SHOCK-ABSORBING DEVICE AND PACKAGE THEREOF
20190360545 ยท 2019-11-28
Inventors
Cpc classification
F16F15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D81/05
PERFORMING OPERATIONS; TRANSPORTING
F16F1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D85/30
PERFORMING OPERATIONS; TRANSPORTING
F16F1/128
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D85/30
PERFORMING OPERATIONS; TRANSPORTING
F16F3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D81/05
PERFORMING OPERATIONS; TRANSPORTING
F16F15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A shock-absorbing device includes a first holding member, a second holding member movably assembled to the first holding member, and an elastic element disposed between the first and the second holding member with two ends of the elastic element pressing against the two holding members. With the elastic element, an elastic shock-absorbing space is defined between the first and the second holding member.
Claims
1. A shock-absorbing device, comprising: a first holding member; a second holding member being movably assembled to the first holding member; and an elastic element being disposed between the first and the second holding member with two ends of the elastic element pressing against the first and the second holding member, such that an elastic shock-absorbing space is defined between the first and the second holding member by the elastic element; wherein the first holding member has a first anti-rotation section for interfering with or engaging with a first external element, or the second holding member has a second anti-rotation section for interfering with or engaging with a second external element.
2. The shock-absorbing device as claimed in claim 1, wherein the first anti-rotation section can be provided on an upper side, a lower side, a lateral side, an inner side or an outer side of the first holding member; or, the second anti-rotation section can be provided on an upper side, a lower side, a lateral side, an inner side or an outer side of the second holding member.
3. A shock-absorbing device, comprising: a first holding member; a second holding member being movably assembled to the first holding member; and an elastic element being disposed between the first and the second holding member with two ends of the elastic element pressing against the first and the second holding member, such that an elastic shock-absorbing space is defined between the first and the second holding member by the elastic element; wherein the first holding member has a third anti-rotation section; or, the second holding member has a fourth anti-rotation section; and the third and the fourth anti-rotation section being movably engaged with or interfered with each other.
4. The shock-absorbing device as claimed in claim 3, wherein the first holding member has a third anti-rotation section and the second holding member has a fourth anti-rotation section; and the third and the fourth anti-rotation section being movably engaged with or interfered with each other to prevent the first holding member and the second holding member from rotating relative to each other.
5. The shock-absorbing device as claimed in claim 3, wherein the third anti-rotation section can be provided on an upper side, a lower side, a lateral side, an inner side or an outer side of the first holding member; or, the fourth anti-rotation section can be provided on an upper side, a lower side, a lateral side, an inner side or an outer side of the second holding member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0062] The structure and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings, wherein
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DETAILED DESCRIPTION OF THE INVENTION
[0081] The present invention will now be described with some preferred embodiments thereof and by referring to the accompanying drawings. For the purpose of easy to understand, elements that are the same in the preferred embodiments are denoted by the same reference numerals.
[0082] Please refer to
[0083] As can be seen in
[0084] The first holding member 100 is configured for connecting to the first external element 1. In the first embodiment, the first holding member 100 includes a first receiving seat 110, a first connecting section 120, and a first coupling section 130. The first holding member 100 can have a first anti-rotation section 121 for engaging with a first mating anti-rotation section 11 on the first external element 1 to prevent the first holding member 100 and the first external element 1 from rotating relative to each other. The first anti-rotation section 121 can be in the form of a tangential surface, a recess, a cut edge, a cambered surface, a polygon, a spherical surface, a curved surface, a protrusion, or a sunken area. The first mating anti-rotation section 11 is a complementary structure of the first anti-rotation section 121. Further, the first anti-rotation section 121 can be provided on an upper side, a lateral side, an outer side, a lower side or an inner side of the first holding member 100.
[0085] The first receiving seat 110 has a first receiving space or hole 111 for receiving the elastic element 300 therein. Meanwhile, the second holding member 200 is movably received in the first receiving space 111.
[0086] The first connecting section 120 is extended from the first receiving seat 110 and configured for connecting to the first external element 1. More specifically, in the first embodiment, the first connecting section 120 is locked to the first external element 1 by means of an externally provided screw 3. However, it is understood the first connecting section 120 can be connected to the first external element 1 in other ways, including but not limited to snap-fit, soldering, surface-mount technology (SMT), riveting, glue bonding, fastening or expanded connection. Further, the first connecting section 120 can be in the form of a boss, a recess, a female thread, a male thread, a bevel surface, a cambered surface, a through hole, a notch or a curved surface.
[0087] The first coupling section 130 is formed around the first receiving seat 110 and configured for movably coupling with the second holding member 200. In the first embodiment, the first coupling section 130 has a top formed into a radially inward extended flange 131.
[0088] The second holding member 200 is movably assembled to the first holding member 100 and configured for connecting to the second external element 2. In the first embodiment, the second holding member 200 includes a second receiving seat 210, a second connecting section 220 and a second coupling section 230. The second holding member 200 can have a second anti-rotation section 221 for engaging with a second mating anti-rotation section 21 on the second external element 2 to prevent the second holding member 200 and the second external element 2 from rotating relative to each other. The second anti-rotation section 221 can be in the form of a tangential surface, a recess, a cut edge, a cambered surface, a polygon, a spherical surface, a curved surface, a protrusion, or a sunken area. The second mating anti-rotation section 21 is a complementary structure of the second anti-rotation section 221. Further, the second anti-rotation section 221 can be provided on an upper side, a lateral side, an outer side, a lower side or an inner side of the second holding member 200.
[0089] The second receiving seat 210 has a second receiving space or hole 211 for receiving the elastic element 300 therein. In the first embodiment, the second receiving seat 210 further has a locating boss 212 formed on a bottom of the second receiving space 211 to locate the elastic element 300 in place.
[0090] The second connecting section 220 is extended from the second receiving seat 210 and configured for connecting to the second external element 2. More specifically, in the first embodiment, the second connecting section 220 is snap-fitted onto the second external element 2. However, it is understood the second connecting section 220 can be connected to the second external element 2 in other ways, including but not limited to soldering, SMT, riveting, glue bonding, fastening, screwing or expanded connection. Further, the second connecting section 220 can be in the form of a boss, a recess, a female thread, a male thread, a bevel surface, a cambered surface, a through hole, a notch or a curved surface.
[0091] The second coupling section 230 is formed around the second receiving seat 210 and configured for movably coupling with the first coupling section 130. In the first embodiment, the second coupling section 230 has a top formed into a radially outward extended flange 231. The radially inward extended flange 131 of the first coupling section 130 is movably coupled with the radially outward extended flange 231 of the second coupling section 230.
[0092] Please refer to
[0093] The elastic element 300 is a spring disposed between the first holding member 100 and the second holding member 200 with two ends of the spring pressing against the first and the second holding member 100, 200. The elastic element 300 has shock-absorbing elasticity ranged from 10 to 100,000 grams. Further, there is an elastic shock-absorbing space S defined between the first and the second holding member 100, 200. By elastic shock-absorbing space S, it means a maximum space within which the first holding member 100 and the second holding member 200 can move relative to each other. With the elastic force of the elastic element 300, the first holding member 100 and the second holding member 200 can be moved away from or closer to each other.
[0094] When the first external element 1 and the second external element 2 are subjected to an external force and vibrated, the shock-absorbing device 10 fitted between them provides a buffering effect to prevent the first and second external elements 1, 2 from being excessively vibrated.
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[0096] Please refer to
[0097] In the third embodiment, the first receiving seat 140 internally defines a first receiving space or hole 141 for receiving the elastic element 300 therein.
[0098] The first connecting section 150 is extended from the first receiving seat 140 and configured for connecting to the first external element 1. More specifically, in the third embodiment, the first connecting section 150 is locked to the first external element 1 by means of an externally provided screw 3. However, it is understood the first connecting section 150 can be connected to the first external element 1 in other ways, including but not limited to snap-fit, soldering, SMT, riveting, glue bonding, fastening or expanded connection.
[0099] The first coupling section 160 is centered in the first receiving seat 140 and configured for movably coupling with the second holding member 200. In the third embodiment, the first coupling section 160 has an end formed into a radially outward extended flange 161.
[0100] The second holding member 200 is movably assembled to the first holding member 100 and configured for connecting to the second external element 2. In the third embodiment, the second holding member 200 includes a second receiving seat 240, a second connecting section 250 and a second coupling section 260.
[0101] In the first variation of the shock-absorbing device 30 as shown in
[0102] The second connecting section 250 is extended from the second receiving seat 240 and configured for connecting to the second external element 2. More specifically, in the third embodiment, the second connecting section 250 is connected to the second external element 2 by expanded connection. However, it is understood the second connecting section 250 can be connected to the second external element 2 in other ways, including but not limited to snap-fit, soldering, SMT, riveting, glue bonding, fastening or screwing.
[0103] The second coupling section 260 is formed around the second receiving seat 240 and configured for movably coupling with the first coupling section 160. In the third embodiment, the second coupling section 260 has a radially inward extended flange 261 formed on a top (see
[0104] The elastic element 300 is a spring disposed between the first holding member 100 and the second holding member 200 with two ends of the spring pressing against the first and the second holding member 100, 200. Further, there is an elastic shock-absorbing space S defined between the first and the second holding member 100, 200. By elastic shock-absorbing space S, it means a maximum space within which the first holding member 100 and the second holding member 200 can move relative to each other. In the first variation of the shock-absorbing device 30 as shown in
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[0107] The first connecting section 180 is extended from the first seat 170 and configured for connecting to the first external element 1. More specifically, the first connecting section 180 is locked to the first external element 1 by means of an externally provided screw 3. However, it is understood the first connecting section 180 can be connected to the first external element 1 in other ways, including but not limited to snap-fit, soldering, SMT, riveting, glue bonding, fastening or expanded connection.
[0108] The first coupling section 190 is formed around the first seat 170 and configured for movably coupling with the second holding member 200. In the fifth embodiment, the first coupling section 190 has a top formed into a radially outward extended flange 191.
[0109] The second holding member 200 is movably assembled to the first holding member 100 and configured for connecting to the second external element 2. In the fifth embodiment, the second holding member 200 includes a second receiving seat 210, a second connecting section 220 and a second coupling section 230.
[0110] The second receiving seat 210 has a second receiving space or hole 211 for receiving the elastic element 300 and the first coupling section 190 therein.
[0111] The second connecting section 220 is extended from the second receiving seat 210 and configured for connecting to the second external element 2. More specifically, the second connecting section 220 is locked to the second external element 2 by means of an externally provided screw 3. However, it is understood the second connecting section 220 can be connected to the second external element 2 in other ways, including but not limited to snap-fit, soldering, SMT, riveting, glue bonding, fastening or expanded connection.
[0112] The second coupling section 230 is formed around the second receiving seat 210 and configured for movably coupling with the first coupling section 190. In the fifth embodiment, the second coupling section 230 has a top formed into a radially inward extended flange 232. The radially outward extended flange 191 of the first coupling section 190 is movably coupled with the radially inward extended flange 232 of the second coupling section 230.
[0113] The elastic element 300 is a spring disposed between the first holding member 100 and the second holding member 200 with two ends of the spring pressing against the first and the second holding member 100, 200. Further, there is an elastic shock-absorbing space S defined between the first and the second holding member 100, 200. By elastic shock-absorbing space S, it means a maximum space within which the first holding member 100 and the second holding member 200 can move relative to each other. With the elastic force of the elastic element 300, the first holding member 100 and the second holding member 200 can be moved away from or closer to each other.
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[0116] The first receiving seat 110 has a first receiving space or hole 111 for receiving the elastic element 300 therein. Meanwhile, the second holding member 200 is movably received in the first receiving space 111.
[0117] The first connecting section 120 is extended from the first receiving seat 110 and configured for connecting to the first external element 1. More specifically, in the sixth embodiment, the first connecting section 120 is a sunken hole or a recess with female threads formed on an inner wall surface thereof and can therefore be connected to the first external element 1 by means of an externally provided screw 3. However, it is understood the first connecting section 120 can be connected to the first external element 1 in other ways, including but not limited to snap-fit, soldering, SMT, riveting, glue bonding, fastening or expanded connection.
[0118] The first coupling section 130 is formed around the first receiving seat 110 and configured for movably coupling with the second holding member 200. In the sixth embodiment, the first coupling section 130 has a top formed into a radially inward extended flange 131.
[0119] The second holding member 200 is movably assembled to the first holding member 100 and configured for connecting to the second external element 2. In the sixth embodiment, the second holding member 200 includes a second seat 270, a second connecting section 280 and a second coupling section 290.
[0120] The second connecting section 280 is extended from the second seat 270 and configured for connecting to the second external element 2. More specifically, in the sixth embodiment, the second connecting section 280 is a boss for connecting to the second external element 2 by way of snap-fit. However, it is understood the second connecting section 280 can be connected to the second external element 2 in other ways, including but not limited to soldering, SMT, riveting, glue bonding, fastening, expanded connection or screwing.
[0121] The second coupling section 290 is formed around the second seat 270 and configured for movably coupling with the first coupling section 130. In the sixth embodiment, the second coupling section 290 has a top formed into a radially outward extended flange 291. The radially inward extended flange 131 of the first coupling section 130 is movably coupled with the radially outward extended flange 291 of the second coupling section 290.
[0122] In the sixth embodiment, the elastic element 300 is a bent spring strip disposed between and pressed against the first holding member 100 and the second holding member 200. Further, there is an elastic shock-absorbing space S defined between the first and the second holding member 100, 200. By elastic shock-absorbing space S, it means a maximum space within which the first holding member 100 and the second holding member 200 can move relative to each other. With the elastic force of the elastic element 300, the first holding member 100 and the second holding member 200 can be moved away from or closer to each other.
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[0125] It is understood the above-described shock-absorbing devices 10-80 in the first to the eighth embodiment of the present invention are only illustrative. In other words, various combinations of the differently configured first holding members 100, second holding members 200 and elastic elements can be achieved to provide shock-absorbing devices of different configurations.
[0126] According to other operable embodiments of the present invention, the first holding member 100 of the shock-absorbing device 10-80 can be integrally formed with the first external element 1, and the second holding member 200 can be integrally formed with the second external element 2. Further, the first and the second holding member 100, 200 can be made of a metal material or a plastic material.
[0127] Please refer to
[0128] When the first external element 1 and the second external element 2 are subjected to an external force and vibrated, the shock-absorbing device 10 fitted between them provides a buffering effect to prevent the first and second external elements 1, 2 from being excessively vibrated.
[0129] As can be seen in
[0130] On the other hand, as can be seen in
[0131] In summary, the top or the bottom of the first holding member 100 can be fully closed, be provided with a through hole, or be provided with a recess. Alternatively, the top or the bottom of the second holding member 200 can be fully closed, be provided with a through hole, or be provided with a recess.
[0132] Please refer to
[0133] For the purpose of conciseness, the shock-absorbing device package 4 according to the present invention is herein also briefly referred to as the package 4. As shown, the package 4 includes a device carrier 41 and at least one shock-absorbing device 10-80 as described above. The device carrier 41 includes a main body 411, at least one compartment 412 and a cover 413. The at least one compartment 412 is a recess formed on the main body 411 for holding one shock-absorbing device 10-80 therein. In
[0134] The shock-absorbing devices 10-80 disposed in the compartments 412 of the device carrier 41 can be removed from the device carrier 41 with hands or with a tool, such as a vacuum picker or a magnetic claw picker, for connecting to the first external element 1 and the second external element 2.
[0135] In other operable embodiments, the device carrier 41 can be a long belt or a tray in shape. The long belt-shaped device carrier 41 can be wound into a roll for convenient storage in an organized manner. On the other hand, a plurality of tray-shaped device carriers 41 can be stacked for convenient storage.
[0136] Please refer to
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[0138] In conclusion, with the first holding member, the second holding member and the elastic element(s), the shock-absorbing device of the present invention functions to protect the first and the second external element against excessive vibration when they are subjected to an external force. Moreover, the device carrier according to the present invention can be used to carry and hold the shock-absorbing device in an organized manner for convenient storage.
[0139] The present invention has been described with some preferred embodiments thereof and it is understood that the preferred embodiments are only illustrative and not intended to limit the present invention in any way and many changes and modifications in the described embodiments can be carried out without departing from the scope and the spirit of the invention that is intended to be limited only by the appended claims.