Pumps and liquid containers

By providing an annular part in the pump body of the pressing pump sealing and abutting the inner wall of the receiving chamber, a tortuous air replenishment path is formed, which solves the problem of poor waterproofing performance of the existing pressing pump and achieves higher waterproofing performance.

CN115489869BActive Publication Date: 2025-05-23ZHONGSHAN LEUNCHEONG DISPENSING PUMP
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Patent Information

Application Number
CN202210943956.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-08-05
Publication Date
2025-05-23
Estimated Expiration
2042-08-05

AI Technical Summary

Technical Problem

During the liquid suction process of existing pressing pumps, external air and moisture easily enter the pump body through the gap between the pump body and the valve stem assembly, resulting in poor waterproofing performance.

Method used

A pressing pump is designed, and the pump body is provided with an annular part sealed and abutted with the inner wall of the receiving chamber to form a first channel and a second channel through which air enters the receiving chamber and finally enters the container through the air-changing hole, increasing the length and tortuousness of the air replenishment path and reducing the possibility of external moisture entering the pump body.

Benefits of technology

By increasing the length and tortuousness of the gas replenishment path, external moisture enters the pump body effectively and improves waterproof performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a push pump and a liquid container, wherein the push pump comprises a pump body, a one-way valve, a valve stem assembly, a push head and an annular portion, the pump body is provided with an accommodating chamber, the valve stem assembly is movably provided in the accommodating chamber, the valve stem assembly is provided with a piston, and the piston is located in the accommodating chamber; the push head is located outside the pump body and connected to one end of the valve stem assembly; the annular portion is provided at the outer periphery of one end of the valve stem assembly and connected to a side wall of the push head close to the pump body, the annular portion is inserted in the accommodating chamber and the outer periphery of the annular portion is sealed and abutted against the inner wall of the accommodating chamber; the annular portion is provided with a first channel communicating with the accommodating chamber or a first channel communicating with the accommodating chamber is provided between the annular portion and the valve stem assembly, the push head is provided with a second channel communicating with the first channel, and the second channel has a first opening provided at a side wall of the push head close to the pump body and located outside the annular portion. The push pump provided by the present invention can reduce the situation where external moisture enters the interior of the pump body and improves the waterproof performance.
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Description

Technical Field

[0001] The present invention relates to the technical field of liquid pumps, and in particular to a pressing pump and a liquid container. Background Art

[0002] The press pump is used to squeeze liquid out of a container. It usually includes a pump body and a valve stem assembly movably inserted in the pump body. A liquid inlet is provided at the bottom of the pump body, and a one-way valve is provided at the liquid inlet. When the valve stem assembly moves away from the liquid inlet at the bottom of the pump body, a negative pressure is formed in the liquid storage cavity at the bottom of the pump body so that the liquid storage cavity sucks liquid from the liquid inlet. When the valve stem assembly moves close to the liquid inlet, the liquid in the liquid storage cavity is squeezed into the liquid outlet channel in the valve stem assembly. In the existing press pump, during the process of sucking liquid, the air outside the container usually enters the pump body from the gap between the pump body and the valve stem assembly, and then enters the container from the ventilation hole on the pump body. This air replenishment method is not designed reasonably. External moisture can easily enter the pump body from the gap between the pump body and the valve stem assembly, and the waterproof performance needs to be improved. Summary of the invention

[0003] The present invention aims to solve at least one of the technical problems existing in the prior art. To this end, the present invention provides a press pump that can reduce the situation where external moisture enters the interior of the pump body and improves the waterproof performance.

[0004] The present invention also provides a liquid container having the pressing pump.

[0005] According to the first aspect of the present invention, a pressing pump includes a pump body, a one-way valve, a valve stem assembly, a pressing head and an annular portion, the pump body is provided with a accommodating chamber, the bottom of the accommodating chamber is provided with a liquid inlet; the one-way valve is arranged at the liquid inlet; the valve stem assembly is movably arranged in the accommodating chamber, the valve stem assembly is equipped with a piston, the piston is located in the accommodating chamber, the periphery of the piston is in abutment with the inner wall of the accommodating chamber, the valve stem assembly is provided with a liquid outlet channel connected to the accommodating chamber, the valve stem assembly and the piston can be raised and lowered relative to the liquid inlet; the pressing head is located outside the pump body and connected to one end of the valve stem assembly, the pressing head is provided with a liquid outlet nozzle connected to the liquid outlet channel; the annular portion is arranged on the outer periphery of one end of the valve stem assembly and connected to the pressing head A side wall close to the pump body is connected, the annular portion is inserted into the accommodating chamber and the outer periphery of the annular portion is sealed and abutted against the inner wall of the accommodating chamber; wherein, the annular portion is provided with a first channel connected to the accommodating chamber or a first channel connected to the accommodating chamber is provided between the annular portion and the valve stem assembly, the pressing head is provided with a second channel connected to the first channel, the second channel has a first opening, the first opening is provided on a side wall of the pressing head close to the pump body and located on the outside of the annular portion, a ventilation hole that can be connected to the accommodating chamber is provided on the outer periphery of the pump body, the ventilation hole is located between the annular portion and an end face of the piston close to the liquid inlet, and when the piston is close to the liquid inlet, the ventilation hole and the accommodating chamber are in a connected state.

[0006] The pressing pump according to the embodiment of the present invention has at least the following beneficial effects: since the annular portion is closed by abutting against the inner wall of the accommodating chamber, during the air replenishment process, it is difficult for external air and moisture to enter the accommodating chamber from between the annular portion and the inner wall of the accommodating chamber, and the external air needs to enter the first channel through the second channel and then enter the accommodating chamber, and finally enter the container through the ventilation hole. Among them, with the above-mentioned arrangement, the direction in which the air enters the second channel from the first opening is different from the direction in which the air flows in the second channel, and the direction in which the air flows in the second channel is also different from the direction in which the air flows in the first channel. In this way, the length of the air replenishment path can be increased and the air replenishment path can be made tortuous. It is not easy for external moisture to enter the first channel from the second channel and then enter the accommodating chamber of the pump body, thereby reducing the situation in which external moisture enters the interior of the pump body and improving the waterproof performance.

[0007] According to some embodiments of the present invention, a first gap is provided between the annular portion and the valve stem assembly, and the first channel is the first gap.

[0008] According to some embodiments of the present invention, the second channel has a second opening located on a side wall of the push head close to the pump body and inside the annular portion, and the second opening is communicated with the first channel.

[0009] According to some embodiments of the present invention, the push head is provided with a first through hole along the axial direction of the valve stem assembly, a closing cover is installed at one end of the first through hole away from the valve stem assembly, and the closing cover and the side wall of the first through hole enclose each other to form the second channel.

[0010] According to some embodiments of the present invention, the closure cover is provided with an annular brim, a side wall of the push head away from the pump body is provided with an annular slot, the first through hole is located inside the slot, and the brim is embedded in the slot.

[0011] According to some embodiments of the present invention, the pump body includes a tubular main body and a locking piece embedded in the upper end of the main body, a liquid storage chamber is formed inside the main body below the locking piece, the liquid inlet is connected to the lower part of the liquid storage chamber, the locking piece is provided with an installation chamber, the installation chamber is connected to the liquid storage chamber through a second through hole, the accommodating chamber includes the liquid storage chamber, the installation chamber and the second through hole, and the piston is located in the liquid storage chamber.

[0012] According to some embodiments of the present invention, there is a second gap between the lower end of the locking member and the inner wall of the body, and the ventilation hole is located on the upper side of the lower end surface of the locking member and communicates with the second gap.

[0013] According to some embodiments of the present invention, when the piston is away from the liquid inlet, the upper end of the piston can block the second gap.

[0014] According to some embodiments of the present invention, a first pushing portion and an annular second pushing portion are provided on the outer periphery of the valve stem assembly, the piston is movably located between the first pushing portion and the second pushing portion, the second pushing portion is located below the piston, the entrance of the liquid outlet channel is located between the first channel portion and the second pushing portion, and the lower end surface of the piston can be separated from or approached to the second pushing portion so that the liquid outlet channel and the liquid storage chamber are connected or disconnected with each other.

[0015] The liquid container according to the second embodiment of the present invention comprises the above-mentioned press pump

[0016] The liquid container according to the embodiment of the present invention has at least the following beneficial effects: by adopting the above-mentioned press pump, the situation where external moisture enters the container through the press pump to cause pollution can be reduced, thereby improving the waterproof performance.

[0017] Additional aspects and advantages of the present invention will be given in part in the following description and in part will be obvious from the following description, or will be learned through practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] The above and / or additional aspects and advantages of the present invention will become apparent and easily understood from the description of the embodiments in conjunction with the following drawings, in which:

[0019] Figure 1 It is a schematic diagram of the interior of a pressing pump according to an embodiment of the present invention;

[0020] Figure 2 for Figure 1 The enlarged view of point A in the middle;

[0021] Figure 3 for Figure 1 The enlarged view of point B in the middle;

[0022] Figure 4 for Figure 1 Enlarged view of point C in the middle;

[0023] Figure 5 for Figure 1 A schematic diagram of a valve stem assembly and a pressing head of a pressing pump is shown;

[0024] Figure 6 for Figure 1 A schematic diagram of the exterior of the compression pump is shown.

[0025] Reference numerals:

[0026] Pump body 100, main body 100a, locking member 100b, installation cavity 112, second through hole 113, liquid storage cavity 111, accommodating cavity 110, liquid inlet 120, ventilation hole 130, second gap 140, one-way valve 200, valve stem assembly 300, liquid outlet channel 310, inlet 311, first pushing part 320, second pushing part 330, pressing head 400, liquid outlet nozzle 410, second channel 420, first through hole 420a, first opening 421, second opening 422, card groove 430, annular portion 500, first channel 510, closing cover 600, brim 610, piston 700, spring 800. DETAILED DESCRIPTION

[0027] Embodiments of the present invention are described in detail below, examples of which are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and cannot be understood as limiting the present invention.

[0028] In the description of the present invention, it should be understood that descriptions involving orientations, such as up, down, front, back, left, right, etc., and orientations or positional relationships indicated are based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as a limitation on the present invention.

[0029] In the description of the present invention, "several" means one or more, "more" means more than two, "greater than", "less than", "exceed" etc. are understood as not including the number itself, and "above", "below", "within" etc. are understood as including the number itself. If there is a description of "first" or "second", it is only used for the purpose of distinguishing the technical features, and cannot be understood as indicating or implying the relative importance or implicitly indicating the number of the indicated technical features or implicitly indicating the order of the indicated technical features.

[0030] In the description of the present invention, unless otherwise clearly defined, terms such as setting, installing, connecting, etc. should be understood in a broad sense, and technicians in the relevant technical field can reasonably determine the specific meanings of the above terms in the present invention based on the specific content of the technical solution.

[0031] Reference Figures 1 to 3The pressing pump according to the first embodiment of the present invention comprises a pump body 100, a one-way valve 200, a valve stem assembly 300, a pressing head 400 and an annular portion 500. The pump body 100 is provided with a receiving chamber 110, and a liquid inlet 120 is provided at the bottom of the receiving chamber 110; the one-way valve 200 is provided at the liquid inlet 120; the valve stem assembly 300 is movably provided in the receiving chamber 110, and the valve stem assembly 300 is installed with a piston 700, and the piston 700 is located in the receiving chamber 110. The periphery of the piston 700 is in contact with the inner wall of the accommodating chamber 110, the valve stem assembly 300 is provided with a liquid outlet channel 310 connected to the accommodating chamber 110, and the valve stem assembly 300 and the piston 700 can be raised and lowered relative to the liquid inlet 120; the pressing head 400 is located outside the pump body 100 and connected to one end of the valve stem assembly 300, and the pressing head 400 is provided with a liquid outlet nozzle 410 connected to the liquid outlet channel 310; the annular portion 500 is provided on the periphery of one end of the valve stem assembly 300 and is connected to the inner wall of ... are connected to the inner wall of the accommodating chamber 110, and the valve stem assembly 300 and the piston 700 are connected to the inner wall of the accommodating chamber 110, and the valve stem assembly 300 and the piston 700 are connected to the inner wall of the accommodating chamber 110, and the valve stem assembly 300 and the piston 700 are connected to the inner wall of the accommodating chamber 110, and the valve stem assembly 300 and the piston 700 are connected to the inner The annular portion 500 is connected to a side wall of the pressing head 400 close to the pump body 100, and the annular portion 500 is inserted into the accommodating cavity 110, and the outer periphery of the annular portion 500 is sealed and abutted against the inner wall of the accommodating cavity 110; wherein the annular portion 500 is provided with a first channel 510 communicating with the accommodating cavity 110, or the annular portion 500 and the valve stem assembly 300 are provided with a first channel 510 communicating with the accommodating cavity 110, and the pressing head 400 is provided with a second channel 420 communicating with the first channel 510, The second channel 420 has a first opening 421, which is arranged on a side wall of the push head 400 close to the pump body 100 and located on the outside of the annular portion 500. The pump body 100 is provided with a ventilation hole 130 on the periphery that can communicate with the accommodating chamber 110. The ventilation hole 130 is located between the annular portion 500 and an end surface of the piston 700 close to the liquid inlet 120. When the piston 700 is close to the liquid inlet 120, the ventilation hole 130 and the accommodating chamber 110 are in a connected state.

[0032] Since the annular portion 500 is in contact with the inner wall of the accommodating chamber 110 and is closed, during the air replenishment process, it is difficult for external air and moisture to enter the accommodating chamber 110 from between the annular portion 500 and the inner wall of the accommodating chamber 110. External air needs to enter the first channel 510 through the second channel 420 and then enter the accommodating chamber 110, and finally enter the container through the ventilation hole 130. Among them, with the above arrangement, the direction in which the air enters the second channel 420 from the first opening 421 is different from the direction in which the air flows in the second channel 420, and the direction in which the air flows in the second channel 420 is also different from the direction in which the air flows in the first channel 510. In this way, the air replenishment path can be increased (refer to Figure 2 The length of the pump body 100 is reduced by 200 mm / s and the air supply path is tortuous, so that external moisture is not easy to enter the first channel 510 from the second channel 420 and then enter the accommodating cavity 110 of the pump body 100, thereby reducing the situation where external moisture enters the interior of the pump body 100 and improving the waterproof performance.

[0033] Reference Figure 2 Specifically, air needs to enter the second channel 420 from the first opening 421 along the direction from the pump body 100 to the pressing head 400, and the air needs to flow in the first channel 510 along the direction from the pressing head 400 to the pump body 100. Therefore, in the process of external air from the first opening 421 and the second channel 420 to the first channel 510, the external air needs to make at least two turns before entering the first channel 510, while it is difficult for external moisture to enter the first channel 510 after two turns. The second channel 420 actually plays a role in hindering the passage of moisture, thereby reducing the situation where external moisture enters the interior of the pump body 100.

[0034] In addition, through the above-mentioned arrangement, there is no need to make the first opening 421 smaller to limit the entry of moisture into the first channel 510. The size of the first opening 421 can meet the air replenishment demand while not causing moisture to easily enter the first channel 510. In this way, the press pump provided by the present invention can replenish air smoothly and be easy to operate, while having good waterproof performance.

[0035] Specifically, when the valve stem assembly 300 and the piston 700 thereon move close to the liquid inlet 120, the one-way valve 200 closes the liquid inlet 120, so that the liquid at the bottom of the accommodating chamber 110 is input into the liquid outlet channel 310, and at this time, the ventilation hole 130 is connected with the accommodating chamber 110, so that the air outside the container flows through the second channel 420, the first channel 510, the accommodating chamber 110 and the ventilation hole 130 in sequence into the container to achieve air replenishment; in the process of the valve stem assembly 300 and the piston 700 thereon moving away from the liquid inlet 120, the ventilation hole 130 is located between the annular portion 500 and an end surface of the piston 700 close to the liquid inlet 120, that is, the piston 700 is at least partially located on the side of the ventilation hole 130 close to the liquid inlet 120, thereby ensuring that a negative pressure is formed between the piston 700 and the liquid inlet 120, and at this time, the one-way valve 200 opens the liquid inlet 120, so that the bottom of the accommodating chamber 110 sucks the liquid in the container.

[0036] It should be noted that Figure 2 and Figure 3 The dotted line in FIG. 1 indicates a portion of the above-mentioned gas replenishment path. Figure 2 and Figure 3 The arrows in the figure indicate the direction of air flow during the air replenishment process.

[0037] Reference Figure 1 and Figure 2 It is conceivable that, in some embodiments, there is a first gap between the annular portion 500 and the valve stem assembly 300, and the first channel 510 is the first gap. At this time, the annular portion 500 is sleeved on the valve stem assembly 300. Through the above arrangement, the first channel 510 is easy to process and it is also convenient for the second channel 420 to communicate with the first channel 510.

[0038] Reference Figure 1 and Figure 2 It is conceivable that, in some embodiments, the second channel 420 has a second opening 422 located on a side wall of the pressing head 400 close to the pump body 100 and located on the inner side of the annular portion 500, and the second opening 422 is connected to the first channel 510. Therefore, the path of air entering the second channel 420 from the first opening 421 forms an angle with the path of air in the second channel 420, and the flow path of air in the second channel 420 forms an angle with the flow path of air in the first channel 510, so as to increase the resistance to the water diversion and further reduce the situation where water enters the first channel 510 from the second channel 420.

[0039] Reference Figure 2 and Figure 5 It is conceivable that, in some embodiments, the push head 400 is provided with a first through hole 420a along the axial direction of the valve stem assembly 300, and a closing cover 600 is installed at one end of the first through hole 420a away from the valve stem assembly 300, and the closing cover 600 and the side wall of the first through hole 420a are enclosed to form a second channel 420, that is, after the closing cover 600 closes the end of the first through hole 420a away from the valve stem assembly 300, the first through hole 420a forms the above-mentioned second channel 420, wherein the annular portion 500 separates the end of the first through hole 420a close to the pump body 100 to form a first opening 421 and a second opening 422. Through the above arrangement, the second channel 420 can be easily processed.

[0040] Reference Figure 2 and Figure 5 It is conceivable that, in some embodiments, the closing cover 600 is provided with an annular brim 610, and a side wall of the pressing head 400 away from the pump body 100 is provided with an annular slot 430, the first through hole 420a is located on the inner side of the slot 430, and the brim 610 is embedded in the slot 430. In this way, the sealing effect between the closing cover 600 and the pressing head 400 can be ensured, and the closing cover 600 can also be disassembled. When a water-absorbing component or a breathing membrane such as a sponge or activated carbon can also be installed in the second channel 420, the water-absorbing component or the breathing membrane can be easily disassembled, assembled, and replaced.

[0041] Reference Figure 1It is conceivable that, in some embodiments, the pump body 100 includes a tubular body 100a and a locking member 100b embedded in the upper end of the body 100a, a liquid storage chamber 111 is formed inside the body 100a below the locking member 100b, the liquid inlet 120 is communicated with the lower part of the liquid storage chamber 111, the locking member 100b is provided with an installation chamber 112, the installation chamber 112 is communicated with the liquid storage chamber 111 through a second through hole 113, the accommodating chamber 110 includes the liquid storage chamber 111, the installation chamber 112 and the second through hole 113, and the piston 700 is located in the liquid storage chamber 111. Through the above arrangement, the piston 700 can be restricted in the liquid storage chamber 111 by the locking member 100b, and the installation of the piston 700 and the valve stem assembly 300 is convenient.

[0042] Reference Figure 1 and Figure 3 It is conceivable that, in some embodiments, there is a second gap 140 between the lower end of the locking piece 100b and the inner wall of the main body 100a, and the ventilation hole 130 is located on the upper side of the lower end surface of the locking piece 100b and is connected to the second gap 140. In this way, the length of the air replenishment path can be further increased and the air replenishment path can be made more tortuous, effectively reducing the situation where moisture enters the container from the inside of the pump body 100 through the ventilation hole 130. Specifically, the valve stem assembly 300 is sequentially inserted into the installation cavity 112, the connecting hole and the liquid storage cavity 111. There is a third gap between the valve stem assembly 300 and the side wall of the connecting hole for air to pass through. Therefore, the external air flows through the second channel 420, the first channel 510, the installation cavity 112, the third gap, the liquid storage cavity 111, the second gap 140 and the ventilation hole 130 in sequence, and then enters the container. At this time, if external moisture enters the pump body 100, it is difficult for the moisture to flow upward from the liquid storage cavity 111 into the second gap 140, thereby reducing the situation where moisture enters the container from the inside of the pump body 100 through the ventilation hole 130.

[0043] Reference Figure 1 and Figure 4 It is conceivable that, in some embodiments, when the piston 700 is away from the liquid inlet 120, the upper end of the piston 700 can block the second gap 140 to disconnect the connection between the vent hole 130 and the liquid storage chamber 111. In this way, when there is no need to squeeze the liquid out of the container, that is, when the piston 700 is away from the liquid inlet 120, the connection between the inside and the outside of the container is disconnected, and the external air will not enter the container, which is conducive to the long-term storage of the liquid in the container. Specifically, when the piston 700 is away from the liquid inlet 120, the periphery of the upper end of the piston 700 can be embedded in the second gap 140 and block the second gap 140.

[0044] Reference Figure 1 and Figure 5It is conceivable that, in some embodiments, a first pushing portion 320 and a ring-shaped second pushing portion 330 are provided on the periphery of the valve stem assembly 300, the piston 700 is movably located between the first pushing portion 320 and the second pushing portion 330, the second pushing portion 330 is located below the piston 700, the inlet 311 of the liquid outlet channel 310 is located between the first channel 510 and the second pushing portion 330, and the lower end surface of the piston 700 can be separated from or approached by the second pushing portion 330. When the valve stem assembly 300 moves away from the liquid inlet 120, the lower end surface of the piston 700 fits with the second push part 330, so that the liquid outlet channel 310 is disconnected from the liquid storage chamber 111, and at the same time, the second push part 330 pushes the piston 700 to move away from the liquid inlet 120, thereby forming a negative pressure in the liquid storage chamber 111; when the valve stem assembly 300 moves closer to the liquid inlet 120, the first push part 320 pushes the piston 700 to move closer to the liquid inlet 120, at this time, the second push part 330 and the lower end surface of the piston 700 are separated away, the liquid outlet channel 310 is connected to the liquid storage chamber 111, and the liquid in the liquid storage chamber 111 is input into the liquid outlet channel 310 and sprayed out from the liquid outlet nozzle 410. Through the above arrangement, the piston 700 can control the connection and disconnection between the liquid outlet channel 310 and the liquid storage chamber 111.

[0045] It should be noted that in this field, other settings can also be used to control the connection between the liquid outlet channel 310 and the liquid storage chamber 111. For example, a ball valve is provided in the liquid outlet channel 310. When the valve stem assembly 300 moves close to the liquid inlet, the ball valve opens the liquid outlet channel 310. When the valve stem assembly 300 moves away from the liquid inlet, the ball valve closes the liquid outlet channel 310.

[0046] Reference Figure 1 It is conceivable that, in some embodiments, a spring 800 is disposed between the push head 400 and the pump body 100, and the spring 800 is used to reset the push head 400. Specifically, the spring 800 is sleeved on the valve stem assembly 300, and one end of the spring 800 is located in the installation cavity 112, and the other end is located in the first channel 510.

[0047] The second aspect of the present invention provides a liquid container, comprising the above-mentioned press pump. By adopting the above-mentioned press pump, it is possible to reduce the situation where external moisture enters the container through the press pump to cause pollution, thereby improving the waterproof performance.

[0048] The technical features of the above-described embodiments may be arbitrarily combined. To make the description concise, not all possible combinations of the technical features in the above-described embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0049] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the knowledge scope of ordinary technicians in the technical field without departing from the purpose of the present invention.

Claims

1. A compression pump, It is characterized in that include: The pump body (100) is provided with a receiving chamber (110), and a liquid inlet (120) is provided at the bottom of the receiving chamber (110); A one-way valve (200) is arranged at the liquid inlet (120); a valve stem assembly (300) movably disposed in the accommodating chamber (110); a piston (700) being installed on the valve stem assembly (300); the piston (700) being located in the accommodating chamber (110); a peripheral edge of the piston (700) being in contact with an inner wall of the accommodating chamber (110); and a liquid outlet channel (310) being connected to the accommodating chamber (110); and the valve stem assembly (300) and the piston (700) being capable of rising and falling relative to the liquid inlet (120); A pressing head (400) is located outside the pump body (100) and connected to one end of the valve stem assembly (300), and the pressing head (400) is provided with a liquid outlet nozzle (410) connected to the liquid outlet channel (310); an annular portion (500) disposed on the outer periphery of one end of the valve stem assembly (300) and connected to a side wall of the push head (400) close to the pump body (100); the annular portion (500) is inserted into the accommodating cavity (110) and the outer periphery of the annular portion (500) is in sealing contact with the inner wall of the accommodating cavity (110); The annular portion (500) is provided with a first channel (510) communicating with the accommodating chamber (110), or a first channel (510) communicating with the accommodating chamber (110) is provided between the annular portion (500) and the valve stem assembly (300), the pressing head (400) is provided with a second channel (420) communicating with the first channel (510), the second channel (420) has a first opening (421), and the first opening (421) is provided on the pressing head (400). ) is close to a side wall of the pump body (100) and is located outside the annular portion (500); the pump body (100) is provided with an air exchange hole (130) on its outer periphery that can communicate with the accommodating chamber (110); the air exchange hole (130) is located between the annular portion (500) and an end surface of the piston (700) close to the liquid inlet (120); when the piston (700) is close to the liquid inlet (120), the air exchange hole (130) is in a communicating state with the accommodating chamber (110); The second channel (420) has a second opening (422) located on a side wall of the pressing head (400) close to the pump body (100) and located on the inner side of the annular portion (500), and the second opening (422) is in communication with the first channel (510); The push head (400) is provided with a first through hole (420a) along the axial direction of the valve stem assembly (300); a closing cover (600) is installed at one end of the first through hole (420a) away from the valve stem assembly (300); the closing cover (600) and the side wall of the first through hole (420a) are combined to form the second channel (420); The closure cover (600) is provided with an annular brim (610); a side wall of the push head (400) away from the pump body (100) is provided with an annular slot (430); the first through hole (420a) is located inside the slot (430); and the brim (610) is embedded in the slot (430); The pump body (100) comprises a tubular main body (100a) and a locking piece (100b) embedded in the upper end of the main body (100a); a liquid storage chamber (111) is formed inside the main body (100a) below the locking piece (100b); the liquid inlet (120) is communicated with the lower part of the liquid storage chamber (111); the locking piece (100b) is provided with a mounting chamber (112); the mounting chamber (112) is communicated with the liquid storage chamber (111) via a second through hole (113); the accommodating chamber (110) comprises the liquid storage chamber (111), the mounting chamber (112) and the second through hole (113); and the piston (700) is located in the liquid storage chamber (111).

2. The pressing pump according to claim 1, It is characterized in that A first gap is provided between the annular portion (500) and the valve stem assembly (300), and the first channel (510) is the first gap.

3. The pressing pump according to claim 1, It is characterized in that A second gap (140) is provided between the lower end of the locking member (100b) and the inner wall of the body (100a), and the ventilation hole (130) is located on the upper side of the lower end surface of the locking member (100b) and is in communication with the second gap (140).

4. The pressing pump according to claim 3, It is characterized in that When the piston (700) is away from the liquid inlet (120), the upper end of the piston (700) is capable of blocking the second gap (140).

5. The pressing pump according to claim 1, It is characterized in that The valve stem assembly (300) is provided with a first pushing portion (320) and an annular second pushing portion (330) on its periphery; the piston (700) is movably located between the first pushing portion (320) and the second pushing portion (330); the second pushing portion (330) is located below the piston (700); the inlet (311) of the liquid outlet channel (310) is located between the first channel (510) and the second pushing portion (330); and the lower end surface of the piston (700) can be separated from or brought close to the second pushing portion (330).

6. A liquid container, It is characterized in that Comprising a pressing pump as claimed in any one of claims 1 to 5.

Citation Information

Patent Citations

  • Press pump and liquid container

    CN218318321U