Press-type pump core assembly and cosmetic container comprising pump core assembly
By introducing the first stop portion and the second stop portion into the pump core assembly, the problem of difficult to control the discharge volume of traditional cosmetic containers is solved, and quantitative discharge and structure are simplified, which is suitable for mass production of cosmetic containers.
Patent Information
- Application Number
- PCT/CN2025/075084
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-02-26
- Filing Date
- 2025-01-26
- Publication Date
- 2025-09-04
AI Technical Summary
During use, traditional pump-pressure cosmetic containers control the discharge volume through the user's pressure degree, resulting in inconvenience in use.
The first stop and the second stop are used to control the valve stem stroke, and the maximum stroke of the valve stem is defined by the cooperation between the first stop and the second stop, thereby controlling the quantitative discharge of the pump core assembly.
The quantitative discharge of the pump core assembly is realized, which is easy for users to use, and the structure of cosmetic containers is simplified, which is conducive to large-scale processing and production.
Smart Images

Figure CN2025075084_04092025_PF_FP_ABST
Abstract
Description
Press-type pump core assembly and cosmetic container containing the pump core assembly Technical Field
[0001] The present application relates to cosmetic packaging technology, and in particular to a press-type pump core assembly and a cosmetic container comprising the pump core assembly. Background Art
[0002] With the development of society, cosmetics are becoming increasingly common in people's lives, and cosmetics are usually stored in cosmetic containers. Pump-type cosmetic containers typically pump out the cosmetic material by pressing a button. Pump-type cosmetic containers are widely used due to their ease of operation. However, traditional pump-type cosmetic containers are very inconvenient because the amount of material discharged depends on the user's pressure during use. Summary of the Invention
[0003] In order to overcome the above-mentioned defects, the present application provides a push-type pump core assembly, in which a first stop portion and a second stop portion are used to control the valve stem stroke, thereby ensuring quantitative discharge of the pump core, and the pump core assembly has a simple structure and is easy to process.
[0004] The technical solution adopted by this application to solve its technical problems is:
[0005] A push-type pump core assembly includes a shell, a valve stem, an elastic part, a sleeve, a piston and a piston seat, the sleeve and the piston seat are fixedly installed in the shell, the valve stem is fixedly connected to the piston, and the piston is installed in the piston seat, the elastic part is provided between the valve stem and the sleeve, the valve stem is provided with a first stop part, and the sleeve is provided with a second stop part, the valve stem can drive the piston to move along the axial direction of the piston seat to complete the material suction operation, before the valve stem moves, the first stop part and the second stop part are disengaged from each other, when the valve stem moves to the maximum stroke, the first stop part abuts against the second stop part, and the elastic part is used to reset the valve stem.
[0006] Optionally, the outer side wall of the valve stem extends radially outward to form the first stop portion, the upper surface of the bushing extends axially upward to form the second stop portion, or the inner side wall of the bushing extends radially inward to form the second stop portion.
[0007] Optionally, the width of the first stop portion is H1, the distance between the uppermost end of the second stop portion and the valve stem is H2, and H1>H2.
[0008] Optionally, the valve stem is provided with a circle of the first stop portion, and the bushing is provided with a circle of the second stop portion, or the valve stem is provided with a circle of the first stop portion, and the bushing is provided with the second stop portions arranged at intervals from each other, or the valve stem is provided with the first stop portions arranged at intervals from each other, and the bushing is provided with a circle of the second stop portion.
[0009] Optionally, the inner side wall of the second stop portion is in contact with the outer side wall of the valve stem, and the inner side wall of the bushing is provided with an avoidance groove.
[0010] Optionally, the elastic member is made of plastic material, and the outer surface of the elastic member has a spiral structure. The first end of the elastic member abuts against the valve stem, and the second end of the elastic member abuts against the bushing.
[0011] Optionally, the first end of the shell is fixedly mounted on the bushing, the second end of the shell is fixedly mounted on the suction valve, an outer ring is fixedly provided on the outside of the bushing, a mounting groove is formed between the outer ring and the bushing, the first end of the shell is inserted into the mounting groove and the shell and the outer ring are clamped and fixed.
[0012] Optionally, a feed hole is provided on the piston. When the elastic member is in a natural state, the piston fits airtightly against the piston seat, and the piston seat seals the feed hole. When the valve stem drives the piston to move axially along the piston seat, the elastic member is in a compressed state, and a gap is formed between the piston and the piston seat to complete the material suction operation.
[0013] The present application also provides a cosmetic container, comprising a pump core assembly and an outer sleeve assembly, wherein the outer sleeve assembly comprises a bottle body, an inner ring, a pressing member and an outer cover, the pump core assembly is installed in the bottle body, the inner ring is screwed to the bottle body to fix the pump core assembly on the bottle body, the pressing member is connected to the valve stem, and the pressing member can drive the valve stem to move axially along the shell, and the outer cover covers the inner ring.
[0014] Optionally, the bottle body includes an outer bottle and an inner bottle fixedly installed in the outer bottle, the inner bottle is provided with a scraper plug, and the scraper plug is airtightly attached to the inner wall of the inner bottle, or the inner bottle is provided with a straw, and the straw is sleeved on the free end of the shell.
[0015] The beneficial effects of the present application are as follows: in the present application, the first stop portion is arranged on the valve stem, and the second stop portion is arranged on the bushing, and the first stop portion and the second stop portion are used to limit the maximum stroke of the valve stem, thereby controlling the discharge amount of the pump core assembly each time, ensuring the quantitative discharge of the pump core assembly, and facilitating user use; in the present application, the first stop portion and the second stop portion are designed inside the pump core assembly, thereby simplifying the structure of the cosmetic container and facilitating large-scale processing and production of the cosmetic container. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] FIG1 is a cross-sectional view of the pump core assembly in this application;
[0017] Figure 2 is an enlarged view of point A in Figure 1;
[0018] FIG3 is a left side view of the pump core assembly in this application;
[0019] FIG4 is a right side view of the pump core assembly in this application;
[0020] FIG5 is a top view of the pump core assembly in this application;
[0021] FIG6 is a bottom view of the pump core assembly in this application;
[0022] FIG7 is one of the exploded views of the pump core assembly in this application;
[0023] FIG8 is a second exploded view of the pump core assembly in this application;
[0024] FIG9 is one of the structural schematic diagrams of the valve stem in this application;
[0025] FIG10 is a second structural diagram of the valve stem in this application;
[0026] FIG11 is a schematic diagram of the structure of the bushing in this application;
[0027] FIG12 is a second structural diagram of the bushing in this application;
[0028] FIG13 is a schematic diagram of the structure of the piston in this application;
[0029] FIG14 is a second schematic diagram of the structure of the piston in this application;
[0030] FIG15 is a cross-sectional view of the cosmetic container in the present application in its initial state;
[0031] FIG16 is an enlarged view of point B in FIG15 ;
[0032] FIG17 is a cross-sectional view of the cosmetic container in the present application in a pressed state;
[0033] FIG18 is an enlarged view of point C in FIG17 ;
[0034] In the figure: 100-pump core assembly, 110-housing, 120-valve stem, 121-first stopper, 122-rib, 123-convex edge, 124-groove, 130-elastic member, 140-bushing, 141-second stopper, 142-outer ring, 143-mounting groove, 144-avoidance groove, 150-piston, 151-feeding hole, 152-slot, 160-piston seat, 170-intake valve, 180-gasket, 200-jacket assembly, 210-bottle body, 211-outer bottle, 212-inner bottle, 220-inner ring, 230-pressing member, 231-fixing rod, 232-discharge channel, 240-outer cover, 250-scraper plug. DETAILED DESCRIPTION
[0035] The following will be combined with the embodiments of the present application to clearly and completely describe the technical solutions in the embodiments of the present application. Obviously, the embodiments described in this application are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of this application.
[0036] It should be noted that the terms "first", "second", etc. in the specification and claims of this application and the following drawings are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that the objects used in this way can be interchanged where appropriate so that the embodiments of the application described herein can be implemented in an order other than those illustrated or described herein. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions. For example, a process, method, system, product or device that includes a series of steps or units is not necessarily limited to those steps or units clearly listed, but may include other steps or units that are not clearly listed or inherent to these processes, methods, products or devices.
[0037] For ease of description, spatially relative terms such as "above", "above", "on the upper surface of", "above", etc. may be used herein to describe the spatial positional relationship of a device or feature to other devices or features as shown in the figures. It should be understood that spatially relative terms are intended to include different orientations of the device in use or operation in addition to the orientation described in the figures. For example, if the device in the drawings is inverted, the device described as "above other devices or structures" or "above other devices or structures" will be positioned as "below other devices or structures" or "below other devices or structures". Thus, the exemplary term "above" can include both "above" and "below". The device can also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatially relative descriptions used here are interpreted accordingly.
[0038] Embodiment: As shown in Figures 1 to 14, a push-type pump core assembly includes a housing 110, a valve stem 120, an elastic member 130, a bushing 140, a piston 150 and a piston seat 160. The bushing 140 and the piston seat 160 are fixedly installed in the housing 110, the valve stem 120 is fixedly connected to the piston 150, and the piston 150 is installed in the piston seat 160. An elastic member 130 is provided between the valve stem 120 and the bushing 140, a first stopper 121 is provided on the valve stem 120, and a first stopper 121 is provided on the bushing 140. A second stop portion 141 is provided, and the valve stem 120 can drive the piston 150 to move axially along the piston seat 160 to complete the material suction operation. Before the valve stem 120 moves, the first stop portion 121 and the second stop portion 141 are disengaged from each other. When the valve stem 120 moves to the maximum stroke, the first stop portion 121 abuts against the second stop portion 141, that is, the first stop portion 121 can abut against the second stop portion 141 to limit the maximum stroke of the valve stem 120, and the elastic member 130 is used to reset the valve stem 120.
[0039] As shown in Figure 1, bushing 140 is fixedly mounted to the upper open end of housing 110. Optionally, bushing 140 and housing 110 are secured by means of a snap fit, interference fit, fasteners, or the like. Piston seat 160 is interference-fitted to the inner sidewall of housing 110, ensuring an airtight fit. During use, pump core assembly 100 is installed within outer sleeve assembly 200, forming a complete cosmetic container. A discharge channel is provided inside the valve stem 120 and the piston 150. Initially, the elastic member 130 is in a natural state, and the piston 150 and the piston seat 160 are in an airtight fit. When the user presses the valve stem 120 downward, the valve stem 120 and the piston 150 move synchronously downward along the axial direction of the piston seat 160 until the first stop portion 121 on the valve stem 120 presses against the second stop portion 141 on the bushing 140. At this time, the elastic member 130 is compressed, and the airtight state between the piston 150 and the piston seat 160 is released to suck the cosmetic material into the discharge channel to complete the suction operation.
[0040] In the present application, the first stop portion 121 is provided on the valve stem 120, and the second stop portion 141 is provided on the bushing 140. The first stop portion 121 and the second stop portion 141 are used to limit the maximum stroke of the valve stem 120, thereby controlling the discharge amount of the pump core assembly 100 each time, ensuring the quantitative discharge of the pump core assembly 100, and facilitating user use; in the present application, the first stop portion 121 and the second stop portion 141 are designed inside the pump core assembly 100, thereby simplifying the structure of the cosmetic container and facilitating large-scale processing and production of cosmetic containers.
[0041] In one possible embodiment, as shown in Figures 9 and 10, the outer sidewall of the valve stem 120 extends radially outward to form a first stop portion 121, that is, the first stop portion 121 protrudes from the valve stem 120 in the radial direction of the valve stem 120. As shown in Figures 11 and 12, the upper surface of the bushing 140 extends axially upward to form a second stop portion 141. When the valve stem 120 is inserted into the bushing 140 and the valve stem 120 moves downward, when the first stop portion 121 moves to the second stop portion 141, the second stop portion 141 blocks the first stop portion 121 to prevent the valve stem 120 from further descending.
[0042] In another possible embodiment, the outer sidewall of the valve stem 120 extends radially outward to form the first stop portion 121, and the inner sidewall of the bushing 140 extends radially inward to form the second stop portion 141. That is, the second stop portion 141 is formed by extending inward along the inner sidewall of the bushing 140 and can also serve to limit the first stop portion 121.
[0043] In this application, the first stop portion 121 is arranged on the valve stem 120, and the second stop portion 141 is arranged on the sleeve 140. The first stop portion 121 and the second stop portion 141 are used to limit the maximum stroke of the valve stem 120, thereby controlling the discharge amount of the pump core assembly 100 each time, ensuring the quantitative discharge of the pump core assembly 100, and facilitating user use.
[0044] As shown in FIG2 , the width of the first stopper 121 is H1, and the distance between the uppermost end of the second stopper 141 and the valve stem 120 is H2, where H1>H2. This ensures that when the valve stem 120 moves downward, the first stopper 121 is blocked by the second stopper 141, thereby preventing the valve stem 120 from moving further downward.
[0045] As shown in Figures 9 and 11, in the first embodiment, a circle of first stop portions 121 is provided on the valve stem 120, and a circle of second stop portions 141 is provided on the bushing 140, that is, a full circle of first stop portions 121 is provided in the circumferential direction of the valve stem 120, and a full circle of second stop portions 141 is provided in the circumferential direction of the bushing 140. This ensures that when the first stop portion 121 runs to the position of the second stop portion 141, the two can interfere with each other.
[0046] In the second embodiment, a circle of first stop portions 121 is provided on the valve stem 120, and second stop portions 141 arranged at intervals from each other are provided on the bushing 140, that is, a full circle of first stop portions 121 is provided in the circumferential direction of the valve stem 120, and a plurality of second stop portions 141 arranged at intervals from each other are provided in the circumferential direction of the bushing 140, which can also achieve the purpose of mutual interference between the first stop portion 121 and the second stop portion 141.
[0047] In the third embodiment, the valve stem 120 is provided with first stoppers 121 spaced apart from one another, and the bushing 140 is provided with a circle of second stoppers 141. Alternatively, the valve stem 120 may be provided with a plurality of first stoppers 121 spaced apart from one another in the circumferential direction, and the bushing 140 may be provided with a complete circle of second stoppers 141 in the circumferential direction.
[0048] As shown in Figures 1, 11, and 12, a portion of the lower inner sidewall of the second stopper 141 is in contact with the outer sidewall of the valve stem 120, and a relief groove 144 is provided on the inner sidewall of the bushing 140. The mutual contact arrangement of the valve stem 120 and the second stopper 141 can guide the valve stem 120 when it moves downward, ensuring that the valve stem 120 does not wobble or rotate. The relief groove 144 is provided on the inner sidewall of the bushing 140 and is located below the second stopper 141, so that a certain gap is formed between the valve stem 120 and the bushing 140. After the pump core assembly is pressed multiple times, the valve stem may deform. This gap provides a buffer space for the deformation of the valve stem 120, ensuring that the discharge effect of the pressing is not affected by the deformed valve stem 120.
[0049] As shown in Figures 7 and 8, the elastic member 130 is made of plastic material, and the outer surface of the elastic member 130 has a spiral structure. As shown in Figures 1 and 3, the first end of the elastic member 130 abuts against the valve stem 120, and the second end of the elastic member 130 abuts against the bushing 140. By making the elastic member 130 of plastic material, the entire pump core assembly is made of plastic material, which reduces the production cost of the product and facilitates the recycling and classification of the product. The elastic member 130 is made into a spiral structure, similar to the shape of a bellows, which is less likely to produce abnormal noise when pressed, ensuring smooth discharge and improving user comfort.
[0050] As shown in Figures 9 and 10, the first end of the valve stem 120 extends radially outward to form a circle of ridges 123. The ridges 123 extend downward to form sidewalls. The sidewalls and the first stopper 121 form a groove 124. As shown in Figure 1, the first end of the elastic member 130 is inserted into the groove 124 and abuts against the ridges 123. As shown in Figure 10, the inner sidewall of the valve stem 120 is provided with ribs 122. As shown in Figure 13, the outer sidewall of the piston 150 is provided with a circle of grooves 152. When the piston 150 is inserted into the valve stem 120, the ribs 122 snap into the grooves 152 to securely mount the valve stem 120 and the piston 150.
[0051] As shown in Figures 1, 11, and 12, a bushing 140 is fixedly mounted on the first end of the housing 110, and an intake valve 170 is fixedly mounted on the second end of the housing 110. An outer ring 142 is fixedly mounted on the outside of the bushing 140, and a mounting groove 143 is formed between the outer ring 142 and the bushing 140. The first end of the housing 110 is inserted into the mounting groove 143, and the housing 110 and outer ring 142 are engaged and fixed, thereby fixing the bushing 140 to the housing 110. An intake valve 170 is mounted inside the second end of the housing 110, through which external cosmetic materials are drawn into the interior of the pump core assembly.
[0052] As shown in Figures 13 and 14, piston 150 is provided with a feed hole 151. When elastic member 130 is in its natural state, i.e., the pump core assembly is in its initial state, as shown in Figures 15 and 16, first stop 121 is located above second stop 141, piston 150 is airtightly attached to piston seat 160, and piston seat 160 seals feed hole 151. As shown in Figure 17, when a user presses valve stem 120, valve stem 120 drives piston 150 to move axially along piston seat 160, elastic member 130 is compressed, and a gap is formed between piston 150 and piston seat 160 to complete the material suction operation. That is, after piston 150 moves downward, the airtight state between piston 150 and piston seat 160 is released, and a gap is formed. Material enters the piston through the gap and feed hole 151 to complete the material suction operation. As shown in Figure 18, the first stopper 121 abuts against the second stopper 141, and the valve stem 120 completes the maximum stroke movement. When the user releases the valve stem 120, the elastic member 130 recovers and returns the valve stem 120 and the piston 150 to the initial state.
[0053] As shown in Figures 15-18, a cosmetic container includes a pump core assembly 100 and an outer sleeve assembly 200. The outer sleeve assembly 200 includes a bottle body 210, an inner ring member 220, a pressing member 230 and an outer cover 240. The pump core assembly 100 is installed in the bottle body 210. The inner ring member 220 is screwed to the bottle body 210 to fix the pump core assembly 100 on the bottle body 210. The pressing member 230 is connected to the valve stem 120, and the pressing member 230 can drive the valve stem 120 to move axially along the shell 10. The outer cover 240 covers the inner ring member 220.
[0054] As shown in FIG16 , the housing 110 is mounted on the open end of the bottle body 210, with a gasket 180 disposed between the housing 110 and the bottle body 210. A fixing rod 231 is fixed to the pressing member 230, and a discharge channel 232 is defined therein. The fixing rod 231 is inserted into the open end of the valve stem 120 and is engaged and fixed thereto. Cosmetic material is placed in the bottle body 210. When a user presses the pressing member 230, the pressing member 230 drives the valve stem 120 and the piston 150 downward until the first stop 121 abuts the second stop 141, as shown in FIG18 . At this point, the elastic member 130 is compressed, and the airtight state between the piston 150 and the piston seat 160 is released, forming a gap. The cosmetic material in the bottle body 210 then flows out of the container through the inlet valve 170, the gap, the feed hole 151, and the discharge channel 232 for use by the user.
[0055] When the user releases the pressing member 230, the elastic member 130 returns to its original position, returning the pressing member 230, the valve stem 120, and the piston 150 to their original positions. In this application, the first stopper 121 and the second stopper 141 are designed into the pump core assembly, thereby reducing the difficulty of manufacturing the various components of the cosmetic container and facilitating product precision control. The interaction between the first stopper 121 and the second stopper 141 can control the amount of cosmetic material discharged each time, making it easier for consumers to use.
[0056] As shown in Figure 15, the bottle body 210 includes an outer bottle 211 and an inner bottle 212 fixedly installed in the outer bottle 211. In a possible embodiment, a scraper plug 250 is provided in the inner bottle 212, and the scraper plug 250 is airtightly attached to the inner wall of the inner bottle 212. The scraper plug 250 moves upward to squeeze the cosmetic material in the bottle body into the pump core assembly, thereby improving the utilization rate of the cosmetic material and reducing the waste of resources. However, the sealing requirements for the pump core assembly are relatively high, and it is suitable for high-value cosmetic materials.
[0057] In another possible embodiment, a straw is provided within the inner bottle 212 and is sleeved onto the free end of the housing 110. The upper end of the straw is fixedly mounted to the free end of the housing 110, while the lower end of the straw is located within the body of the inner bottle 212. The straw is used to draw cosmetic materials from the bottle, resulting in a simple structure and ease of use.
[0058] The beneficial effects of this application include:
[0059] (1) In the present application, the first stop portion is provided on the valve stem, and the second stop portion is provided on the bushing. The first stop portion and the second stop portion are used to limit the maximum stroke of the valve stem, thereby controlling the discharge amount of the pump core assembly each time, ensuring quantitative discharge of the pump core assembly, and facilitating user use; in the present application, the first stop portion and the second stop portion are designed inside the pump core assembly, thereby simplifying the structure of the cosmetic container and facilitating large-scale processing and production of the cosmetic container.
[0060] (2) In the present application, the valve stem and the second stop portion are arranged to fit together, which can guide the valve stem when it moves downward, ensuring that the valve stem does not shake or rotate; an avoidance groove is opened on the inner wall of the bushing to form a certain gap between the valve stem and the bushing. After the pump core assembly is pressed multiple times, the valve stem may be deformed. The gap provides a buffer space for the deformation of the valve stem, ensuring that the discharge effect of the pressing will not be affected by the deformed valve stem.
[0061] (3) In the present application, the elastic member is made of plastic material, so that the entire pump core assembly is made of plastic material, which extends the service life of the product, reduces the production cost of the product, and facilitates the recycling and classification of the product; the elastic member is made into a spiral structure, which is similar to the shape of a bellows, and is not easy to produce abnormal noise when pressed, thereby ensuring smooth discharge and improving user comfort.
[0062] It should be noted that those skilled in the art may make a number of modifications and improvements without departing from the concept of this application, and these modifications and improvements are all within the scope of protection of this application. Therefore, the scope of protection of this patent application shall be based on the appended claims.
Claims
1. A push-type pump core assembly, characterized in that: The invention comprises a housing (110), a valve stem (120), an elastic member (130), a bushing (140), a piston (150) and a piston seat (160), wherein the bushing (140) and the piston seat (160) are fixedly installed in the housing (110), the valve stem (120) is fixedly connected to the piston (150), the piston (150) is installed in the piston seat (160), the elastic member (130) is provided between the valve stem (120) and the bushing (140), and the valve stem (120) is provided with a first stopper (1 21), a second stop portion (141) is provided on the bushing (140), and the valve stem (120) can drive the piston (150) to move axially along the piston seat (160) to complete the material suction operation. Before the valve stem (120) moves, the first stop portion (121) and the second stop portion (141) are disengaged from each other. When the valve stem (120) moves to the maximum stroke, the first stop portion (121) abuts against the second stop portion (141), and the elastic member (130) is used to reset the valve stem (120).
2. The push-type pump core assembly according to claim 1, characterized in that: The outer side wall of the valve stem (120) extends radially outward to form the first stop portion (121), the upper surface of the bushing (140) extends axially upward to form the second stop portion (141), or the inner side wall of the bushing (140) extends radially inward to form the second stop portion (141).
3. The push-type pump core assembly according to claim 2, characterized in that: The width of the first stopper (121) is H1, the distance between the uppermost end of the second stopper (141) and the valve stem (120) is H2, and H1>H2.
4. The push-type pump core assembly according to claim 2, characterized in that: The valve stem (120) is provided with a circle of the first stop portion (121), and the bushing (140) is provided with a circle of the second stop portion (141), or the valve stem (120) is provided with a circle of the first stop portion (121), and the bushing (140) is provided with the second stop portions (141) spaced apart from each other, or the valve stem (120) is provided with the first stop portions (121) spaced apart from each other, and the bushing (140) is provided with a circle of the second stop portions (141).
5. The push-type pump core assembly according to claim 1, characterized in that: The inner side wall of the second stopper (141) is in contact with the outer side wall of the valve stem (120), and the inner side wall of the bushing (140) is provided with an avoidance groove (144).
6. The push-type pump core assembly according to claim 1, characterized in that: The elastic member (130) is made of plastic material, and the outer surface of the elastic member (130) is a spiral structure. The first end of the elastic member (130) abuts against the valve stem (120), and the second end of the elastic member (130) abuts against the bushing (140).
7. The push-type pump core assembly according to claim 1, characterized in that: The first end of the housing (110) is fixedly mounted with the bushing (140), the second end of the housing (110) is fixedly mounted with the suction valve (170), an outer ring (142) is fixedly provided on the outer side of the bushing (140), a mounting groove (143) is formed between the outer ring (142) and the bushing (140), the first end of the housing (110) is inserted into the mounting groove (143), and the housing (110) and the outer ring (142) are engaged and fixed.
8. The push-type pump core assembly according to claim 1, characterized in that: The piston (150) is provided with a feed hole (151). When the elastic member (130) is in a natural state, the piston (150) is airtightly fitted to the piston seat (160), and the piston seat (160) seals the feed hole (151). When the valve stem (120) drives the piston (150) to move axially along the piston seat (160), the elastic member (130) is in a compressed state, and a gap is formed between the piston (150) and the piston seat (160) to complete the material suction operation.
9. A cosmetic container, characterized in that: The invention comprises a pump core assembly and a jacket assembly (200) according to any one of claims 1 to 8, wherein the jacket assembly (200) comprises a bottle body (210), an inner ring member (220), a pressing member (230) and an outer cover (240), the pump core assembly (100) is installed in the bottle body (210), the inner ring member (220) is screwed to the bottle body (210) to fix the pump core assembly (100) to the bottle body (210), the pressing member (230) is connected to the valve stem (120), and the pressing member (230) can drive the valve stem (120) to move axially along the housing (110), and the outer cover (240) covers the inner ring member (220).
10. The cosmetic container according to claim 9, characterized in that: The bottle body (210) comprises an outer bottle (211) and an inner bottle (212) fixedly mounted in the outer bottle (211); a scraper plug (250) is provided in the inner bottle (212); the scraper plug (250) is airtightly attached to the inner side wall of the inner bottle (212); or a straw is provided in the inner bottle (212), and the straw is sleeved on the free end of the housing (110).
Citation Information
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