therefore, in a cycle of inflation, when the first clamping air cylinder 3331 on the upper side operates, it will drive the first driving portion 3332 to shift downward in the chute 3333 from the upper side and thus drive the first connecting portion 3312 to shift downward, such that the two first clamping portions 3311 will move downward respectively. Meanwhile, when the second clamping air cylinder 3331 on the lower side operates, it will drive the second driving portion 3332 to shift upward in the chute 3333 from the lower side and thus drive the second connecting portion 3322 to shift upward, such that the two second clamping portions 3321 will move upward respectively, so as to press against the two first clamping portions 3311 respectively. That is to say, the first clamping surface 3313 and the second clamping surface 3323 will press against each other, such that the two sides of the inflation channel 153 of the inflation unit 15 of the air cushion body 10 to be inflated will be clamped to seal between the first clamping surface 3313 and the second clamping surface 3323. Besides, the first clamping groove 3314 and the second clamping groove 3324 form an entire clamping groove, so as to accommodate the distal end portion 3212 of the inflating portion 321 of the inflation pipe 32.
(102) Referring to
(103) In other words, the first clamping unit 331 and the second clamping unit 332 symmetrically arranged up and down. The positions of the first clamping portion 3311 and the second clamping portion 3321 are corresponding to each other. As a result, the first clamping surface 3313 of the first clamping unit 331 and the second clamping surface 3323 of the second clamping unit 332 are respectively tight pressed on the inflation end portions 151 and 152 of the two sides of the length direction of the inflation unit 15 of the air cushion body 10. Besides, the bottom wall formed by the first clamping portion 3311 and the second clamping portion 3321 renders the inflation end portions 151 and 152 to tightly attach on the distal end portion 3212 of the inflation pipe 32. In this manner, as the main portion 3211 of the inflating portion 321 of the inflation pipe 32 is placed into the inflation channel 153 of the inflation unit 15, the inflation inlet 154 of the two sides of the inflation channel 153 will be sealed off and under the clamping operation of the first clamping unit 331 and the second clamping unit 332 the inflation unit 15 forms the sealed inflatable cavity 155 therein. The main portion 3211 of the inflating portion 321 is in the inflatable cavity 155. Air output from the vent hole 3214 will enter the inflatable cavity 155 and further enter each of the air storage units 13.
(104) When the air storing unit 13 of the air cushion body 10 required to be inflated is inflated to a predetermined air pressure, the two clamping air cylinders 3331 will respectively drive the corresponding driving portions 3332 to move from each other, so as to drive the first clamping portion 3311 and the second clamping portion 3321 of the two clamping units 331 and 332 to move away from each other to the original positions thereof respectively. Therefore, the two sides of the inflated air cushion body 10 are released and an inflation cycle is completed. Then, the clamping units 331 and 332 are ready for the inflation for the next air cushion body 10 of the continuous type air cushion body 100.
(105) In other words, the clamping device 33 has a clamped state and an idle state. In the idle state the clamping device 33 is at the original condition, where the first clamping unit 331 and the second clamping unit 332 of the clamping device 33 are spacedly at resting positions. When a control command of starting an inflation process is received, the first clamping portion 3311 and the second clamping portion 3321 of the first clamping unit 331 and the second clamping unit 332 of the clamping device 33 will move towards move towards each other under the effect of the clamping power source 333, so as to shift from the idle state to the clamped state and to seal the two sides of the air cushion body 10 to be inflated. After the inflation process is finished, the first clamping portion 3311 and the second clamping portion 3321 will move from each other so as to shift from the clamped state to the idle state.
(106) It is worth mentioning that the distance W between the two first clamping portions 3311, which equals to the distance between the two second clamping portions 3321, decides the allowable width for the continuous type air cushion body 100 to be inflated, or the width of the air cushion body 10. The air cushion body 10 may have only one air storing unit 13. That is to say, the width of the air storing unit 13 can be substantially smaller than the distance W between the two first clamping portions 3311, such that it is possible to inflate only one air storing unit 13 in an inflation process. Certainly, the air cushion body 10 may also have a plurality of the air storing units 13, such as 2-20 air storing units 13 for example, or more preferably, 5-15 air storing units 13. Besides, the width of each of the air storing units 13 can be arranged according to the needs.
(107) The mounting plate body 3111 of the mounting plate 311 has a clamping device retaining slot 3113 formed thereon, which is extended along the vertical direction as the figure illustrated. The two driving portions 3332 respectively pass through the clamping device retaining slot 3113 and enter the contact holes 3315 and 3325 of the first connecting portion 3312 and the second connecting portion 3322. In this way, the two driving portions 3332 are movable in the clamping device retaining slot 3113. In other words, the two driving portions 3332 can reach the outer side of the mounting plate 311 from the inner side of the mounting plate 311 by passing through the clamping device retaining slot 3113. Therefore, the two clamping units 331 and 332 and the clamping air cylinders 3331 of the clamping power source 333 can be respectively arranged on the opposite sides of the mounting plate 311, wherein the clamping air cylinders 3331 can be installed in the box-like structure form by the bracket 31.
(108) The clamping device 33 further comprises at least a holding unit 334 comprising two holding units 334. Each holding unit 334 comprises two holding blocks 3341′ and two guide rods 3342 mounted between the two holding block 3341. The first clamping unit 331 and the second clamping unit 332 further respectively form the top-to-bottom through guide rod hole 3316 and 3326 on the first connecting portion 3312 and the second connecting portion 3322 for the guide rods 3342 to pass through respectively, such that the first clamping unit 331 and the second clamping unit 332 are positioned between the two holding blocks 3341, while the holding blocks 3341 are both affixed on the mounting plate 311 through connection mode like paired bolts and nuts, etc.
(109) When the clamping device 33 is shifting between the clamped state and the idle state, the first connecting portion 3312 and the second connecting portion 3322 of the first clamping unit 331 and the second clamping unit 332 are respectively moving vertically along the two guide rods 3342, such that the two holding units 334 can further have a function of limiting and spacing to the first clamping unit 331 and the second clamping unit 332.
(110) Referring to
(111) The splitting tool 351 is arranged between the mounting portion 322 of the inflation pipe 32 and the clamping portions 3311 and 3321 at the right side of the clamping device 33, which means the clamping and inflation processes will be done first and then the inflation unit 15 of the air cushion body 10 will be split by the splitting tool 351 in the inflation technology. Thus, the splitting tool 351 will not affect the preceding inflation process. Preferably, the splitting tool 351 can split the inflation unit 15 along the fringe heat sealing seam 102 or the folding line 106A of the inflation unit 15 of the air cushion body 10 so as to make the separated inflation end portions 151 and 152, which means two free extremities that are not connected. The free inflation end portions 151 and 152 can then smoothly be moved forward along the inflation pipe 32 under the act of the conveyor 34 and eventually be detached from the inflation pipe 32.
(112) The proximal end 3213 of the inflating portion 321 of the inflation pipe 32 has a tool mounting groove 3215 on the inner side thereof. A sharp edge 3511 of the splitting tool 351 is mounted in the tool mounting groove 3215 so as to ensure that it can split the inflation unit 15. The tool mounting groove 3215 is a locating groove, which will not cause leakage on the inflation pipe 32. Certainly, an end of the splitting tool 351 can also closely touch against the inner side of the proximal end 3213 of the inflating portion 321 according to other alternative mode. The splitting tool 351 may also be extended perpendicularly to the proximal end 3213 of the inflating portion 321. However, it is, preferably, extended in a tilting manner. That is, it is extended between the mounting portion 322 and the proximal end 3213 of the inflating portion 321, so as to split better.
(113) Another end of the splitting tool 351 can be mounted on the mounting plate 311 of the bracket 31. According to this preferred embodiment, the holding device 352 is for mounting the splitting tool 351 so as to further stably affix the splitting tool 351. More specifically, the holding device 352 comprises a tool carrier 3521 and a holding body 3522. The tool carrier 3521 is for carrying the splitting tool 351. Referring to
(114) The tool carrier 3521 further passes through the inflation pipe mounting hole 3112. The holding body 3522 is connected with the tool carrier 3521 and arranged on the other side of the mounting plate 311. That is to say, the splitting tool 351 and the holding body 3522 are respectively on the opposite sides of the mounting plate 311, such that the holding body 3522 can serve the purpose of stabilizing the splitting tool 351. The middle portion of the holding body 3522 further has a mounting hole 3525 formed thereon. An end of the mounting portion 322 of the inflation pipe 32 can penetrate into the mounting hole 3525.
(115) Referring to
(116) More specifically, the first conveying unit 341 comprises a first conveying gear 3411, a first connecting shaft 3412, and a first driving gear 3413, wherein the first conveying gear 3411 and the first driving gear 3413 are respectively at the two ends of the first connecting shaft 3412, such that the first connecting shaft 3412 is extended between the first conveying gear 3411 and the first driving gear 3413. The second conveying unit 342 comprises a second conveying gear 3421, a second connecting shaft 3422, and a second driving gear 3423, wherein the second conveying gear 3421 and the second driving gear 3423 are respectively provided at the two ends of the second connecting shaft 3422, such that the second connecting shaft 3422 is extended between the second conveying gear 3421 and the second driving gear 3423.
(117) The first conveying gear 3411 and the second conveying gear 3421 are engaged with each other. The first driving gear 3413 and the second driving gear 3423 are engaged with each other. Thus, when the first driving gear 3413 and the second driving gear 3423 are engaged and rotate with each other, the first driving gear 3413 transmits driving force through the first connecting shaft 3412 to drive the first conveying gear 3411 to rotate and the second driving gear 3423 transmits driving force through the second connecting shaft 3422 to drive the second conveying gear 3421 to rotate, such that the engagement between the first conveying gear 3411 and the second conveying gear 3421 moves the inflation unit 15 of the continuous type air cushion body 100 forward.
(118) More specifically, for example, the first conveying gear 3411 rotates counterclockwise and the second conveying gear 3421 rotates clockwise, so as to generate forward driving force to drive the inflation unit 15 of the continuous type air cushion body 100 to move forward.
(119) According to this embodiment of the present invention, the conveying power source 343 can comprise a conveying motor 3431, an output shaft 3432, and mounting bracket 3433. The conveying motor 3431 is mounted on the mounting bracket 3433. The mounting bracket 3433 is mounted on the mounting plate 311. The motor 3431 provides a rotary driving force, which will be transmitted to the first conveying unit 341 and the second conveying unit 342 so as to drive the continuous type air cushion body 100 to move forward. More specifically, the second conveying unit 342 further comprises a first roller 3424, a second roller 3425, and a transmission belt 3426. The first roller 3424 is mounted on the output shaft 2432 of the conveying power source 343. The second roller 3425 is mounted on the second connecting shaft 3422. The transmission belt 3426 rolls around the first roller 3424 and the second roller 3425. Therefore, when the conveying motor 3431 operates to drive and rotate the output shaft 2432, the first roller 3424 will be driven to rotate by the output shaft 2432, so as to further drive the second roller 3425 to rotate through the transmission belt 3426 and drive the second connecting shaft 3422 to rotate, such that the second driving gear 3423 can be driven to rotate so as to bring the first driving gear 3413 engaged with the second driving gear 3423 to rotate, which eventually brings the first conveying gear 3411 and the second conveying gear 3421 to rotate in opposite directions.
(120) Person skilled in the art should be able to understand that the structure of the conveyor 34 is just an example rather than limit to the present invention. That is, person skilled in the art may come up with other structures that are able to drive the continuous type air cushion body 100 to move forward according to his needs.
(121) It is worth mentioning that by the time the next air cushion body 10 has finished its inflation, the inflation unit 15 of the previous air cushion body 10 is at the middle of the two conveying gears 3411 and 3421, so when the inflation unit 15 of the next air cushion body 10 is not clamped well by the clamping device 33, it will shrink. However, because of the limiting and spacing caused by the two conveying gears 3411 and 3421 to the inflation unit 15 of the previous air cushion body 10, the overall shrinkage of the continuous type air cushion body 100 can be reduced.
(122) In addition, referring to
(123) It follows that in an inflation cycle, the continuous type air cushion body 100 is sleeved and arranged on the inflating portion 321 of the inflation pipe 32, so as to let the inflating portion 321 be placed in the inflation channel 153 of the inflation unit 15. The conveyor 34 is for driving the air cushion body 10 of the continuous type air cushion body 100 that is to be inflated to move to the inflation position, which is the position between the two clamping portions of the clamping device 33. Then the clamping device 33 may shift from the idle state to the clamped state to seal the two sides of the inflation channel 153 of the inflation unit 15 of the air cushion body 100. Besides, the air supply device 40 and the inflation pipe 32 are connected and communicated, such that the inflation pipe 32 can inflate the air cushion body 10. After the inflation is finished, the clamping device 33 will shift from the clamped state to the idle state. The conveyor 34 will drive the continuous type air cushion body 100 to move forward, so as to have the inflated air cushion body 10 leave the inflation position until the next air cushion body 10 moves into the inflation position.
(124) Person skilled in the art should be able to understand that the inflation apparatus 30 according to the present invention may also inflate independent and separate air cushion bodies 10 one by one. Specifically, the inflation unit 15 of an independent air cushion body 10 can be sleeved and arranged on the inflating portion 321 of the inflation pipe 32. Then the subsequent clamping and inflation processes will be conducted. After the inflation, the inflated air cushion body 10 can be taken off from the opposite direction of how it has been arranged along the inflating portion 321 of the inflation pipe 32. In this embodiment, the air cushion body 10 may also have an opening 154 on a side thereof, while have the other side sealed. That is, when the apparatus inflates independent air cushion bodies 10 one by one, it will not have to split the inflation unit 15 of the air cushion body 10, but to have it taken off from the opposite direction after inflation.
(125) The following will further describe the inflation system according to this preferred embodiment of the present invention, wherein the control device 50 is the core of the system for controlling the steps of clamping, blowing, loosening, conveying, and etc. of the inflation apparatus 30. More specifically, the control device 50 comprises a main control unit 51, a pressure regulation unit 52, a pressure control unit 53, an air cylinder controlling switches that can be embodied as a cylinder control solenoid valve 54, and an inflation controlling switch that can be embodied as an inflation control solenoid valve 55.
(126) The main control unit 51 is the control center of the control device 50. The pressure regulation unit 52 is to control the air pressure provided by the air supply device 40 so as to maintain the air pressure within a predetermined range, which, if applicable, is around 0.2 MPa. The pressure control unit 53 is for detecting if the air pressure that the inflation apparatus 30 provided to each air storing unit 13 of the air cushion body 10 has attained the predetermined desired value. For example, according to this embodiment, the pressure control unit 53 can comprise a pressure control module 531 and a pressure sensor 532. When the pressure sensor 532 detected that air pressure in the pipeline connected with the inflation pipe 32 has reached around 0.1 Mpa, the pressure control module 531 will determine that the inflation is completed and send a message of inflation completion to the main control unit 51. It is understandable that the pressure control module 531 may also be integrated in the main control unit 51. The cylinder control solenoid valve 54 is for controlling whether there is air supply to the clamping air cylinder 3331. The inflation control solenoid valve 55 is to open or close the pipeline of the air supply device 40 connected into the inflation pipe 32 of the inflation apparatus 30 so as to start or stop the inflation process. It is worth mentioning that the specific values, such as 0.2 Mpa and 0.1 Mpa, are just examples, rather than limits to the scope of the present invention.
(127)
(128) More specifically, the inflation pipe 32 of the inflation apparatus 30 is connected with the main passage 42 through the inflation duct 43. Gas provided by the air supply device 40 is further regulated through the pressure regulation unit 52 in, for example, about 0.2 Mpa and sent to the inflation pipe 32 of the inflation apparatus 30 via the inflation duct 43, which forms an inflation pipeline structure. The inflation control solenoid valve 55 on the pipeline structure can be opened or closed to start or stop the inflation process.
(129) A branch, which is the pressure control duct 44, is further diverged from the inflation duct 43 to be connected with the pressure control unit 53 so as to connect the air pressure of the pipeline of the inflation pipe 32 to the pressure control duct 44. If the air pressure attains 0.1 Mpa, it means that the air pressure in each of the air storage units 13 of the air cushion body 10 attains 0.1 Mpa. Therefore, it can send the detected air pressure value or a command of stopping inflation to the main control unit 51.
(130) The two air cylinder ducts 45 are further connected with the main passage 42 so as to provide air supply to the two clamping air cylinders 3331. Besides, the opening and closing of the cylinder control solenoid valve 54 controls the operations of the two clamping air cylinders 3331, which can drive the first and second clamping portion 3311 and 3321 of the first and second clamping unit 331 and 332 of the clamping device 33 to switch between the clamped state and the idle state.
(131) The main control unit 51 comprises a main control module 511 and a clamping driver module 512, a conveying driver module 513, an inflation driver module 514, and a display 515 that are operatively connected with the main control module 511. The main control module 511 is embodied as a processor for receiving and processing information as well as sending out control commands. The clamping driver module 512 is operatively connected with the cylinder control solenoid valve 54, such that when the clamping driver module 512 receives a control command of starting or stopping the clamping device 33 from the main control module 511, the clamping driver module 512 can send a control command to the cylinder control solenoid valve 54 to open or close the cylinder control solenoid valve 54 so as to correspondingly actuate a clamping or loosening operation. The conveying driver module 513 is operatively connected with the conveying motor 3431 of the conveyor 34, such that when the conveying driver module 513 receives a control command of starting or stopping the conveyor 34 from the main control module 511, the conveying driver module 513 can send a control command to the conveying motor 3431 to switch on or off the conveying motor 3431 so as to correspondingly actuate or terminate the forward drive of the conveyor 34 to the continuous type air cushion body 100. The inflation driver module 514 correspondingly controls the opening and closing of the inflation control solenoid valve 55.
(132) The display 515 is for displaying corresponding information, which includes the output air pressure value of the air supply device 40, the air pressure numeric value obtained by the pressure control unit 53 from the inflation pipeline structure, the conveying speed of the moving conveyor 34 driven by the conveying motor 3431, and etc. The display 515 may also provide a control interface, which comprises control buttons arranged thereon for the user to set up relevant parameters and control the operation of the entire inflation process.
(133) Optionally, the main control unit 51 further comprises an alarm module 516. The alarm module 516 will send warning message to the main control module 511 to have the main control module 511 shut-down and stop the entire system, if certain incidents occur, including, for example, if the clamping device fails to clamp well or completely fails clamp on the inflation unit 15 of the air cushion body 10, rendering abnormal the air pressure value being obtained by the pressure control unit 53 from the inflation pipeline structure; if relevant solenoid valves 54 and 55 fail; if leakage occurs on pipelines of the air supply device 40 rendering the pressure regulation unit 52 fail to stabilize the air pressure; if the conveying motor 3431 of the conveyor 34 breaks down; and etc.
(134) In other words,
(135) In other words, more specifically, according to the arrangement of the inflation system of the present invention, the entire control process of the inflation system can be like follows. When the entire system has been connected to an external power source, such as the public alternating current power supply network, the main control module 511 can send a command of starting clamping operation to the clamping driver module 512, such that the clamping driver module 512 will open the cylinder control solenoid valve 54 to have the pipelines between the main passage 42 of the air supply device 40 and the two air cylinder ducts 45 be communicatively connected. As a result, air provided by the air supply device 40 will respectively drive the two clamping air cylinders 3331 to function through the two air cylinder ducts 45, which drives the clamping portions 3311 and 3321 of the two clamping unit 331 and 332 to move to the predetermined positions of the clamped state by the drive of the driving portions 3332. Eventually the clamping portions 3311 and 3321 will press against each other to seal the two sides of the inflation channel 153 of the inflation unit 15 of the air cushion body 10 to be inflated, so as to create the sealed inflatable cavity 155. Then, the clamping driver module 512 will generate predetermined schedule according to its judgement on the two clamping air cylinder 3331. When the clamping portions 3311 and 3321 reach the clamped state, the clamping driver module 512 will close the cylinder control solenoid valve 54.
(136) Afterward, the main control module 511 may send a control command of starting inflation to the inflation driver module 514 to open the inflation control solenoid valve 55, such that gas of the air supply device 40 will be allowed to enter the inflation pipe 32 through the main passage 42 and the inflation duct 43 and further be released from the vent hole 3214 of the inflating portion 321 of the inflation pipe 32 to enter the inflatable cavity 155 of the inflation unit 15. Then the gas will pass through each air inlet channel 23 formed by the valve films 21 and 22 to enter the corresponding air storage units 13.
(137) Meanwhile, the pressure sensor 532 of the pressure control unit 53 will detect air pressure in the pipeline between the pressure control duct 44 and the inflation pipe 32. In this embodiment, if the detected air pressure value is, for example, around 0.1 Mpa, the main control module 511 will send a command of stopping inflation to the inflation driver module 514 so as to close the inflation control solenoid valve 55, such that gas of the air supply device 40 will stop entering the inflation pipe 32 through the inflation duct 43 of the main passage 42, which terminates the inflation process.
(138) When it determines the completion of the inflation process, the main control module 511 will send out a control command for loosening the clamping device 33, such that the clamping driver module 512 will drive the two clamping air cylinders 3331 to move back to their original positions. Then, the two clamping portions 3311 and 3321 will move from each other and shift from the clamped state to the idle state.
(139) Then after the clamping device 33 is returned into the idle state, the main control module 511 will send a control command of starting the conveyor 34, such that the conveying driver module 513 drives the conveying motor 3431 to function to drive the first conveying gear 3411 and the second conveying gear 3421 to rotate, so as to drive the split inflation unit 15 of the continuous type air cushion body 100 to move forward and lead the next air cushion body 10 to be inflated to the inflation position.
(140) According to the description of the inflation system of the above preferred embodiment of the present invention, the present invention further provides an assembling method for the inflation system, wherein the inflation system is for continuously and automatically inflating a plurality of connected air cushion bodies 10 of the continuous type air cushion body 100. The method comprises the following steps.
(141) The assembly steps of the inflation apparatus 30 include the following steps: assembling the inflation pipe 32 on the mounting plate 311′ along the length direction of the mounting plate 311′; mounting the holding block 3341 of the top or bottom side of the clamping device 33 on the mounting plate 311′; mounting the guide rod 3342 on the holding block 3341 and respectively mounting the first clamping unit 331 and the second clamping unit 332 on the guide rod 3342; mounting the holding block 3341 of the bottom or top side on the guide rod 3342 and further affixing it on the mounting plate 311′; mounting the clamping power source 333 on the mounting plate 311 and allowing the two driving portions 3332 to pass through the clamping device retaining slot 3113 of the mounting plate 311 so as to be assembled at the contact holes 3315 and 3325 of the first clamping unit 331 and the second clamping unit 332; mounting the splitting tool 351 of the splitting device 35 on the tool carrier 3521 of the holding device 352 and affixing the holding body 3522 of the holding device 352 on the mounting plate 311; aslope connecting the splitting tool 351 to the proximal end 3213 of the inflating portion 321 of the inflation pipe 32; mounting the mounting bracket 3433 that has the conveying motor 3431 mounted thereon on the mounting bracket 3433; mounting the first roller 3424 on the output shaft 3432 connected with the conveying motor 3421; connecting the first and second connecting shaft 3412 and 3422 of the first and second conveying unit 341 and 342 with the first and second driving gear 3413 and 3423 and allowing the first and second connecting shaft 3412 and 3422 pass through the connecting shaft spacing hole 3114 of the mounting plate 311 to reach to the outer side of the mounting plate 311; mounting the first and second conveying gear 3411 and 3421 on the first and second connecting shaft 3412 and 3422 respectively; further mounting the second roller 3425 on the second connecting shaft 3422; connecting the first and second roller 3424 and 3426 with the transmission belt 3426.
(142) The steps of assembling the control device 50 and wiring including: electrically connecting the pressure regulation unit 52, the pressure control unit 53, the cylinder control solenoid valve 54, and the inflation control solenoid valve 55 with the main control unit 51 through wires respectively and allowing the entire circuit to be connected with an external power source.
(143) The process for assembling the air supply device 40 and arranging the pipelines includes a step of mounting the main passage 42 on the electric air pump 41 and branching a pipeline from the main passage 42 for inflating. Specifically, the pressure regulation unit 52 is installed at the main passage 42. Besides, the main passage 42 further connects the inflation control solenoid valve 55 and the inflation duct 43 and connects the inflation duct 43 with the inflation pipe 32 assembled on the mounting plate 311. The process further comprises steps of branching another branch from the inflation duct 43 to the pressure control unit 53 by the pressure control pipeline 44 and branching another branch from the inflation duct 43 for driving the clamping air cylinder 3331. Specifically, the cylinder control solenoid valve 34 is installed at this branch and the two air cylinder ducts 35 are respectively connected with two clamping air cylinders 3331 for driving two clamping units 331 and 332 respectively, so as to conduct the clamping and loosening operations.
(144) Person skilled in the art should be able to understand that the specific assembly technology of the above assembly steps is just an example rather than limit to the present invention. In addition, some of the orders of the steps may be changed.
(145) Referring to
(146) More specifically, according to the above embodiment, the feeding device 60 may comprise a feeding bracket 61 and a feeding unit 62 assembled on the feeding bracket 61. The feeding unit 62 comprises a stationary axle 621 and a reel 622 adapted for rotatably mounted on the stationary axle 621. The reel 622 is adapted for mounting an end of the continuous type air cushion body 100 and the continuous type air cushion body 100 is adapted for being rolled on the reel 622. Besides, the other end of the continuous type air cushion body 100 is guided to move forward to execute the continuous and automatic inflation process. The feeding bracket 61 can further integrally mounted on the bracket 31 of the inflation apparatus 30, so as to form an integral structure.
(147) Person skilled in the art should be able to understand that the structure of the feeding device 60 is just an example rather than limit to the present invention. That is, the feeding device 60 may also be made into other structures, such as a structure like a storage box, wherein the continuous type air cushion body 100 may be stored in the storage box in a folded state and have an end pulled out from an opening of the storage box for being guided to moved forward and inflated in a continuous and automatic manner.
(148) The collecting device 70, according to this preferred embodiment, can be embodied as a rolling up device, which may comprise a winding reel 72 driven by a rotating motor 71, which rolls the inflated air cushion bodies 10 for later use via rotation of the winding reel 72. Person skilled in the art should be able to understand that the structure of the collecting device 70 is just an example rather than limit to the present invention. That is, the collecting device 70 may also be made into other structures, such as a structure like a collecting box.
(149) It is worth mentioning that according to another alternative mode, after the air cushion body 10 is inflated, the inflation system may further comprise a cutting device to cut down the inflated air cushion body 10 from the continuous type air cushion body 100, so as to be collected by the user. The cutting device may be a knife tool or means that utilizes other cutting ways, such as an energy flow cutter. It is understandable that in order for accurate cutting, it may further provide a visual scanning device for determining the quantity of the air cushion body 10 of the air storing unit 13 being cut at a time.
(150) Referring to
(151) Referring to the drawings, the feeding bracket 61A of the feeding device 60A can be embodied as a support disk. The stationary axle 621A and the reel 622A of the feeding unit 62A are both vertically arranged. Correspondingly, the continuous type air cushion bodies 100 can substantially be reeled and rolled in an upright or vertical manner in the subsequent wrapping step.
(152) In addition, the inflation apparatus 30 further comprises a guiding device 37 which comprises a guiding body 371 and a guiding groove 372 formed thereat. The continuous type air cushion body 100 has the air cushion body 10 to be inflated in the guiding groove 372 for being driven forward, such that the inner surface of the guiding body 371 limits and retains the air cushion body 10 during the inflation process, so as to prevent the air cushion body 10′ from fleeing and tilting during the inflation, which further ensure the success and smooth of the inflation process.
(153) Correspondingly, according to the above description, the inflation technology of the present invention includes a basis of inventive concept as follows. Namely, the present invention provides an inflation method for conducting an inflation process for an air cushion body 10. The air cushion body 10 comprises one or more air storing units 13 formed by two air cell films 11 and 12, an inflation valve 20 formed by at least two valve films 21 and 22, and an inflation unit 15 integrally connected with the one or more air storing units 13 and comprising two inflation end portions 151 and 152 overlapping with each other, wherein an inflation channel 153 is formed between the two inflation end portions 151 and 152. The method includes the following steps.
(154) (a) configuring a vent hole 3214 of the inflation pipe 32 which is connected with the air supply device 40 in the inflation channel 153;
(155) (b) closing the openings 154 at the two ends of the inflation channel 153 of the inflation unit 15 so as to form a sealed inflatable cavity 155;
(156) (c) inflating the inflatable cavity 155 through the vent hole 3214, such that air enters each air storing unit 13 through each air inlet channel 23 formed between the valve films 21 and 22, so as to complete the inflation process; and
(157) (d) releasing the openings 154 of the two ends of the inflation channel 153 of the inflation unit 15, such that the air cushion body 10 is ready to be taken off from the inflation pipe 32, so as to obtain the air cushion body 10 that is inflated.
(158) More specifically, in the step (a), the sealed distal end portion 3211 of the inflating portion 321 of the inflation pipe 32 enters the opening 154 of a side of the inflation channel 153 and leaves away from the opening 154 of another side thereof, such that the main portion 3211 of the inflating portion 321 will be remained in the inflation channel 153, which means the main portion 3211 of the inflating portion 321 is extended in the entire inflation channel 153 between the two inflation end portions 151 and 152 of the inflation unit 15.
(159) In the step (a) and the step (d), the openings of the two ends of the inflation channel 153 are closed and released through the complementary clamping portions 3311 and 3321 of a clamping device 30.
(160) The step (c) comprises the action of starting air supply of the air supply device 40 to the inflation pipe 32 through switching on the inflation control solenoid valve 55 in the pipeline between the air supply device 40 and the inflation pipe 32.
(161) The step (c) further comprises the following step: detecting air pressure in the pressure control pipeline 44 connected with the inflation pipe 32 and switching off the inflation control solenoid valve 55 arranged in the pipeline between the air supply device 40 and the inflation pipe 32 to thereby stop the inflation process if the air pressure reached the predetermined air pressure, such as around 0.1 Mpa.
(162) Preferably, the above method further comprises the following step:
(163) (e) splitting the inflated inflation unit 15 of the air cushion body 10 and detaching the inflated air cushion body 10 from the inflation pipe 32 along the length direction of the inflating portion 321 of the inflation pipe 32;
(164) A plurality of the air cushion bodies 10 is connected to form a continuous type air cushion body 100, where the continuous type of inflation units 15 of the continuous type air cushion body 100 comprise an inflation channel 153 formed to continuously communicate per two adjacent air cushion bodies 10. Then, the method further comprises the following step after the step (e).
(165) (f) Drive the inflated air cushion body 10 of the continuous type air cushion body 100 to move forward, so as to allow another adjacent air cushion body 10 enter the inflation position and to continuously automatically inflate a plurality of air cushion bodies 10 of the continuous type air cushion body 100.
(166) Further, in the step (f), the driving force can be provided by two conveying gears 3411 and 3421 which are driven by a motor and are applied on the splitted inflation end portions 151 and 152 of the inflation unit 15. Besides it also comprises the following step: the transfer rate and the transfer time of the two conveying gear 3411 and 3421 are obtained and utilized for determining if the next air cushion body 10 has entered the inflation position.
(167) Subsequently, the above method may further comprise the following step: splitting the inflated air cushion body 10 from the continuous type air cushion body 100 or continuously wrapping the inflated air cushion bodies 10 together.
(168)
(169) More specifically, referring to
(170) In the embodiment illustrated in
(171) According to this preferred embodiment of the present invention, the inflation pipe 32 is a rigid structure, which, for example, can be made of metal material. The inflation pipe 32′ can further be communicatively connected with the air supply device 40′ through other rigid or soft tube, such that the inflating portion 321′ of the inflation pipe 32′ can conduct inflation process to the air cushion body 10′.
(172) Further, the mounting portion 322′ is mounted in position through the mounting plate 311′. Referring to
(173) The inflating portion 321′ comprises a main portion 3211′ as well as a distal end portion 3212′ and a proximal end portion 3213′ on the two sides of the main portion 3211′ respectively. The distal end portion 3212′ is sealed off. The proximal end portion 3213′ is connected on the mounting portion 322′. An elongated shaped vent hole 3214′ is formed in the main portion 3211′ along the length direction thereof, such that gas from the air supply device 40′ can only enter the air cushion bodies 10′ from the vent hole 3214′.
(174) Person skilled in the art should be able to understand that though the elongated-shaped vent hole 3214′ is in a linear narrow gap shape in the embodiment illustrated in the drawings, it may also be embodied as other shapes. According to other feasible embodiment, the main portion 3211′ may have a plurality of spaced vent holes along the length direction thereof.
(175) According to this preferred embodiment of the present invention, the elongated shaped vent hole 3214′ can be arranged on the top of the main portion 3211′ of the inflating portion 321′ of the inflation pipe 32′, such that air can be upwardly emitted from the vent hole 3214′ in the inflation process. In real cases of practice, it may also be arranged on the bottom thereof so that air can be released downwardly from the vent hole 3214′ or arranged on the front side or back side thereof so that air can be released forwardly or backwardly from the vent hole 3214′.
(176) In other words, according to this embodiment of the present invention, the vent hole 3214′ can be formed on a side, rather than an end, of the inflating portion 321′. According to the prior art illustrated
(177) In an inflation process, the main portion 3211′ of the inflating portion 321′ of the inflation pipe 32′ is extended between the inflation end portions 151′ and 152′ of the inflation unit 15′ of the air cushion body 10′, such that air released from the vent hole 3214′ will enter the inflation channel 153′ of the inflation unit 15′ and then enter each of the air storing units 13′. Because the elongated shaped vent hole 3214′ can be extended along the entire inflation channel 153′, air output from the vent hole 3214′ can therefore enter each of the air storing units 13′ substantially at the same time.
(178) In other words, the output gas volume per unit time can be significantly increased through arranging elongated shaped inflating portion 321′ of the inflation pipe 32′ and vent hole 3214′ thereof. Moreover, the elongated shape of the vent hole 3214′ allows each air inlet channel 23′ correspondingly in each air storing unit 13′ to output gas, such that when air is output from the vent hole 3214′, it can enter each of the air storing units 13′ simultaneously so as to enhance the charge efficiency. According to the prior art, as
(179) The clamping device 33′ is mounted on the bracket 31′ for clamping the two sides of the inflation unit 15′ of the air cushion body 10′ to be inflated in the inflation process, so as to create an airtight inflatable cavity 155′ through sealing the two sides of the inflation channel 153′, such that air output from the vent hole 3214′ will not leak from the air cushion body 10′, but enter the air inlet channel 23′ formed by the valve films 21′ and 22′ of the inflation valve 20′. Then the inflation process can be conducted for each of the air storing units 13′.
(180) More specifically, the clamping device 33′ comprises two movable clamping units 331′ and 332′ and a clamping power source 333′. According to the embodiment illustrated in
(181) The two clamping units 331′ and 332′ may have identical structures and be symmetrically arranged toward the inflation pipe 32′. Besides, the clamping units can be driven by the clamping power source 333′ to move towards move towards each other when the inflation process is demanded. In the end of a cycle of inflation process, the clamping units can be driven by the clamping power source 333′ to move from each other and return to the original positions thereof.
(182) Correspondingly, the first clamping unit 331′ comprises two first clamping portions 3311′ and two first connecting portion 3312′ extended between the two first clamping portion 3311′. According to this preferred embodiment of the present invention, the two first clamping portions 3311′ have the same structure and are respectively protrudingly extended toward the outer side of the first connecting portion 3312′. A first clamping surface 3313′ and a first clamping groove 3314′ are respectively formed on the bottom side of each first clamping portion 3311′.
(183) Correspondingly, the second clamping unit 332′ comprises two second clamping portions 3321′ and two second connecting portions 3322′ extended between the two second clamping portions 3321′. According to this preferred embodiment of the present invention, the two second clamping portion 3321′ have the same structure and are respectively protrudingly extended toward the outer side of the second connecting portion 3322′. A second clamping surface 3323′ and a second clamping groove 3324′ are respectively formed on the top side of each second clamping portion 3321′.
(184) According to the embodiment illustrated in the figure, the first clamping portion 3311′ on the left side of the first clamping unit 331′ and the second clamping portion 3321′ on the left side of the second clamping unit 332′ are coupled with each other so as to serve to seal the opening 154′ on the left side of the inflation channel 153′ of the air cushion body 10′. Correspondingly, the first clamping portion 3311′ on the right side of the first clamping unit 331′ and the second clamping portion 3321′ on the right side of the second clamping unit 332′ are coupled with each other so as to serve to seal the opening 154′ on the right side of the inflation channel 153′ of the air cushion body 10′.
(185) The first connecting portion 3312′ and the second connecting portion 3322′ respectively have a contact hole 3315′ and 3325′ in the middle portion thereof. The clamping power source 333′ comprises two clamping air cylinders 3331′ and two driving portions 3332′ respectively connected with the clamping air cylinders 3331′. The driving portions 3332′ move up and down in the perpendicularly arranged chutes 3333′ under the drive of the clamping air cylinders 3331′. Also, an end of each of the driving portions 3332′ is connected with the clamping air cylinders 3331′ respectively, while the other end thereof is mounted in the contact holes 3315′ and 3325′ respectively. Hence, when the clamping air cylinders 3331′ is operating, they will drive the driving portions 3332′ to move, so as to further drive the first connecting portion 3312′ and the second connecting portion 3322′ to move, which will drive the first clamping portion 3311′ and the second clamping portion 3321′ to move, such that a clamping operation can be conducted.
(186) More specifically, according to this preferred embodiment of the present invention, the two clamping air cylinders 3331′ output the power through the clamping air cylinders respectively. Also, the clamping air cylinder 3331′ is connected with the air supply device 40′ to obtain air pressure supply, such that the clamping air cylinder can be pushed to function, which detail will be further specified as follows. Person skilled in the art should be able to understand that the above mentioned way of providing power source can also be substituted by other ways.
(187) Therefore, in a cycle of inflation, when the first clamping air cylinder 3331′ on the upper side operates, it will drive the first driving portion 3332′ to shift downward in the chute 3333′ from the upper side and thus drive the first connecting portion 3312′ to shift downward, such that the two first clamping portions 3311′ will move downward respectively. Meanwhile, when the second clamping air cylinder 3331′ on the lower side operates, it will drive the second driving portion 3332′ to shift upward in the chute 3333′ from the lower side and thus drive the second connecting portion 3322′ to shift upward, such that the two second clamping portions 3321′ will move upward respectively, so as to respectively press against the two first clamping portions 3311′. That is to say, the first clamping surface 3313′ and the second clamping surface 3323′ will press against each other, such that the two sides of the inflation channel 153′ of the inflation unit 15′ of the air cushion body 10′ to be inflated will be clamped to seal between the first clamping surface 3313′ and the second clamping surface 3323′. Besides, the first clamping groove 3314′ and the second clamping groove 3324′ form an entire clamping groove, so as to accommodate the distal end portion 3212′ of the inflating portion 321′ of the inflation pipe 32′.
(188) Referring to
(189) In other words, the first clamping unit 331′ and the second clamping unit 332′ symmetrically arranged up and down. The positions of the first clamping portion 3311′ and the second clamping portion 3321′ are corresponding to each other. As a result, the first clamping surface 3313′ of the first clamping unit 331′ and the second clamping surface 3323′ of the second clamping unit 332′ are respectively tight pressed on the inflation end portions 151′ and 152′ of the two sides of the length direction of the inflation unit 15′ of the air cushion body 10′. Besides, the bottom wall formed by the first clamping portion 3311′ and the second clamping portion 3321′ renders the inflation end portions 151′ and 152′ attach on the distal end portion 3212′ of the inflation pipe 32′ tight. In this manner, as the main portion 3211′ of the inflating portion 321′ of the inflation pipe 32′ is extended into the inflation channel 153′ of the inflation unit 15′, the inflation inlet 154′ of the two sides of the inflation channel 153′ will be sealed off and under the clamping operation of the first clamping unit 331′ and the second clamping unit 332′ the inflation unit 15′ forms the sealed inflatable cavity 155′ therein. The main portion 3211′ of the inflating portion 321′ is in the inflatable cavity 155′. Air output from the vent hole 3214′ will enter the inflatable cavity 155′ and further enter each of the air storage units 13′.
(190) When the air storing unit 13′ of the air cushion body 10′ required to be inflated is inflated to a predetermined air pressure, the two clamping air cylinders 3331′ will respectively drive the corresponding driving portions 3332′ to move from each other, so as to drive the first clamping portion 3311′ and the second clamping portion 3321′ of the two clamping units 331′ and 332′ to move away from each other to the original positions thereof respectively. Therefore, the two sides of the inflated air cushion body 10′ are released and an inflation cycle is completed. Then, the clamping units 331′ and 332′ are ready for the inflation for the next air cushion body 10′ of the continuous type air cushion body 100′.
(191) In other words, the clamping device 33′ has a clamped state and an idle state. In the idle state the clamping device 33′ is at the original condition, where the first clamping unit 331′ and the second clamping unit 332′ of the clamping device 33′ are spacedly at resting positions. When a control command of starting an inflation process in received, the first clamping portion 3311′ and the second clamping portion 3321′ of the first clamping unit 331′ and the second clamping unit 332′ of the clamping device 33′ will move towards move towards each other under the effect of the clamping power source 333′, so as to shift from the idle state to the clamped state and to seal the two sides of the air cushion body 10′ to be inflated. After the inflation process is finished, the first clamping portion 3311′ and the second clamping portion 3321′ will move from each other so as to shift from the clamped state to the idle state.
(192) It is worth mentioning that the distance W between the two first clamping portions 3311′, which equals to the distance between the two second clamping portions 3321′, decides the allowable width for the continuous type air cushion body 100′ to be inflated, or the width of the air cushion body 10′. The air cushion body 10′ may have only one air storing unit 13′. That is to say, the width of the air storing unit 13′ can be substantially smaller than the distance W between the two first clamping portions 3311′, such that it is possible to inflate only one air storing unit 13′ in an inflation process. Certainly, the air cushion body 10′ may also have a plurality of the air storing units 13′, such as 2-20 air storing units 13′ for example, or more preferably, 5-15 air storing units 13′. Besides, the width of each of the air storing units 13′ can be arranged according to the needs.
(193) The mounting plate body 3111′ of the mounting plate 311′ has a clamping device retaining slot 3113′ formed thereon, which is extended along the vertical direction as the figure illustrated. The two driving portions 3332′ respectively pass through the clamping device retaining slot 3113′ and enter the contact holes 3315′ and 3325′ of the first connecting portion 3312′ and the second connecting portion 3322′. In this way, the two driving portions 3332′ are movable in the clamping device retaining slot 3113′. In other words, the two driving portions 3332′ can reach the outer side of the mounting plate 311′ from the inner side of the mounting plate 311′ by passing through the clamping device retaining slot 3113′. Therefore, the two clamping units 331′ and 332′ can be respectively on the opposite side of the mounting plate 311′ to the clamping air cylinders 3331′ of the clamping power source 333′, wherein the clamping air cylinders 3331′ can be installed in the box-like structure form by the bracket 31′.
(194) The clamping device 33′ further comprises at least a holding unit 334′ comprising two holding units 334′. Each holding unit 334′ comprises two holding blocks 3341′ and two guide rods 3342′ mounted between the two holding block 3341′. The first clamping unit 331′ and the second clamping unit 332′ further form top-to-bottom through guide rod hole 3316′ and 3326′ on the first connecting portion 3312′ and the second connecting portion 3322′ respectively for the guide rods 3342′ to pass through, such that the first clamping unit 331′ and the second clamping unit 332′ are positioned between the two holding blocks 3341′, while the holding blocks 3341′ are both affixed on the mounting plate 311′ through connection mode like paired bolts and nuts, etc.
(195) When the clamping device 33′ is shifting between the clamped state and the idle state, the first connecting portion 3312′ and the second connecting portion 3322′ of the first clamping unit 331′ and the second clamping unit 332′ are respectively moving vertically along the two guide rods 3342′, such that the two holding units 334′ can further have a function of limiting and retaining the first clamping unit 331′ and the second clamping unit 332′.
(196) Referring to
(197) It is worth noticing that according to the above preferred embodiment the splitting tool 351′ of the splitting device 35′ is provided in an anchoring groove 31431′. The anchoring groove 31431′ is extended from the retaining groove 3143′ and is located at the top of the inflating portion 321′ of the inflation pipe 32′, such that when the inflated inflation unit 15′ of the air cushion body 10′ moves forward, the cutting edge of the rotary cutting tool 3511′ of the splitting tool 351′ can rollingly and automatically cut off the inflation unit 15′ of the air cushion body 10′ along the fringe heat sealing seam 102′ or the folding line 106A thereof through the driving of the inflation unit 15′, so as to split the inflation unit 15′ and make the separated inflation end portions 151′ and 152′, which means two free extremities are not connected. The free inflation end portions 151′ 152′ can smoothly be moved forward along the inflation pipe 32′ under the action of the conveyor 34′ and eventually be detached from the inflation pipe 32′.
(198) In the entire splitting process, based on the arrangement of the anchoring groove 31431′ and the support of the inflating portion 321′ of the inflation pipe 32′, the cutting edge of the splitting tool 351′ in a rotary cutting tool shape may easily and straightly split the inflation unit 15′ along the fringe heat sealing seam 102′ of the inflation unit 15′ of the air cushion body 10′ and make the separated inflation end portions 151′ and 152′, which means two free extremities that are not connected. The free inflation end portions 151′ and 152′ can smoothly be moved forward along the inflation pipe 32′ under the act of the conveyor 34′ and eventually be detached from the inflation pipe 32′. It is worth noticing that the anchoring groove and the inflating portion 321′ of the inflation pipe 32′ are not communicated, such that the gas tightness of the inflating portion of the inflation pipe 32′ during the work process will not be affected.
(199) Person skilled in the art may modify the structure of the preferred embodiment of the present invention based on actual contexts. For example, the splitting tool 351′ can be embodied as a rotary cutting tool having a continuous serrated blade on the edge thereof, such that when the inflated inflation unit 15′ of the air cushion body 10′ move forward, the continuous serrated blade of the splitting tool 351′ can rollingly and automatically cut off the inflation unit 15′ of the air cushion body 10′ along the fringe heat sealing seam 102′ or the folding line 106A′ thereof through the driving of the inflation unit 15′ so as to split the inflation unit 15′ and make the separated inflation end portions 151′ and 152′, which means two free extremities are not connected. The free inflation end portions 151′ and 152′ can smoothly be moved forward along the inflation pipe 32′ under the act of the conveyor 34′ and eventually be detached from the inflation pipe 32′.
(200) Besides, person skilled in the art may determine to embody the splitting tool 351′ into any other structure based on actual needs, as long as the splitting tool 351′ can rotate relatively to the mounting plate 311′ of the bracket 31′ so as to be driven by the inflation unit 15′ to rollingly and automatically cut off and split the inflation unit 15′ along the fringe heat sealing seam 102′ or folding line 106A of the inflation unit 15′ of the air cushion body 10′ and make separated inflation end portions 151′ and 152′. In other words, those utilize identical or similar technical solutions with the present invention, solve identical or similar technical issues with the present invention, and achieve identical or similar technical results with the present invention are all within the scope of protection of the present invention, while specific implementations of the present invention shall not be limited thereto.
(201) Referring to
(202) More specifically, the first conveying unit 341′ comprises a first conveying gear 3411′, a first connecting shaft 3412′, and a first driving gear 3413′, wherein the first conveying gear 3411′ and the first driving gear 3413′ are respectively at the two ends of the first connecting shaft 3412′, such that the first connecting shaft 3412′ is extended between the first conveying gear 3411′ and the first driving gear 3413′. The second conveying unit 342′ comprises a second conveying gear 3421′, a second connecting shaft 3422′, and a second driving gear 3423′, wherein the second conveying gear 3421′ and the second driving gear 3423′ are respectively at the two ends of the second connecting shaft 3422′, such that the second connecting shaft 3422′ is extended between the second conveying gear 3421′ and the second driving gear 3423′.
(203) The first conveying gear 3411′ and the second conveying gear 3421′ are engaged with each other. The first driving gear 3413′ and the second driving gear 3423′ are engaged with each other. Thus, when the first driving gear 3413′ and the second driving gear 3423′ are engaged and rotate with each other, the first driving gear 3413′ transmits driving force through the first connecting shaft 3412′ to drive the first conveying gear 3411′ to rotate and the second driving gear 3423′ transmits driving force through the second connecting shaft 3422′ to drive the second conveying gear 3421′ to rotate, such that the engagement between the first conveying gear 3411′ and the second conveying gear 3421′ moves the inflation unit 15′ of the continuous type air cushion body 100′ forward.
(204) More specifically, for example, the first conveying gear 3411′ rotates counterclockwise and the second conveying gear 3421′ rotates clockwise, so as to generate forward driving force to drive the inflation unit 15′ of the continuous type air cushion body 100′ to move forward.
(205) According to this embodiment of the present invention, the conveying power source 343′ can comprise a conveying motor 3431′, an output shaft 3432′, and mounting bracket 3433′. The conveying motor 3431′ is mounted on the mounting bracket 3433′. The mounting bracket 3433′ is mounted on the mounting plate 311′. The motor 3431′ provides rotary driving force, which will be transmitted to the first conveying unit 341′ and the second conveying unit 342′ so as to drive the continuous type air cushion body 100′ to move forward. More specifically, the second conveying unit 342′ further comprises a first roller 3424′, a second roller 3425′, and a transmission belt 3426′. The first roller 3424′ is mounted on the output shaft 2432′ of the conveying power source 343′. The second roller 3425′ is mounted on the second connecting shaft 3422′. The transmission belt 3426′ surrounds around the first roller 3424′ and the second roller 3425′. Therefore, when the conveying motor 3431′ operates to drive and rotate the output shaft 2432′, the first roller 3424′ will be driven to rotate by the output shaft 2432′, so as to further drive the second roller 3425′ to rotate through the transmission belt 3426′ and drive the second connecting shaft 3422′ to rotate, such that the second driving gear 3423′ can be driven to rotate so as to bring the first driving gear 3413′ engaged with the second driving gear 3423′ to rotate, which eventually brings the first conveying gear 3411′ and the second conveying gear 3421′ to rotate in opposite directions.
(206) Person skilled in the art should be able to understand that the structure of the conveyor 34′ is just an example rather than limit to the present invention. That is, person skilled in the art may come up with other structures that are able to drive the continuous type air cushion body 100′ to move forward according to his needs.
(207) It is worth mentioning that by the time the next air cushion body 10′ has finished its inflation, the inflation unit 15′ of the previous air cushion body 10′ is at the middle of the two conveying gears 3411′ and 3421′, so when the inflation unit 15′ of the next air cushion body 10′ is not clamped well by the clamping device 33′, it will shrink. However, because of the limiting and spacing caused by the two conveying gears 3411′ and 3421′ to the inflation unit 15′ of the previous air cushion body 10′, the overall shrinkage of the continuous type air cushion body 100′ can be reduced.
(208) Besides, referring to
(209) Specifically speaking, referring the
(210) More specifically, the actuating mechanism 3353′ is affixedly arranged on the back side of the mounting plate 311′. The guide rail 336′ comprises two first guide rails 3361′ and two second guide rails 3362′. The shifting device 335′ further comprises a first shifting block 3354′ and a second shifting block 3355′. The first shifting block 3354′ is affixedly connected with the shifting mechanism 3352′ on a side thereof. The first shifting block 3354′ is affixedly connected with the second shifting block 3355′ on another side thereof. That is to say, the clamping mechanism 3351′, the shifting mechanism 3352′, the first shifting block 3354′, and the second shifting block are affixedly connected to move together.
(211) Further, the two ends of the first shifting block 3354′ are respectively slidably connected with the first guide rail 3361′ so as to slide along the first guide rail 3361′. The two ends of the second shifting block 3355′ are respectively slidably connected with the second guide rail 3362′, so as to slide along the second guide rail 3362′. The clamping mechanism 3351′ and the shifting mechanism 3352′ are affixed between the clamping power source 333′ and the actuating mechanism 3353′ through the first guide rails 3361′ and the second guide rails 3362′ to clamp or move the inflation unit 15′ of the air cushion body 10′ under the influence of the two second clamping air cylinder 33531′ and the two driving air cylinder 33532′.
(212) Referring to
(213) When the air cushion body 10′ is inflated through the inflation unit 15, it will be transformed from a plane state to a three-dimensional state. As a result, shrinkage will occur and causes a certain distortion or deviation after the air cushion body 10′ is inflated and released. Fortunately, according to this preferred embodiment, because the air cushion body 10′ has been brought by the clamping mechanism 3351′ and the shifting mechanism 3352′ of the shifting device 335′ toward the moving direction of the air cushion body 10′ for a certain distance before being inflated, distortion or deviation caused by shrinkage or influence on the inflation of the inflation unit 15′ to the air cushion body 10′ can all be prevented during the inflation process of the air cushion body 10′.
(214) In addition, referring to
(215) It follows that in an inflation cycle, the continuous type air cushion body 100′ is sleeved and arranged on the inflating portion 321′ of the inflation pipe 32′, so as to have the inflating portion 321′ be extended in the inflation channel 153′ of the inflation unit 15′. The conveyor 34′ is for driving the air cushion body 10′ of the continuous type air cushion body 100′ that is to be inflated to move to the inflation position, which is the position between the two clamping portions of the clamping device 33′. Then the clamping device 33′ may shift from the idle state to the clamped state to seal the two sides of the inflation channel 153′ of the inflation unit 15′ of the air cushion body 100′. Besides, the air supply device 40′ and the inflation pipe 32′ are connected and communicated, such that the inflation pipe 32′ can inflate the air cushion body 10′. After the inflation is finished, the clamping device 33′ will shift from the clamped state to the idle state. The conveyor 34′ will drive the continuous type air cushion body 100′ to move forward, so as to have the inflated air cushion body 10′ leave the inflation position until the next air cushion body 10′ move into the inflation position.
(216) Person skilled in the art should be able to understand that the inflation apparatus 30′ according to the present invention may also inflate independent and separate air cushion bodies 10′ one by one. Specifically, the inflation unit 15′ of an independent air cushion body 10′ can be sleeved and arranged on the inflating portion 321′ of the inflation pipe 32′. Then the subsequent clamping and inflation processes will be conducted. After the inflation, the inflated air cushion body 10′ can be taken off from the opposite direction of how it has been arranged along the inflating portion 321′ of the inflation pipe 32′. In this embodiment, the air cushion body 10′ may also have an opening 154′ on a side thereof, while have the other side sealed. That is, when the apparatus inflates independent air cushion bodies 10′ one by one, it will not have to split the inflation unit 15′ of the air cushion body 10′, but to have it taken off from the opposite direction after inflation.
(217) The following description will further describes the inflation system according to this preferred embodiment of the present invention, wherein the control device 50′ is the core of the system for controlling the steps of clamping, blowing, loosening, conveying, and etc. of the inflation apparatus 30′. More specifically, the control device 50′ comprises a main control unit 51′, a pressure regulation unit 52′, a pressure control unit 53′, three air cylinder controlling switches that can be respectively embodied as a cylinder control solenoid valve 54′, a clamping cylinder control solenoid valve 56′, and a driving cylinder control solenoid valve 57′, and an inflation controlling switch that can be embodied as an inflation control solenoid valve 55′.
(218) The main control unit 51′ is the control center of the control device 50′. The pressure regulation unit 52′ is to control the air pressure provided by the air supply device 40′ so as to maintain the air pressure within a predetermined range, which, if applicable, is around 0.2 MPa. The pressure control unit 53′ is for detecting if the air pressure that the inflation apparatus 30′ provided to each air storing unit 13′ of the air cushion body 10′ has attained the predetermined value. For example, according to this embodiment, the pressure control unit 53′ can comprise a pressure control module 531′ and a pressure sensor 532′. When the pressure sensor 532′ detected that air pressure in the pipeline connected with the inflation pipe 32′ has reached around 0.1 Mpa, the pressure control module 531′ will determine that the inflation is completed and send a message of inflation completion to the main control unit 51′. It is understandable that the pressure control module 531′ may also be integrated in the main control unit 51′. The cylinder control solenoid valve 54′ is for controlling if there is air supply to the clamping air cylinder 3331′. The clamping cylinder control solenoid valve 56′ is for controlling if there is air supply to the second clamping air cylinder 33531′. The driving cylinder control solenoid valve 57′ is for controlling if there is air supply to the driving air cylinder 33532′. The inflation control solenoid valve 55′ is to open or close the pipeline of the air supply device 40′ connected into the inflation pipe 32′ of the inflation apparatus 30′ so as to start or stop the inflation process. It is worth mentioning that the specific values, such as 0.2 Mpa and 0.1 Mpa, are just examples, rather than limits to the scope of the present invention.
(219)
(220) More specifically, the inflation pipe 32′ of the inflation apparatus 30′ is connected with the main passage 42′ through the inflation duct 43′. Gas provided by the air supply device 40′ is further regulated through the pressure regulation unit 52′ in, for example, about 0.2 Mpa and sent to the inflation pipe 32′ of the inflation apparatus 30′ through the inflation duct 43′, which forms an inflation pipeline structure. The inflation control solenoid valve 55′ on the pipeline structure can be opened or closed to start or stop the inflation process.
(221) A branch, which is the pressure control duct 44′, is further diverged from the inflation duct 43′ to be connected with the pressure control unit 53′ so as to connect the air pressure of the pipeline of the inflation pipe 32′ to the pressure control duct 44′. If the air pressure attains 0.1 Mpa, it means that the air pressure in each of the air storage units 13′ of the air cushion body 10′ attains 0.1 Mpa. Therefore, it can send the detected air pressure value or a command of stopping inflation to the main control unit 51′.
(222) The two air cylinder ducts 45′, the two clamping air cylinder ducts 46′, and the two driving air cylinder ducts 47′ are respectively further connected with the main passage 42′ so as to respectively provide air supply to the two clamping air cylinders 3331′, the second clamping air cylinder 33531′, and the driving air cylinder 33532′. Besides, the opening and closing of the cylinder control solenoid valve 54′, the clamping cylinder control solenoid valve 56′, and the driving cylinder control solenoid valve 57′ respectively control the operations of the two clamping air cylinders 3331′, the second clamping air cylinder 33531′, and the driving air cylinder 33532′, which can drive the first and second clamping portion 3311′ and 3321′ of the first and second clamping unit 331′ and 332′ of the clamping device 33′, the first clamping block 33511′ and the second clamping block 33512′, and the shifting mechanism 3352′ to switch among the clamped state, shifting state, and idle state.
(223) The main control unit 51′ comprises a main control module 511′ and a clamping driver module 512′, a second clamping driver module 510′, a driver module 519′, a conveying driver module 513′, an inflation driver module 514′, and a display 515′ that are operatively connected with the main control module 511′. The main control module 511′ is embodied as a processor for receiving and processing information as well as sending out control commands. The clamping driver module 512′ is operatively connected with the cylinder control solenoid valve 54′, such that when the clamping driver module 512′ receives a control command of starting or stopping the clamping device 33′ from the main control module 511′, the clamping driver module 512′ can send a control command to the cylinder control solenoid valve 54′ to open or close the cylinder control solenoid valve 54′ so as to correspondingly actuate a clamping or loosening operation. The second clamping driver module 510′ is operatively connected with the second clamping cylinder control solenoid valve 56′, such that when the second clamping module 510′ receives a control command of starting or stopping the clamping mechanism 3351′ from the main control module 511′, the second clamping driver module 510′ can send a control command to the clamping cylinder control solenoid valve 56′ to open or close the clamping cylinder control solenoid valve 56′ so as to correspondingly actuate a clamping or loosening operation. The driver module 519′ is operatively connected with the driving cylinder control solenoid valve 57′, such that when the driver module 519′ receives a control command of starting or stopping the shifting mechanism 3352′ from the main control module 511′, the driver module 519′ can send a control command to the driving cylinder control solenoid valve 57′ to open or close the driving cylinder control solenoid valve 57′ so as to correspondingly actuate shifting operation for different directions. The conveying driver module 513′ is operatively connected with the conveying motor 3431′ of the conveyor 34′, such that when the conveying driver module 513′ received a control command of starting or stopping the conveyor 34′ from the main control module 511′, the conveying driver module 513′ can send a control command to the conveying motor 3431′ to switch on or off the conveying motor 3431′ so as to correspondingly actuate or terminate the forward drive of the conveyor 34′ to the continuous type air cushion body 100′. The inflation driver module 514′ correspondingly controls the opening and closing of the inflation control solenoid valve 55′.
(224) The display 515′ is for displaying corresponding information, which includes the output air pressure value of the air supply device 40′, the air pressure numeric value obtained by the pressure control unit 53′ from the inflation pipeline structure, the conveying speed of the moving conveyor 34′ driven by the conveying motor 3431′, and etc. The display 515′ may also provide a control interface, which comprises control buttons arranged thereon for the user to set up relevant parameters and control the operation of the entire inflation process.
(225) Optionally, the main control unit 51′ further comprises an alarm module 516′. The alarm module 516′ will send warning message to the main control module 511′ to have the main control module 511′ shut-down and stop the entire system, if certain incidents occur, including, for example, if the clamping device fails to clamp well or completely fails clamp on the inflation unit 15′ of the air cushion body 10′, rendering abnormal the air pressure value being obtained by the pressure control unit 53′ from the inflation pipeline structure; if relevant solenoid valves 54′ and 55′ fail; if leakage occurs on pipelines of the air supply device 40′ rendering the pressure regulation unit 52′ fail to stabilize the air pressure; if the conveying motor 3431′ of the conveyor 34′ breaks down; and etc.
(226) In other words,
(227) In other words, more specifically, according to the arrangement of the inflation system of the present invention, the entire control process of the inflation system can be like follows. When the entire system has been connected to an external power source, such as the public alternating current power supply network, the main control module 511′ can send a command of starting clamping operation to the clamping driver module 512′, such that the clamping driver module 512′ will open the cylinder control solenoid valve 54′ to allow the pipelines between the main passage 42′ of the air supply device 40′ and the two air cylinder ducts 45′ be communicated and connected. As a result, air provided by the air supply device 40′ will respectively drive the two clamping air cylinders 3331′ to function through the two air cylinder ducts 45′, which drives the clamping portions 3311′ and 3321′ of the two clamping unit 331′ and 332′ to move to the predetermined positions of the clamped state by the drive of the driving portions 3332′. Eventually the clamping portions 3311′ and 3321′ will press against each other to seal the two sides of the inflation channel 153′ of the inflation unit 15′ of the air cushion body 10′ to be inflated, so as to create the sealed inflatable cavity 155′. Then, the clamping driver module 512′ will generate a predetermined schedule according to its judgement on the two clamping air cylinder 3331′. When the clamping portions 3311′ and 3321′ reach the clamped state, the clamping driver module 512′ will close the cylinder control solenoid valve 54′.
(228) Afterward, the main control module 511′ may send a control command of starting inflation to the inflation driver module 514′ to open the inflation control solenoid valve 55′, such that gas of the air supply device 40′ will be allowed to enter the inflation pipe 32′ through the main passage 42′ and the inflation duct 43′ and further be released from the vent hole 3214′ of the inflating portion 321′ of the inflation pipe 32′ to enter the inflatable cavity 155′ of the inflation unit 15′. Then the gas will pass through each air inlet channel 23′ formed by the valve films 21′ and 22′ to enter the corresponding air storage units 13′.
(229) Meanwhile, the pressure sensor 532′ of the pressure control unit 53′ will detect air pressure in the pipeline between the pressure control duct 44′ and the inflation pipe 32′. In this embodiment, if the detected air pressure value is, for example, around 0.1 Mpa, the main control module 511′ will send a command of stopping inflation to the inflation driver module 514′ so as to close the inflation control solenoid valve 55′, such that gas of the air supply device 40′ will stop entering the inflation pipe 32′ through the inflation duct 43′ of the main passage 42′, which terminates the inflation process.
(230) When it determines the completion of the inflation process, the main control module 511′ will send out a control command of loosening the clamping device 33′, such that the clamping driver module 512′ will drive the two clamping air cylinders 3331′ to move back to their original positions. Then, the two clamping portions 3311′ and 3321′ will move from each other and shift from the clamped state to the idle state.
(231) Then after the clamping device 33′ goes back into the idle state, the main control module 511′ will send a control command of starting the conveyor 34′, such that the conveying driver module 513′ drives the conveying motor 3431′ to function to drive the first conveying gear 3411′ and the second conveying gear 3421′ to rotate, so as to drive the split inflation unit 15′ of the continuous type air cushion body 100′ to move forward and lead the next air cushion body 10′ to be inflated to the inflation position.
(232) According to the description of the inflation system of the above preferred embodiment of the present invention, the present invention further provides an assembling method for the inflation system, wherein the inflation system is for continuously and automatically inflating a plurality of connected air cushion bodies 10′ of the continuous type air cushion body 100′. The method comprises the following steps.
(233) The assembly steps of the inflation apparatus 30′ include the following: assembling the inflation pipe 32′ on the mounting plate 311′ along the length direction of the mounting plate 311′; mounting the holding block 3341′ of the top or bottom side of the clamping device 33′ on the mounting plate 311′; mounting the guide rod 3342′ on the holding block 3341′ and respectively mounting the first clamping unit 331′ and the second clamping unit 332′ on the guide rod 3342′; mounting the holding block 3341′ of the bottom or top side on the guide rod 3342′ and further affixing it on the mounting plate 311′; mounting the clamping power source 333′ on the mounting plate 311′ and allowing the two driving portions 3332′ to pass through the clamping device retaining slot 3113′ of the mounting plate 311′ so as to be assembled on the contact holes 3315′ and 3325′ of the first clamping unit 331′ and the second clamping unit 332′; mounting the actuating mechanism 3353′ of the shifting device 335′ on the mounting plate 311′; anchoring the relative positions among the inflation pipe, the shifting mechanism 3352′, and the clamping mechanism 3351′ of the shifting device 335′ through the guide rail 336′; mounting the splitting tool 351′ of the splitting device 35′ on the holding device 352′ and affixing the holding device 352′ on the mounting plate 311′; connecting the splitting tool 351′ to the proximal end 3213′ of the inflating portion 321′ of the inflation pipe 32′; mounting the mounting bracket 3433′ that has the conveying motor 3431′ mounted thereon on the mounting bracket 3433′; mounting the first roller 3424′ on the output shaft 3432′ connected with the conveying motor 3421′; connecting the first and second connecting shaft 3412′ and 3422′ of the first and second conveying unit 341′ and 342′ with the first and second driving gear 3413′ and 3423′ and allowing the first and second connecting shaft 3412′ and 3422′ to pass through the connecting shaft spacing hole 3114′ of the mounting plate 311′ to reach the outer side of the mounting plate 311′; respectively mounting the first and second conveying gear 3411′ and 3421′ on the first and second connecting shaft 3412′ and 3422′; further mounting the second roller 3425′ on the second connecting shaft 3422′; and connecting the first and second roller 3424′ and 3425′ with the transmission belt 3426′.
(234) The steps of assembling the control device 50′ and wiring including: respectively electrically connecting the pressure regulation unit 52′, the pressure control unit 53′, the cylinder control solenoid valve 54′, and the inflation control solenoid valve 55′ with the main control unit 51′ through wires and allowing the entire circuit to be connected with external power source.
(235) The process for assembling the air supply device 40′ and arranging the pipelines includes steps of mounting the main passage 42′ on the electric air pump 41′ and branching a pipeline from the main passage 42′ for inflating. Specifically, the pressure regulation unit 52′ is installed on the main passage 42′. Besides, the main passage 42′ further connects the inflation control solenoid valve 55′ and the inflation duct 43′ and connects the inflation duct 43′ with the inflation pipe 32′ assembled on the mounting plate 311′. The process further comprises steps of branching another branch from the inflation duct 43′ to the pressure control unit 53′ by the pressure control pipeline 44′ and branching another branch from the inflation duct 43′ for driving the clamping air cylinder 3331′. Specifically, the cylinder control solenoid valve 34′ is installed on this branch and the two air cylinder ducts 35′ are respectively connected with two clamping air cylinders 3331′ for respectively driving two clamping units 331′ and 332′ to conduct the clamping and loosening operations.
(236) Person skilled in the art should be able to understand that the specific assembly technology of the above assembly steps is just an example rather than limit to the present invention. In addition, some of the orders of the steps may be changed.
(237) Referring to
(238) More specifically, according to the above embodiment, the feeding device 60′ may comprise a feeding bracket 61′ and a feeding unit 62′ assembled on the feeding bracket 61′. The feeding unit 62′ comprises a stationary axle 621′ and a reel 622′ adapted for rotatably mounted on the stationary axle 621′. The reel 622′ is adapted for mounting an end of the continuous type air cushion body 100′ and the continuous type air cushion body 100′ is adapted for being wrapped on the reel 622′. Besides, the other end of the continuous type air cushion body 100′ is guided to move forward to execute the continuous and automatic inflation process. The feeding bracket 61′ can further integrally mounted on the bracket 31′ of the inflation apparatus 30′, so as to form an integral structure.
(239) Person skilled in the art should be able to understand that the structure of the feeding device 60′ is just an example rather than limit to the present invention. That is, the feeding device 60′ may also be made into other structures, such as a structure like a storage box, wherein the continuous type air cushion body 100′ may be stored in the storage box in a folded state and have an end pulled out from an opening of the storage box for being guided to moved forward and inflated in a continuous and automatic manner.
(240) The collecting device 70′ can be embodied as a rolling up device, which may comprise a winding reel 72′ driven by a rotating motor 71, which rolls the inflated air cushion bodies 10′ for later use through rotation. Person skilled in the art should be able to understand that the structure of the collecting device 70′ is just an example rather than limit to the present invention. That is, the collecting device 70′ may also be made into other structures, such as a structure like a collecting box.
(241) Referring to
(242) The hollow structured receiving rack 71′ comprises a receiving shaft 713′ arranged internally and driven by a rotating motor 73′. When the air cushion body 10′ is inflated, because the air cushion body 10′ passes through the inlet 7111′ of the receiving rack 71′ to be connected on the receiving shaft 713′, the rotating motor 73′ drives the receiving shaft 713′ to rotate, so as to drive the inflated air cushion body 10′ to move upward along the internal space of the hollow structured receiving rack 71′ and eventually to emerge from the outlet 7121′ of the receiving rack 71′.
(243) According to the preferred embodiment, the inflated air cushion body 10′ is brought by the receiving shaft 713′ in the receiving rack 71′ to be emerged from the outlet 7121′ of the receiving rack 71′ and dropped on the ground or a receiving platform. The advantages of this structural arrangement include the following:
(244) Firstly, the receiving area of the inflated air cushion body 10′ is enlarged, so as to provide more storing space for the inflated air cushion body 10′.
(245) Secondly, because the inflated air cushion body 10′ has to pass through the receiving rack 71′ before falling to the ground or platform, there is extra buffer time for operating personnel to switch from various operational procedures, which increases working efficiency of the operating personnel.
(246) Thirdly, the increased storing space for the inflated air cushion body 10′ allows the operating personnel to choose to pack the product after the inflation is totally finished based on the circumstances, rather than to conduct the inflation and packing operation at the same time. In other words, it can take only one operating personnel to finish the whole inflation and packing operation, which saves labor cost of the production process.
(247) It is worth emphasizing that person skilled in the art may determine a specific position of the collecting device 70′ and the relations, such as permanent connection, dismountable connection, separated structure, etc., between the collecting device 70′ and the inflation apparatus based on actual needs. Besides, one may determine a specific structure for the collecting device 70′ based on actual needs. For example, if one needs to keep the output direction of the inflated air cushion body 10′, he can just add a part to guide the output direction of the inflated air cushion body 10′ on the collecting device 70′. In other words, those utilize identical or similar technical solutions with the present invention, solve identical or similar technical issues with the present invention, and achieve identical or similar technical results with the present invention are all within the scope of protection of the present invention, while specific implementations of the present invention shall not be limited thereto.
(248) Moreover, as an enhanced mode of the preferred embodiment of the present invention, the collecting device 70′ of the inflation apparatus for the air cushion body can further comprise a winding rack (not shown in the drawings, hereinafter). The winding rack comprises a winding reel (not shown in the drawings, hereinafter). The winding reel can wrap the inflated air cushion body 10′ emerged from the outlet of the receiving rack 71′ through automatic rotation driven by external force. Person skilled in the art should be able to understand that the structure of the collecting device 70′ is just an example rather than limit to the present invention. That is, the collecting device 70′ may also be made into other structures, such as a structure like a collecting box.
(249) It is worth emphasizing that, according to this preferred embodiment, the receiving shaft 713′ and the winding reel are controlled by the same power switch button. That is, when the power switch is on to utilize the rotating motor 73′ to drive the receiving shaft 713′ to receive the products, the winding reel will be started at the same time, so as to wrap the air cushion body 10′ emerged from the outlet 7121′ of the receiving rack 71′. Person skilled in the art may also correspondingly modify the structure of the collecting device based on actual situation, such as to drive the receiving shaft 713′ and the winding reel with the same motor 73′, such that it can be ensured that the air cushion body 10′ emerged from the outlet of the receiving rack 71′ can be wrapped by the winding rack timely. Therefore, working efficiency of the inflation apparatus for the air cushion body according to the present invention can be further enhanced.
(250) It is worth mentioning that according to another alternative mode, after the air cushion body 10′ is inflated, the inflation system may further comprise a cutting device to cut down the inflated air cushion body 10′ from the continuous type air cushion body 100′ so as to be collected by the user. The dividing device may be a knife tool or means that utilizes other cutting ways, such as an energy flow cutter. It is understandable that in order for accurate cutting, it may further provide a visual scanning device for determining the quantity of the air cushion body 10 of the air storing unit 13 being cut at a time.
(251) Referring to
(252) Referring to the figure, the feeding bracket 61A′ of the feeding device 60A′ can be embodied as a support disk. The stationary axle 621A′ and the reel 622A′ of the feeding unit 62A′ are both vertically arranged. Correspondingly, the continuous type air cushion bodies 100 can substantially be reeled and rolled in an upright or vertical manner in the subsequent wrapping step.
(253) In addition, the inflation apparatus 30′ further comprises a guiding device 37′, which comprises a guiding body 371′ and a guiding groove 372′ formed thereat. The continuous type air cushion body 100′ has the air cushion body 10′ to be inflated in the guiding groove 372′ for being driven forward, such that the inner surface of the guiding body 371′ limits and retains the air cushion body 10′ during the inflation process, so as to prevent the air cushion body 10′ from fleeing and tilting during the inflation, which further ensure the success and smooth of the inflation process.
(254) Correspondingly, according to the above description, the inflation technology of the present invention includes a basis of inventive concept as follows. Namely, the present invention provides an inflation method for conducting an inflation process for an air cushion body 10′. The air cushion body 10′ comprises one or more air storing units 13′ formed by two air cell films 11′ and 12′, an inflation valve 20′ formed by at least two valve films 21′ and 22′, and an inflation unit 15′ integrally connected with the one or more air storing units 13′ and comprising two inflation end portions 151′ and 152′ overlapping with each other, wherein an inflation channel 153′ is formed between the two inflation end portions 151′ and 152′. The method includes the following steps.
(255) (a) arranging a vent hole 3214′ of the inflation pipe 32′ which is connected with the air supply device 40′ in the inflation channel 153′;
(256) (b) closing the openings 154′ at the two ends of the inflation channel 153′ of the inflation unit 15′ so as to form a sealed inflatable cavity 155′;
(257) (c) driving the air cushion body 10′ to move forward for a certain distance with the sealed inflation unit 15′, so as to prevent position shift of the inflated air cushion body 10′ due to shrinkage;
(258) (d) inflating the inflatable cavity 155′ through the vent hole 3214′, such that air enters each air storing unit 13′ via each air inlet channel 23′ formed between the valve films 21′ and 22′, so as to complete the inflation process; and
(259) (e) releasing the openings 154′ of the two ends of the inflation channel 153′ of the inflation unit 15, such that the air cushion body 10′ is ready to be taken off from the inflation pipe 32′, so as to obtain the air cushion body 10′ that is inflated.
(260) More specifically, in the step (a), the sealed distal end portion 3211′ of the inflating portion 321′ of the inflation pipe 32′ enters the opening 154′ of a side of the inflation channel 153′ and leaves away from the opening 154′ of another side thereof, such that the main portion 3211′ of the inflating portion 321′ will be remained in the inflation channel 153′, which means the main portion 3211′ of the inflating portion 321′ is extended in the entire inflation channel 153′ between the two inflation end portions 151′ and 152′ of the inflation unit 15′.
(261) In the step (a) and the step (e), the openings of the two ends of the inflation channel 153′ are closed and released through the complementary clamping portions 3311′ and 3321′ of a clamping device 30′.
(262) The step (d) comprises the action of starting air supply of the air supply device 40′ to the inflation pipe 32′ through switching on the inflation control solenoid valve 55′ in the pipeline between the air supply device 40′ and the inflation pipe 32′.
(263) The step (d) further comprises the following steps: detecting air pressure in the pressure control pipeline 44′ connected with the inflation pipe 32′ and switching off the inflation control solenoid valve 55′ arranged in the pipeline between the air supply device 40′ and the inflation pipe 32′ to thereby stop the inflation process if the air pressure reached the predetermined air pressure, such as around 0.1 Mpa.
(264) Preferably, the above method further comprises the following step:
(265) (f) splitting the inflated inflation unit 15′ of the air cushion body 10′ and detaching the inflated air cushion body 10′ from the inflation pipe 32′ along the length direction of the inflating portion 321′ of the inflation pipe 32′;
(266) A plurality of the air cushion bodies 10′ is connected to form a continuous type air cushion body 100′, where the continuous type of inflation units 15′ of the continuous type air cushion body 100′ comprise an inflation channel 153′ formed to continuously communicate per two adjacent air cushion bodies 10′. Then, the method further comprises the following step after the step (f):
(267) (g) driving the inflated air cushion body 10′ of the continuous type air cushion body 100′ to move forward, so as to have another adjacent air cushion body 10′ enter the inflation position and to continuously automatically inflate a plurality of air cushion bodies 10′ of the continuous type air cushion body 100′.
(268) Further, in the step (g), the driving force can be provided by two conveying gears 3411′ and 3421′ which are driven by a motor and are applied on the splitted inflation end portions 151′ and 152′ of the inflation unit 15′. Besides it also comprises the following step: the transfer rate and the transfer time of the two conveying gear 3411′ and 3421′ are obtained and utilized for determining if the next air cushion body 10′ has entered the inflation position.
(269) Subsequently, the above method may further comprises the following step: splitting the inflated air cushion body 10 from the continuous type air cushion body 100′ or continuously rolling up the inflated air cushion bodies 10′ together.
(270) In addition, according to the preferred embodiment of the present invention, an operating system of the inflation apparatus 30′ for the air cushion body is further provided. Referring to
(271)
(272) Further, referring to
(273) According to the above preferred embodiment of the present invention, the air volume setting button 203 comprises a “+” button 2031 and a “−” button 2032. As the air volume of operation of the air supply device needs to be adjusted, one may utilize the “+” button 2031 or the “−” button 2032 on the air volume setting button 203 to adjust the inflation volume of the air supply device during the operation. The user may also adjust the inflation volume of the air supply device based on actual situation at any time during the operation of the inflation apparatus for the air cushion body without shutting down the inflation apparatus for the air cushion body.
(274) Correspondingly, the rate setting button 204 comprises a “+” button 2041 and a “−” button 2042. As the transfer rate of the conveyor needs to be adjusted, one may utilize the “+” button 2041 or the “−” button 2042 on the rate setting button 204 to adjust the transfer rate of the conveyor during the operation. The user may also adjust the transfer rate of the conveyor at any time based on actual situation during the operation of the inflation apparatus for the air cushion body without shutting down the inflation apparatus for the air cushion body.
(275) The operating mode setting button 205 comprises a “counting mode” button 2051 and a “continual mode” button 2052. Correspondingly, the circuit board 300 also comprises a counting module (not shown in the drawings, hereinafter) and a continual module (not shown in the drawings, hereinafter) arranged thereon. The counting mode 2051 is electrically connected with the counting module for commanding the counting module to count for the feeding device of the inflation apparatus for the air cushion body or to suspend the feeding device of the inflation apparatus for the air cushion body when it has fed a predetermined quantity of the air cushion bodies. The continual mode 2052 is electrically connected with the continual module for commanding the continual module to drive the feeding device of the inflation apparatus for the air cushion body to operate continuously. In other words, referring to
(276) Besides, as a further enhanced mode of the operating system of the inflation apparatus for the air cushion body according to the preferred embodiment of the present invention, the man-machine interface panel 200 further comprises a default mode button 206. Correspondingly, the circuit board 300 further comprises a default mode module (not shown in the drawings, hereinafter) electrically connected with the default mode button 206, such that the default mode button 206 can command the default mode module to apply the default operating mode to the inflation apparatus for the air cushion body. It should be noted that when the default mode button 206 and the start-stop button 201 are sequentially pressed, the inflation apparatus for the air cushion body will enter the default mode directly but allow the parameters of operation be changed.
(277) Moreover, according to this preferred embodiment, the man-machine interface panel 200 further comprises a custom button 207 electrically connected with the temperature setting module, the air volume setting module, and the rate setting module on the circuit board 300. When the custom button 207 is pressed, it will enter the custom mode, such that the user may adjust the operating temperature of the heat sealing device of the inflation apparatus for the air cushion body, the inflation volume of the air supply device, and the transfer rate of the conveyor based on the needs until all parameters are optimized. Then the user may press the start-stop button 201 to have the inflation apparatus for the air cushion body operate in its optimized condition.
(278) In other words, when the user notices that the products produced under the default mode that is started after the default mode button is pressed, fail to meet the expected standards, he or she may press the custom button 207 to have the inflation apparatus for the air cushion body enter the custom mode and adjust the operating temperature of the heat sealing device of the inflation apparatus for the air cushion body, the inflation volume of the air supply device, and the transfer rate of the conveyor based on actual needs until the inflation apparatus for the air cushion body has operated in its optimized condition.
(279) It is worth emphasizing that whether the default mode button 206 is pressed for entering the default mode or the custom button 207 is pressed and the operating temperature of the heat sealing device of the inflation apparatus for the air cushion body, the inflation volume of the air supply device, the transfer rate of the conveyor is adjusted, the start-stop button 201 must be pressed after the pressing of the default mode button 206 or custom button 207 and the parameter settings, such that the inflation apparatus for the air cushion body can really enter the corresponding operating mode.
(280) According to a further enhanced mode to the preferred embodiment, the inflation apparatus for the air cushion body further comprises a buzzer (not shown in the drawings, hereinafter) electrically connected with the heat sealing device and the circuit board 300. After the start-stop button 201 of the operating system is pressed, the heat sealing device of the inflation apparatus for the air cushion body will heat up. When the temperature of the heat sealing device has attained the predetermined value, the buzzer will give an alarm and the circuit board 300 will drive the inflation apparatus for the air cushion body to enter the operating mode.
(281) Besides, after the start-stop button 201 of the operating system of the inflation apparatus for the air cushion body is pressed to start the operation of the inflation apparatus for the air cushion body, it is strictly prohibited to have any object contact any high temperature or rotating part of the inflation apparatus for the air cushion body during the operation of the inflation apparatus for the air cushion body, so as to prevent scald or injury caused by the high temperature or rotating part of the inflation apparatus for the air cushion body. Moreover, it is also prohibited to have any object contact any high temperature part of the inflation apparatus for the air cushion body in ten minutes after the inflation apparatus for the air cushion body stops, so as to prevent scald caused by the residual heat of the inflation apparatus for the air cushion body.
(282) Referring to
(283) Speaking in detail, the accessibility button 208 comprises a reel forward button 2081 and a reel backward button 2082, while the circuit board 300 also correspondingly have a reel forward module (not shown in the drawings, hereinafter) for controlling the reel to rotate forward and a reel backward module (not shown in the drawings, hereinafter) for controlling the reel to rotate backward. The reel forward button 2081 is electrically connected with the reel forward module so as to send command to the reel forward module to drive the reel of the feeding device of the inflation apparatus for the air cushion body to rotate forward to bring the remained consecutive air cushion bodies on the inflation apparatus for the air cushion body to wind. The reel backward button 2082 is electrically connected with the reel backward module so as to send command to the reel backward module to drive the reel of the feeding device of the inflation apparatus for the air cushion, body to rotate backward to bring the remained consecutive air cushion bodies on the inflation apparatus for the air cushion body to unwind.
(284) Preferably, the reel forward module and the reel backward module of the circuit board 300 are not connected with the heat sealing device. In other words, when the reel forward button 2081 is pressed, the reel forward button 2081 will send a command to the reel forward module to drive the reel of the feeding device of the inflation apparatus for the air cushion body to rotate forward. However, the heat sealing device of the inflation apparatus for the air cushion body will not be heated up at the mean time. Correspondingly, when the reel backward button 2082 is pressed, the reel backward button 2082 will send a command to the reel backward module to drive the reel of the feeding device of the inflation apparatus for the air cushion body to rotate backward. However, the heat sealing device of the inflation apparatus for the air cushion body will not be heated up at the mean time as well. Hence, whether the remained consecutive air cushion bodies is winded or unwind on the inflation apparatus for the air cushion body, they will not be heat sealing by the heat sealing device. This arrangement not only saves energy, but also reduces waste.
(285) More preferably, the man-machine interface panel 200 further comprises a time display 209 and the circuit board 300 further comprises a time module (not shown in the drawings, hereinafter) arranged thereon electrically connected with the time display 209 of the man-machine interface panel 200 for displaying current time and/or continuous operating time of the inflation apparatus for the air cushion body.
(286) It is worth emphasizing that according to the operating system of the inflation apparatus for the air cushion body of the present invention, the buttons of the man-machine interface panel 200 are all virtual buttons, which means that all of the buttons are touch screen buttons arranged on the man-machine interface panel 200. Certainly, person skilled in the art may replace all touch screen buttons into physical keyboards based on actual situation. In addition, person skilled in the art may optionally utilize any one, any combination, or all of the above buttons based on actual contexts or specific requirements. Nonetheless, those utilize identical or similar technical solutions with the present invention, solve identical or similar technical issues with the present invention, and achieve identical or similar technical results with the present invention are all within the scope of protection of the present invention, while specific implementations of the present invention shall not be limited thereto.
(287) The present invention further provides an operational method of the inflation apparatus for the air cushion body, comprising the following steps:
(288) (1) turning on the power of the operating system of the inflation apparatus for the air cushion body;
(289) (2) setting up the operational parameters in the operating system of the inflation apparatus for the air cushion body;
(290) (3) starting or stopping the operation of the set parameters; and
(291) (4) turning off the power of the operating system of the inflation apparatus for the air cushion body.
(292)
(293) It is worth noticing that there is no particular order or sequence among the steps of setting up the temperature parameter, setting up air volume parameter, setting up rate parameter, and setting up operating mode. Person skilled in the art may adjust the order of the above steps of setting based on actual needs, while the implementation of the present invention shall not be limited thereby.
(294) Also, in the operational method of the operating system of the inflation apparatus for the air cushion body according to the present invention, the step of setting up temperature parameter not only includes a step of directly setting up the default operating temperature of the inflation apparatus for the air cushion body, but also includes a step of increasingly and decreasingly adjusting the operating temperature of the inflation apparatus for the air cushion body in service, so as to increase or decrease the inflation temperature of the inflation apparatus for the air cushion body during the inflation process. Similarly, the step of setting up the air volume further comprises a step of directly setting up the default working air volume of the inflation apparatus for the air cushion body and a step of increasingly and decreasingly adjusting the working air volume of the inflation apparatus for the air cushion body in service, so as to increase or decrease the inflation volume of the inflation apparatus for the air cushion body during the inflation process. Also, the step of setting up the rate parameter further comprises a step of directly setting up the default operating rate of the inflation apparatus for the air cushion body and a step of increasingly and decreasingly adjusting the operating rate of the inflation apparatus for the air cushion body in service, so as to speed up or to slow down the inflating rate of the inflation apparatus for the air cushion body during the inflation process. The step of setting up operating mode comprises a step of setting for counting mode and a step of setting for continual mode, wherein the user may select a specific step based on actual situation.
(295) As an enhanced mode of the preferred embodiment of the present invention, the step of setting up operational parameters of the inflation apparatus for the air cushion body comprises selecting a default mode so as to set up all operational parameters of the inflation apparatus for the air cushion body at once. Especially, if the production process of a product is very stable, the step of applying the default mode can increase the efficiency of the inflation apparatus for the air cushion body for producing the same product.
(296) Person skilled in the art may determine operational method for the air cushion body based on actual contexts or specific requirements. Nonetheless, those utilize identical or similar technical solutions with the present invention, solve identical or similar technical issues with the present invention, and achieve identical or similar technical results with the present invention are all within the scope of protection of the present invention, while specific implementations of the present invention shall not be limited thereto.
(297) One skilled in the art will understand that the embodiment of the present invention as shown in the drawings and described above is exemplary only and not intended to be limiting.
(298) Objectives of the present invention are completely and effectively implemented. Notions of the functions and structures of the present invention have been shown and described in the embodiments, whereas implementations of the present invention may have modifications or changes in any ways without going against the above notions.