FULL-PLASTIC LIQUID PUMP
20240280117 ยท 2024-08-22
Assignee
Inventors
Cpc classification
B05B11/0044
PERFORMING OPERATIONS; TRANSPORTING
F04B23/028
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B11/1023
PERFORMING OPERATIONS; TRANSPORTING
B05B11/1069
PERFORMING OPERATIONS; TRANSPORTING
F04B53/1072
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B11/106
PERFORMING OPERATIONS; TRANSPORTING
B05B11/1077
PERFORMING OPERATIONS; TRANSPORTING
F04B53/1057
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B11/1047
PERFORMING OPERATIONS; TRANSPORTING
F04B9/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A full-plastic liquid pump includes a pump body, a pump head, a piston, a spring, a threaded cover, a one-way valve, and a suction pipe. Two ends of the pump head are respectively provided with a liquid outlet and a sliding pressing rod. The middle portion of the slidable pressing rod movably passes through a cover hole formed of the threaded cover. A piston is connected with the inner wall of the pump body to divide the inner space of the pump body into an air pressure cavity and a liquid storage cavity. A vent hole is formed in the upper portion of the pump body. An axial through hole is formed in the center of the piston. A lower end of the spring is fixed in the liquid storage cavity. The one-way valve is fixed in the liquid storage cavity corresponding to the suction pipe.
Claims
1. A full-plastic liquid pump, comprising a plastic molding pump body, a pump head, a piston, a spring, a threaded cover, a one-way valve, and a suction pipe, two ends of the pump head respectively defining a liquid outlet and providing with a slidable pressing rod, the slidable pressing rod internally providing with a liquid outlet channel in communication with the liquid outlet, a middle portion of the slidable pressing rod movably passing through a cover hole formed in a center of an upper end of the threaded cover, an air inlet gap being formed between the peripheral side of slidable pressing rod and the cover hole, the interior of the upper end of the threaded cover coaxially and fixed with an upper end of the pump body, a peripheral side of the piston is in sealed sliding connection with the inner wall of the pump body, the piston dividing the inner space of the pump body into an air pressure cavity and a liquid storage cavity arranged from up to down, the air pressure cavity communicated with the outside atmosphere via the air inlet gap, a vent hole being defined in the side wall of the upper portion of the pump body, and the vent hole being communicated with the air pressure cavity under a control of the piston; an axial through hole being defined in a center of the piston, an inner wall surrounding the axial through hole hermetically and slidably connected with a peripheral side of a lower end of slidable pressing rod, a liquid outlet cavity formed between the lower end of the slidable pressing rod and the axial through hole, the liquid outlet cavity communicating with the liquid outlet channel, a lower end of the spring being fixed in the lower end of the liquid storage cavity, a liquid passing gap being formed between a peripheral side of the spring and the inner wall of the liquid storage cavity, the lower end of the slidable pressing rod connected with an upper end of the spring, the slidable pressing rod driving the upper end of the spring and the piston to up and down to control the liquid passing gap to communicate or un-communicate with the liquid outlet cavity, the bottom of the liquid storage cavity communicating with the upper end of the suction pipe, the one-way valve being fixed in the liquid storage cavity corresponding to the suction pipe to control liquid to flow unidirectionally from the suction pipe to the liquid storage cavity.
2. The full-plastic liquid pump according to claim 1, wherein the full-plastic liquid pump further comprises a locking assembly, the locking assembly comprises a locking ring and a locking block, the locking ring is of a spiral annular structure and is provided with a notch allowing the locking block to pass through, the locking ring is integrally formed in the upper end of the cover hole, the locking block is fixed on the outer wall of slidable pressing rod, the locking block is driven by slidable pressing rod to pass through the notch or matched with the locking ring to prevent slidable pressing rod from ascending and descending.
3. The full-plastic liquid pump according to claim 1, wherein the spring comprises a truncated cone seat, an elastic rib, and a circular ring base, the truncated cone seat and the circular ring base are fixed by a plurality of the elastic ribs arranged at intervals along the circumferential side to form an integrated structure, the circular ring base is fixed at the lower part of the liquid storage cavity, the liquid passing gap is formed between the peripheral side of the truncated cone seat and the inner wall of the liquid storage cavity, the truncated cone seat is provided with a conical surface, the conical surface is matched with a conical opening formed in the lower end of the axial through hole for controlling connection and disconnection between the liquid passing gap and the liquid outlet cavity, two clamping hooks are arranged on the two sides of the top of the truncated cone seat respectively, and the two clamping hooks are hooked to the two sides of the lower end of slidable pressing rod respectively.
4. The full-plastic liquid pump according to claim 3, wherein a quantity of the elastic ribs is two, lower ends of the two elastic ribs are fixed to the left side and the right side of the upper surface of the circular ring base respectively, the upper ends of the two elastic ribs are fixed to the front side, and the rear side of the lower surface of the truncated cone seat respectively.
5. The full-plastic liquid pump according to claim 1, wherein a lower portion of slidable pressing rod is provided with a first shaft shoulder for pressing the upper end of the piston, a lower end of slidable pressing rod is provided with a second shaft shoulder for pressing an upper end of the spring, and a hook groove for connecting a spring clamping hook, a downward pressing distance between the first shaft shoulder and the piston is greater than that between the second shaft shoulder and the spring.
6. The full-plastic liquid pump according to claim 1, wherein a limiting ring is arranged in the upper end of the threaded cover, a lower end of the limiting ring extending into the pump body is configured to limit the piston to move upwards; the outer wall of the limiting ring is engaged with a thread of an inner wall of the upper end of the pump body.
7. The full-plastic liquid pump according to claim 1, wherein a clamping structure is arranged on an outer wall of the upper end of the pump body, the clamping structure comprises an end surface ring, the end surface ring is fixed on an upper end surface of the pump body, a plurality of arc-shaped clamping rings are fixed to the upper surface of the end surface ring, a plurality of clamping pieces arranged at intervals are arranged on each of the clamping rings, the clamping pieces are clamped with a clamping groove formed in the threaded cover.
8. The full-plastic liquid pump according to claim 7, wherein the outer wall of the upper end of the pump body is sleeved with a sealing gasket, the sealing gasket is attached to the lower surface of the end surface ring.
9. The full-plastic liquid pump according to claim 1, wherein the piston is in a hollow cylindrical shape, an annular-shaped end surface groove is formed in the upper end and the lower end of the piston, an annular-shaped side surface groove is formed in the peripheral side of the piston.
10. The full-plastic liquid pump according to claim 1, wherein the one-way valve comprises a valve seat and a valve body, the lower end of the valve body and the upper end surface of the valve seat are fixed to form an integrated structure, a liquid inlet channel is formed in the valve body, the lower end of the liquid inlet channel extends to the lower end surface of the valve seat, two inclined surfaces are symmetrically arranged on the two sides of the upper portion of the valve body, a line-shaped valve port is formed between the two inclined surfaces, the line-shaped valve port communicates with the upper end of the liquid inlet channel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] In order to illustrate the technical solution in the embodiments of the disclosure or the prior art more clearly, a brief description of drawings required in the embodiments or the prior art is given below. Obviously, the drawings described below are only some of the embodiments of the disclosure. For ordinary technicians in this field, other drawings can be obtained according to the structures shown in these drawings without any creative effort.
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[0044] In figures, 10 is a pump body, 11 is an air pressure cavity, 12 is a liquid storage cavity, 13 is a vent hole, 14 is a liquid outlet cavity, 15 is a liquid passing gap, 16 is a connecting pipe cavity, 17 is an end surface ring, 18 is a clamping ring, 19 is a sealing gasket, 20 is a pump head, 21 is a liquid outlet, 22 is a sliding pressing rod, 23 is a liquid outlet channel, 24 is a first shaft shoulder, 25 is a second shaft shoulder, 26 is a hook groove, 30 is a piston, 31 is an axial through hole, 32 is a conical opening, 33 is an annular-shaped end surface groove, 34 is an annular-shaped side surface groove, 40 is a spring, 41 is a truncated cone seat, 42 is an elastic rib, 43 is a circular ring base, 44 is a conical surface, 45 is a clamping hook, 50 is a threaded cover, 51 is an air inlet gap, 52 is a limiting ring, 60 is a one-way valve, 61 is a valve seat, 62 is a valve body, 63 is a liquid inlet channel, 64 is an inclined surface, 65 is a line-shaped valve port, 70 is a suction pipe, 80 is a locking assembly, 81 is a locking ring, 82 is a locking block, 83 is a notch, 84 is a limited block.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0045] In the description of the present application, it should be understood that the orientations or positional relationships indicated by the terms length, width, upper, lower, front, back, left, right, vertical, horizontal, top, bottom, inner, outer, and the like are based on the orientations or positional relationships shown in the accompanying drawings, which are merely intended to facilitate and simplify the description of the present application only, but not to indicate or imply that the device or element referred to must have a particular orientation or be constructed and operated in a particular orientation, and therefore, cannot be interpreted as limiting the present application.
[0046] In addition, the terms first and second are merely for the sake of description, and cannot be understood as indicating or implying the relative importance or implicitly indicating the quantity of the indicated technical features. Therefore, the features defined by the terms first and second may explicitly or implicitly include one or more of these features. In the description of the present application, the term plurality refers to two or more, unless otherwise specifically defined.
[0047] In the description of the present application, unless otherwise explicitly specified and defined, the terms mounted, coupled, connected, fixed, and the like should be construed broadly, for example, the term connected may be fixed, detachably connected, or integrated connected; mechanically or electrically connected; directly or indirectly connected through a medium, intercommunication between two elements, or interaction between two elements. Those of ordinary skill in the art may understand the specific meanings of the above terms in the present application according to specific circumstances.
[0048] In order to understand the content of the present application more clearly and accurately, detailed descriptions will be provided with reference to the accompanying drawings. The drawings in the specification show examples of embodiments of the present application, where the same reference numerals represent the same elements. It should be understood that the proportions shown in the drawings of the specification are not actual proportions implemented in the present application, which are merely for illustrative purposes, and are not drawn according to original dimensions.
[0049] Referring to
[0050] In order to have a large suction force to quickly extrude and adsorb the liquid in the bottle body, the structure of each part and the connection relationship therebetween are optimized, so that the gas flow path (a solid arrow shown in
[0051] On a basis of the above structure, preferably, the lower portion of slidable pressing rod 22 is provided with a first shaft shoulder 24 for pressing the upper end of the piston 30. The lower end of slidable pressing rod 22 is provided with a second shaft shoulder 25 for pressing the upper end of the spring 40 and a hook groove 26 for connecting a spring clamping hook. A downward pressing distance between the first shaft shoulder 24 and the piston 30 is greater than the downward pressing distance between the second shaft shoulder 25 and the spring 40.
[0052] In this embodiment, the lower end of slidable pressing rod 22 of the pump head 20 is directly connected to the upper end of the spring 40, which saves a piston 30 rod of the traditional liquid pump. An inner cavity of slidable pressing rod 22 does not need to be provided with the inner cavity for installing the spring 40, and only the liquid outlet channel 23 needs to be arranged to be communicated with the liquid outlet 21, so that the outer diameter of slidable pressing rod 22 becomes smaller, the consumables of slidable pressing rod 22, the pump head 20 and the threaded cover 50 are reduced, and the production cost is reduced. The peripheral side of the piston 30 is in sealed sliding connection with the inner wall of the pump body 10, so that the piston 30 can divide the inner space of the pump body 10 into the air pressure cavity 11 and the liquid storage cavity 12 which are arranged from up to down. The upper end of the spring 40 and the piston 30 are driven by slidable pressing rod 22 to ascend and descend by reasonably optimizing the structure of each part and the connection relationship between the parts. Due to the fact that the downward pressing distance between the first shaft shoulder 24 and the piston 30 is larger than the downward pressing distance between the second shaft shoulder 25 and the spring 40, the spring 40 and the piston 30 can ascend and descend asynchronously, and reasonable and efficient control over air inlet and liquid outlet 21 of the bottle body is achieved.
[0053] Please refer to
[0054] On a basis of the above structure, preferably, a limiting ring 52 is arranged in the upper end of the threaded cover 50. The lower end of the limiting ring 52 extending into the pump body 10 is configured to limit the piston 30 to move upwards.
[0055] Referring to
[0056] On the basis of the above structure, preferably, a number of the elastic ribs 42 is two. The lower ends of the two elastic ribs 42 are fixed to the left side and the right side of the upper surface of the circular ring base 43 respectively. The upper ends of the two elastic ribs 42 are fixed to the front side. The rear side of the lower surface of the truncated cone seat 41 respectively.
[0057] On the basis of the above structure, preferably, the two elastic ribs 42 are both in the shape of a bow.
[0058] On the basis of the above structure, preferably, the projection of the two elastic ribs 42 on a longitudinal plane is in the shape of 8.
[0059] Please refer to
[0060] On the basis of the above structure, to increase the space of the air pressure cavity 11 and the liquid storage cavity 12, furthermore, an annular-shaped end surface groove 33 is formed in the upper end and the lower end of the piston 30, and so that a process of air intake, exhaust, liquid intake and liquid drainage is smoother. Meanwhile, it is beneficial to make the pump body 10 more compact. Preferably, the annular-shaped end surface groove 33 is a V-shaped structure with an opening facing the end surface.
[0061] On the basis of the above structure, to reduce a sliding friction resistance between the peripheral side of the piston 30 and the inner wall of the pump body 10, preferably, an annular-shaped side surface groove 34 is formed in the peripheral side of the piston 30. The annular-shaped side surface groove 34 is a C-shaped structure having a large diameter at an upper end and a lower end, and a small middle diameter, thereby reducing a contact area during sliding. The upper end and the lower end of the piston 30 are in sealed sliding connection with the inner wall of the pump body 10.
[0062] On the basis of the above structure, preferably, the piston 30 may be made of Thermo-Plastic Elastomer (TPE) or polyethylene (PE) material.
[0063] Please refer to
[0064] On the basis of the above structure, preferably, the outer wall of the upper end of the pump body 10 is sleeved with a sealing gasket 19. The sealing gasket 19 is attached to the lower surface of the end surface ring 17.
[0065] Please refer to
[0066] In this embodiment, the one-way valve 60 can be formed by integral injection molding of materials such as lubricating oil silica gel and rubber material, so that the one-way valve 60 has a lubricating effect. Preferably, an included angle between each inclined surface 64 and an axial direction of the valve body 62 is 155-165?. Preferably, the angle is 160?.
[0067] Please refer to
[0068] As an embodiment, please refer to
[0069] As another embodiment, please refer to
[0070] The working principle of the invention is as follows.
[0071] The peripheral side of the piston 30 is in sealed sliding connection with the inner wall of the pump body 10, so that the piston 30 can divide the inner space of the pump body 10 into the air pressure cavity 11 and the liquid storage cavity 12 which are arranged from up to down. The upper end of the spring 40 and the piston 30 are driven by slidable pressing rod 22 to ascend and descend by reasonably optimizing the structure of each part and the connection relationship between the parts. Due to the fact that the downward pressing distance between the first shaft shoulder 24 and the piston 30 is larger than the downward pressing distance between the second shaft shoulder 25 and the spring 40, the spring 40 and the piston 30 can ascend and descend asynchronously, and reasonable and efficient control over air inlet and the liquid outlet 21 of the bottle body is achieved. When slidable pressing rod 22 presses the spring 40, the second shaft shoulder 25 firstly presses against the upper end of the spring 40 to press down to drive the upper end of the spring 40 to move downwards. At this time, the spring 40 is compressed, and the conical surface 44 of the spring 40 is separated from the conical opening 32 of the axial through hole 31 to be opened, so as to control the liquid passing gap 15 to be in communication with the liquid outlet cavity 14. The internal space of the liquid storage cavity 12 is reduced. Liquid pressure in the liquid storage cavity 12 is increased. The liquid in the liquid storage cavity 12 is extruded out of the liquid outlet 21 after passing through the liquid gap, the liquid outlet cavity 14 and the liquid outlet channel 23 in sequence. During the pressing of the spring 40, the two inclined faces of the one-way valve 60 close the line-shaped valve port 65 under the action of the liquid in the liquid storage cavity 12. As slidable pressing rod 22 continues to press the upper end of the spring 40, the first shaft shoulder 24 presses against the upper end of the piston 30 to drive the piston 30 to move down together with the spring 40. At this time, the liquid passing gap 15 is kept in communication with the liquid outlet cavity 14. The internal space of the air pressure cavity 11 suddenly increases to form a negative pressure. The outside atmosphere enters the air pressure cavity 11 through the air inlet gap 51. When the piston 30 moves downwards away from the vent hole 13, the vent hole 13 can be controlled to be in communication with the air pressure cavity 11. Air in the air pressure cavity 11 passes through the vent hole 13, and the threaded cover 50 enters the bottle body. The liquid of the bottle body is subjected to atmospheric pressure. After the downward pressure of slidable pressing rod 22 on the upper end of the spring 40 is removed, the spring 40 drives the upper end of the spring 40 to reset through an elastic force of the spring 40, so that the internal space of the liquid storage cavity 12 becomes large, and the liquid pressure becomes small. Under the action of the atmospheric pressure, the liquid of the bottle body passes through the line-shaped valve port 65 of the one-way valve 60 through the suction pipe 70 and enters the liquid storage cavity 12. As the upper end of the spring 40 continues to move upwards, the conical surface 44 of the spring 40 is tightly attached to the conical opening 32 of the axial through hole 31 to be closed, so as to control the disconnection between the liquid passing gap 15 and the liquid outlet cavity 14, and drive the piston 30 to move up together. At this time, the disconnection between the liquid passing gap 15 and the liquid outlet cavity 14 is maintained. After the upper end of the spring 40 is reset, the peripheral side of the piston 30 shields the vent hole 13 to control the disconnection between the vent hole 13 and the air pressure cavity 11, thereby preventing the liquid in the bottle body from being affected by external air. The above schemes make a gas flow path and a liquid flow path more reasonable, and can have a large suction force to quickly adsorb the liquid under a mutual cooperation of the gas flow path and the liquid flow path.
[0072] The above working principle makes the gas flow path and the liquid flow path more reasonable, and can have a large suction force to quickly adsorb the liquid under a mutual cooperation of the gas flow path and the liquid flow path.
[0073] It should be noted that the embodiments number of this disclosure above is for description only and do not represent the advantages or disadvantages of embodiments. And in this disclosure, the term including, include or any other variants is intended to cover a non-exclusive contain. So that the process, the devices, the items, or the methods includes a series of elements not only include those elements, but also include other elements not clearly listed, or also include the inherent elements of this process, devices, items, or methods. In the absence of further limitations, the elements limited by the sentence including a . . . do not preclude the existence of other similar elements in the process, devices, items, or methods that include the elements.
[0074] The above disclosed preferred embodiments of the invention are intended only to assist in the elaboration of the invention. The preferred embodiment does not elaborate on all the details and does not limit the invention to a specific embodiment. Obviously, according to the contents of this instruction manual, a lot of amendments and changes can be made. These embodiments are selected and described in detail in this specification for the purpose of better explaining the principle and practical application of the invention, so that the technical personnel in the technical field can better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.
[0075] The above are only the preferred embodiments of this disclosure and do not therefore limit the patent scope of this disclosure. And equivalent structure or equivalent process transformation made by the specification and the drawings of this disclosure, either directly or indirectly applied in other related technical fields, shall be similarly included in the patent protection scope of this disclosure.