Multi-bin split type rotary selective discharging container

By designing a multi-storey split rotary selection discharge container, the problem that existing containers cannot extract specific material bodies as needed is solved, and flexible selection and mixing of different material bodies is achieved, improving user experience.

CN120135633APending Publication Date: 2025-06-13YAER (ZHEJIANG) DIGITAL TECHNOLOGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510510078.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-22
Publication Date
2025-06-13

AI Technical Summary

Technical Problem

Existing containers cannot extract specific materials separately as needed, and the user experience is poor and cannot meet the multi-storey control needs of customized products.

Method used

A multi-storey split rotary selection discharge container is designed, including a first silo and a plurality of second siloes. Different second pump cores are connected by rotating press head selection, and each pump core is connected to a second silo to realize the extraction and mixing of different materials.

Benefits of technology

It realizes flexible selection and mixing of different material bodies, and users can choose to extract different silo materials according to their needs, improving the user experience.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120135633A_ABST
    Figure CN120135633A_ABST
Patent Text Reader

Abstract

The multi-bin split type rotary selective discharging container comprises a bottle body, a shoulder sleeve and a pressing head, the bottle body comprises a first material bin and at least two second material bins, the shoulder sleeve is fixedly installed at an opening in the upper end of the bottle body, a first pump core and at least two second pump cores are installed on the shoulder sleeve, the first pump core is connected with the first material bin, and the second pump core is connected with the second material bin. Each second pump core is connected with one second stock bin, the pressing head is rotationally installed on the first pump core and comprises a first channel, a second channel, a first nozzle and a second nozzle, the first channel is connected with the first pump core and the first nozzle, and the second channel can communicate with the second nozzle and any second pump core; different second stock bins can be selectively connected through the rotating pressing head, simultaneous discharging of the first stock bin and the different second stock bins can be achieved by pressing the pressing head, and user experience is better.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of packaging containers, and more specifically, to a multi-compartment split-type rotary selection discharging container. Background Art

[0002] In the prior art, most containers only support mixed discharging and cannot individually extract specific materials as needed. In the market, it is common to have independent or mixed discharging in two-compartment, three-compartment, etc., and it is not possible to control the extraction of materials in multiple compartments for customized products, resulting in poor user experience. Therefore, a technical solution is needed to solve the above problems. Summary of the Invention

[0003] An object of the present invention is to overcome the above deficiencies of the prior art, be able to select and extract materials from different compartments, and provide a multi-compartment split-type rotary selection discharging container.

[0004] To achieve the above object, the present invention adopts the following technical solutions:

[0005] The present invention discloses a multi-compartment split-type rotary selection discharging container, comprising:

[0006] A bottle body, the bottle body includes a first material compartment and at least two second material compartments;

[0007] A shoulder sleeve, the shoulder sleeve is fixedly installed at the upper opening of the bottle body, the shoulder sleeve is provided with a first pump core and at least two second pump cores, the first pump core is connected to the first material compartment, and each second pump core is connected to a second material compartment;

[0008] A pressing head, the pressing head is rotatably installed on the first pump core, the pressing head includes a first channel, a second channel, a first nozzle, and a second nozzle, the first channel connects the first pump core and the first nozzle, and the second channel can communicate the second nozzle and any one of the second pump cores.

[0009] Further, the pressing head includes a second connecting pipe, the second connecting pipe is located at one end of the second channel connecting the second pump core, the second connecting pipe is provided with a seal, the seal is located at one end of the second connecting pipe facing the second pump core, the seal can elastically deform, the seal is provided with a gap, the second pump core is provided with a third connecting pipe, the third connecting pipe is located at one end of the second pump core facing the seal, and the third connecting pipe can pass through the gap and enter the second channel.

[0010] Further, the second channel includes a slot, the slot is located at one end of the second channel facing the third connecting pipe, the third connecting pipe includes a plug, the plug can be inserted into the slot, and the slot includes a step, and the upper end of the plug can abut against the step.

[0011] Further, the inner diameter of the slot is greater than the outer diameter of the plug. When the plug is inserted into the slot, the seal is partially deformed and located between the outer wall of the plug and the inner wall of the slot.

[0012] Further, it includes a fixing member which is fixedly installed on the second connecting pipe. The seal includes an annular edge which is fixed between the fixing member and the second connecting pipe.

[0013] Further, the seal includes an abutting surface which is located on the end face of the seal facing the third connecting pipe. The abutting surface is an arc surface, and the center of the abutting surface is recessed in a direction away from the third connecting pipe.

[0014] Further, the gap is cross-shaped.

[0015] Further, the pressing head includes at least one limiting block and at least one guiding strip. The shoulder sleeve includes a first ring plate and a second ring plate. The first ring plate and the second ring plate extend towards the pressing head. The first ring plate is provided with a plurality of limiting grooves corresponding to the limiting blocks, and the second ring plate is provided with a plurality of guiding grooves corresponding to the guiding strips. The guiding grooves communicate with the upper end face of the second ring plate. When the limiting blocks are located in the limiting grooves, the guiding strips correspond to one of the guiding grooves.

[0016] Further, each of the limiting grooves corresponds to a second pump core. The corresponding limiting groove and the second pump core are located in the same radial direction of the shoulder sleeve. One of the limiting blocks and the second channel are located in the same radial direction of the pressing head.

[0017] Further, the bottle body is provided with a plurality of partition plates. Each partition plate divides the inside of the bottle body into a second material bin. A first material bin is formed between all the partition plates. The first material bin is located at the center of the bottle body, and the plurality of second material bins are distributed annularly.

[0018] The beneficial effects of the present invention are as follows:

[0019] 1. The bottle body of the present invention is provided with a first material bin and a plurality of second material bins. By rotating the pressing head, different second pump cores can be selectively connected. Each pump core is connected to a second material bin, and each second material bin contains different materials. Rotating the pressing head can switch different second material bins, and pressing the pressing head can cause the first material bin and the second material bins to discharge materials simultaneously, providing a better user experience.

[0020] 2. A seal is provided at the part where the pressing head is connected to the second pump core. Through the gap provided by the seal, the third connecting pipe provided by the second pump core can be inserted into the second connecting pipe. The seal deforms to form a sealing effect for the insertion of the second connecting pipe and the third connecting pipe. At the same time, it can play a role in scraping the wall when the third connecting pipe leaves the second connecting pipe. The seal acts as a one-way valve. After the third connecting pipe leaves the second connecting pipe, the gap can be closed to seal the lower opening of the second connecting pipe, and the material in the second channel 32 will not flow out through the gap. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 It is a schematic diagram of an embodiment.

[0022] Figure 2 It is a sectional view of an embodiment.

[0023] Figure 3 is Figure 2 an enlarged view of part A in

[0024] Figure 4 It is a schematic diagram of the bottle body in this embodiment.

[0025] Figure 5 It is a schematic diagram of the shoulder sleeve, the first pump core, and the second pump core in this embodiment.

[0026] Figure 6 It is a schematic diagram of the pressing head in this embodiment.

[0027] Figure 7 It is a schematic diagram of the seal in this embodiment.

[0028] Reference numerals: 1. Bottle body; 11. First bin; 12. Second bin; 13. Partition board; 2. Shoulder sleeve; 21. First ring plate; 211. Limit groove; 22. Second ring plate; 221. Guide groove; 3. Pressing head; 31. First channel; 311. First connecting pipe; 32. Second channel; 321. Second connecting pipe; 3211. Slot; 3212. Step; 33. First spray nozzle; 34. Second spray nozzle; 35. Limit block; 36. Guide strip; 4. First pump core; 5. Second pump core; 51. Third connecting pipe; 511. Plug; 6. Seal; 61. Gap; 62. Contact surface; 63. Ring edge; 7. Fixing member; 71. Through hole; 8. Outer cover. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0029] The following will clearly and completely describe the technical solutions in this embodiment in conjunction with the accompanying drawings in this embodiment. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0030] As Figures 1 to 7 shown, this embodiment discloses a multi-compartment body including a bottle body 1, a shoulder sleeve 2, a pressing head 3, and an outer cap 8. The bottle body 1 includes a first storage bin 11 and at least two second storage bins 12. The bottle body 1 is provided with a plurality of partition plates 13. Each partition plate 13 divides the inside of the bottle body 1 to form a second storage bin 12. A first storage bin 11 is formed between all the partition plates 13. The first storage bin 11 is located at the center of the bottle body 1. The plurality of second storage bins 12 are annularly distributed. In this embodiment, there are four second storage bins 12. Different materials can be provided in each second storage bin 12. The materials in each second storage bin 12 can be mixed with the materials in the first storage bin 11 after discharging to produce different effects, and the materials can be mixed and applied after being extruded.

[0031] The shoulder sleeve 2 is fixedly installed at the upper opening of the bottle body 1. The shoulder sleeve 2 and the bottle body 1 are fastened and fixed. A sealing gasket is installed between the shoulder sleeve 2 and the upper opening of the bottle body 1. The sealing gasket seals the upper edges of the bottle body 1 and the partition plates 13, so that the first storage bin 11 and each second storage bin 12 are independent cavities. The shoulder sleeve 2 is provided with a first pump core 4 and at least two second pump cores 5. The first pump core 4 is connected to the first storage bin 11, and each second pump core 5 is connected to a second storage bin 12. The pressing head 3 is rotatably installed on the first pump core 4. The pressing head 3 includes a first connecting pipe 311. The first pump core 4 is fixedly installed in the shoulder sleeve 2. The first connecting pipe 311 and the first pump core 4 are inserted and connected and can rotate relative to each other. The pressing head 3 includes a first channel 31, a second channel 32, a first nozzle 33, and a second nozzle 34. The first nozzle 33 and the second nozzle 34 communicate with the outer side wall of the pressing head 3. Different two kinds of materials can be extruded through the first nozzle 33 and the second nozzle 34 by pressing the pressing head 3. The first channel 31 connects the first pump core 4 and the first nozzle 33. The second channel 32 can communicate the second nozzle 34 and any one of the second pump cores 5. Rotating the pressing head 3 can make the second channel 32 connect different second pump cores 5. When the pressing head 3 rotates, the second channel 32 is in a non-communicating state with all the second pump cores 5. When the second channel 32 and any one of the second pump cores 5 are in a corresponding up-and-down position, during the process of pressing the pressing head 3, the second channel 32 is in communication with this second pump core 5 to discharge materials, and different materials can be extracted from different second storage bins 12, achieving better customization and better user experience.

[0032] As Figure 2 、 Figure 3As shown, this embodiment further includes a fixing member 7. The pressing head 3 includes a second connecting pipe 321. The second connecting pipe 321 is located at one end of the second channel 32 connecting the second pump core 5. A sealing member 6 is installed on the second connecting pipe 321. The sealing member 6 is located at the end of the second connecting pipe 321 facing the second pump core 5. The fixing member 7 is fixedly installed on the second connecting pipe 321. The sealing member 6 includes an annular edge 63. The annular edge 63 is fixed between the fixing member 7 and the second connecting pipe 321. The fixing member 7 presses the sealing member 6 against the second connecting pipe 321, and seals between the second connecting pipe 321 and the fixing member 7 by pressing the annular edge 63.

[0033] The sealing member 6 can elastically deform. The sealing member 6 is made of silica gel. The sealing member 6 is provided with a slit 61. The slit 61 is cross-shaped. The fixing member 7 is provided with a through hole 71. The second pump core 5 is installed with a third connecting pipe 51. The third connecting pipe 51 is located at the end of the second pump core 5 facing the sealing member 6. The third connecting pipe 51 can pass through the through hole 71. The third connecting pipe 51 can pass through the slit 61 and enter the second channel 32. When the third connecting pipe 51 passes through the slit 61 and expands the slit 61, the part of the sealing member 6 provided with the slit 61 can be pressed upward and deformed, so that when the sealing member 6 is penetrated by the third connecting pipe 51, the outer sidewall of the third connecting pipe 51 is sealed, preventing leakage between the second connecting pipe 321 and the third connecting pipe 51 when the pressing head 3 is pressed. The sealing member 6 functions as a one-way valve. After the third connecting pipe 51 leaves the second connecting pipe 321, the slit 61 can be closed to seal the lower end opening of the second connecting pipe 321, and the material in the second channel 32 will not flow out through the slit 61.

[0034] The second channel 32 includes a slot 3211. The slot 3211 is located at one end of the second channel 32 facing the third connecting pipe 51. The third connecting pipe 51 includes a plug 511. The plug 511 can be inserted into the slot 3211. The slot 3211 includes a step 3212. The upper end of the plug 511 can abut against the step 3212. When the pressing head 3 is pressed downward, the plug 511 originally located outside the slot 3211 will pass through the slit 61 of the sealing member 6 as the pressing head 3 gradually descends. The inner diameter of the slot 3211 is larger than the outer diameter of the plug 511. When the plug 511 is inserted into the slot 3211, part of the sealing member 6 deforms between the outer sidewall of the plug 511 and the inner sidewall of the slot 3211. The deformation of the sealing member 6 seals the outer sidewall of the plug 511 and the inner sidewall of the slot 3211 until the plug 511 abuts against the step 3212, and the third connecting pipe 51 communicates with the second channel 32, enabling the pressing head 3 to press the second pump core 5. The second pump core 5 takes material from the second material bin 12, and the material in the second material bin 12 is sprayed out from the second nozzle 34.

[0035] More preferably, the seal 6 includes an abutting surface 62, which is located on the end surface of the seal 6 facing the third connecting pipe 51. The abutting surface 62 is an arc surface, and the center of the abutting surface 62 is recessed in the direction away from the third connecting pipe 51. The arc-shaped abutting surface 62 enables the part of the seal 6 provided with the gap 61 to have better support, can be better restored after the seal 6 is deformed, and can also play a guiding role for the insertion of the plug 511. When the pressing head 3 is reset upward, during the process of the plug 511 exiting the slot 3211, the seal 6 can scrape the outer wall of the plug 511 to prevent the leakage of the material outside.

[0036] As Figure 5 , Figure 6 shown, the pressing head 3 includes at least one limiting block 35 and at least one guiding strip 36. The shoulder sleeve 2 includes a first ring plate 21 and a second ring plate 22. The first ring plate 21 and the second ring plate 22 extend towards the pressing head 3. The first ring plate 21 is provided with a plurality of limiting grooves 211 corresponding to the limiting blocks 35. The limiting blocks 35 cooperate with the limiting grooves 211. Each limiting groove 211 corresponds to a second pump core 5. The corresponding limiting groove 211 and the second pump core 5 are located in the same radial direction of the shoulder sleeve 2. One limiting block 35 and the second channel 321 are located in the same radial direction of the pressing head 3, realizing the limit of the upper and lower position correspondence between the internal second connecting pipe 321 and the third connecting pipe 51 when the pressing head 3 rotates. The limiting block 35 and the limiting groove 211 are matched by protrusions and grooves, and the contact edges of the limiting block 35 and the limiting groove 211 are all provided with rounded corner designs, making the feedback effect and feel better when the user rotates the pressing head 3.

[0037] The second ring plate 22 is provided with a plurality of guiding grooves 221 corresponding to the guiding strips 36. The guiding grooves 221 communicate with the upper end surface of the second ring plate 22. When the pressing head 3 is at the initial height, the lower end of the guiding strip 36 is higher than the upper end of the second ring plate 22. When the limiting block 35 is located in the limiting groove 211, the guiding strip 36 corresponds to one of the guiding grooves 221. When the pressing head 3 is pressed, the guiding groove 221 plays a role in guiding the up and down movement of the guiding strip 36, and only when the limiting block 35 is located in the limiting groove 211 can the guiding strip 36 move up and down along the guiding groove 221, playing a role in preventing accidental pressing.

[0038] The above are only the preferred embodiments of the present invention. The protection scope of the present invention is not limited to the above embodiments. All technical solutions falling within the idea of the present invention belong to the protection scope of the present invention. It should be noted that for those of ordinary skill in the art, without departing from the principle of the present invention, several improvements and retouches should also be regarded as the protection scope of the present invention.

Claims

1. A multi-bin split type rotary selective discharge container, characterized in that: include: A bottle body (1), the bottle body (1) comprising a first material bin (11) and at least two second material bins (12); A shoulder sleeve (2), the shoulder sleeve (2) being fixedly mounted on the upper opening of the bottle body (1), the shoulder sleeve (2) being mounted with a first pump core (4) and at least two second pump cores (5), the first pump core (4) being connected to the first material bin (11), and each of the second pump cores (5) being connected to a second material bin (12); A pressing head (3), the pressing head (3) is rotatably mounted on the first pump core (4), the pressing head (3) comprises a first channel (31), a second channel (32), a first nozzle (33), and a second nozzle (34), the first channel (31) connects the first pump core (4) and the first nozzle (33), and the second channel (32) can communicate with the second nozzle (34) and any one of the second pump cores (5).

2. According to claim 1, a multi-bin split type rotary selective discharge container, characterized in that: The pressing head (3) comprises a second connecting tube (321), the second connecting tube (321) being located at one end of the second channel (32) connected to the second pump core (5), the second connecting tube (321) being installed with a sealing member (6), the sealing member (6) being located at one end of the second connecting tube (321) facing the second pump core (5), the sealing member (6) being elastically deformable, the sealing member (6) being provided with a slit (61), the second pump core (5) being installed with a third connecting tube (51), the third connecting tube (51) being located at one end of the second pump core (5) facing the sealing member (6), the third connecting tube (51) being able to pass through the slit (61) and enter the second channel (32).

3. A multi-bin split type rotary selective discharging container according to claim 2, characterized in that: The second channel (32) comprises a slot (3211), wherein the slot (3211) is located at one end of the second channel (32) facing the third connecting pipe (51), and the third connecting pipe (51) comprises a plug (511), wherein the plug (511) can be inserted into the slot (3211), and the slot (3211) comprises a step (3212), and the upper end of the plug (511) can abut against the step (3212).

4. A multi-bin split type rotary selective discharging container according to claim 3, characterized in that: The inner diameter of the slot (3211) is greater than the outer diameter of the plug (511), and when the plug (511) is inserted into the slot (3211), the seal (6) is partially deformed and located between the outer wall of the plug (511) and the inner wall of the slot (3211).

5. The multi-bin split type rotary selective discharging container according to claim 2, characterized in that: It comprises a fixing member (7), the fixing member (7) being fixedly mounted on the second connecting pipe (321); the sealing member (6) comprises an annular edge (63), the annular edge (63) being fixed between the fixing member (7) and the second connecting pipe (321).

6. The multi-bin split type rotary selective discharging container according to claim 2, characterized in that: The sealing member (6) comprises an abutting surface (62), the abutting surface (62) being located on the end surface of the sealing member (6) facing the third connecting tube (51), the abutting surface (62) being an arc surface, and the center of the abutting surface (62) being recessed in a direction away from the third connecting tube (51).

7. The multi-bin split type rotary selective discharging container according to claim 2, characterized in that: The slit (61) is in a cross shape.

8. The multi-bin split type rotary selective discharging container according to claim 1, characterized in that: The pressing head (3) comprises at least one limiting block (35) and at least one guiding strip (36); the shoulder sleeve (2) comprises a first ring plate (21) and a second ring plate (22); the first ring plate (21) and the second ring plate (22) extend toward the pressing head (3); the first ring plate (21) is provided with a plurality of limiting grooves (211) corresponding to the limiting block (35); the second ring plate (22) is provided with a plurality of guiding grooves (221) corresponding to the guiding strips (36); the guiding grooves (221) are connected to the upper end surface of the second ring plate (22); when the limiting block (35) is located in the limiting groove (211), the guiding strip (36) corresponds to one of the guiding grooves (221).

9. The multi-bin split type rotary selective discharging container according to claim 8, characterized in that: Each of the limiting grooves (211) corresponds to a second pump core (5); the corresponding limiting grooves (211) and the second pump core (5) are located in the same radial direction of the shoulder sleeve (2); and a limiting block (35) and the second channel (32) are located in the same radial direction of the push head (3).

10. The multi-bin split type rotary selective discharging container according to claim 1, characterized in that: The bottle body (1) is provided with a plurality of partitions (13), each of the partitions (13) separating a second material bin (12) from the bottle body (1), a first material bin (11) is formed between all the partitions (13), the first material bin (11) is located at the center of the bottle body (1), and a plurality of the second material bins (12) are distributed in a ring.