Degradable antibacterial ultrasonic coupling agent multi-chamber storage device

By designing a multi-chamber storage device, and using partition plates and push-pull components, the components of a biodegradable antibacterial ultrasonic coupling agent are stored in an isolated manner, which solves the problem of inconvenient storage in the existing technology and achieves effective isolation and convenient mixing of the components.

CN224589648UActive Publication Date: 2026-08-04CHAOLU DASHENG (NANTONG) LIFE SCI CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHAOLU DASHENG (NANTONG) LIFE SCI CO LTD
Filing Date
2026-05-07
Publication Date
2026-08-04

AI Technical Summary

Technical Problem

Existing storage devices have a simple structure, which is not conducive to the separate storage of multiple components of biodegradable antibacterial ultrasonic coupling agents, and they are inconvenient to use.

Method used

A biodegradable antibacterial ultrasonic coupling agent multi-chamber storage device was designed. The storage tank is divided into two storage chambers by a partition plate, and the components are separated and mixed by a push-pull assembly and a movable partition. The storage effect is improved by using opaque materials.

Benefits of technology

It achieves component isolation storage of biodegradable antibacterial ultrasonic coupling agent, extends the lifespan of active ingredients, facilitates mixing during use, and improves the convenience of use and the airtightness of storage.

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Abstract

The utility model discloses a degradable antibacterial ultrasonic coupling agent multicavity storage equipment relates to coupling agent storage technical field, and it is including: storage bucket: the bottom of storage bucket is provided with two symmetrical distribution's discharge end; The inside of the top of storage bucket is provided with the cover, and the cover is used at least for the sealing of storage bucket upper part; The top of storage bucket is provided with the push -and -pull subassembly that is penetrated to the inside of storage bucket, and the inside of storage bucket is slidably provided with piston plate, and one end of push -and -pull subassembly is connected with piston plate, and push -and -pull subassembly is used at least for driving piston plate to slide up and down in the inside of storage bucket; The top of cover is provided with a plurality of locking pieces. Adopt the cell partition board, can divide storage bucket into two storage cavities, utilize movable partition board to carry out secondary separation to two storage cavities simultaneously, and store coupling agent and additive respectively in one storage cavity, and when using, draw movable partition board and make the substance mix.
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Description

Technical Field

[0001] This utility model relates to the field of coupling agent storage technology, specifically a biodegradable antibacterial ultrasonic coupling agent multi-chamber storage device. Background Technology

[0002] Coupling agent characteristics and storage requirements: Composition: Mostly water-based gels containing preservatives (such as carbomer and glycerin), requiring protection from moisture, light, and high temperatures. Stability: Long-term storage must avoid component separation, oxidation, or microbial growth. Typical storage conditions: Temperature 10-30℃, avoid freezing (may cause gel structure damage). Light protection: Ultraviolet light may accelerate component degradation; opaque containers are recommended. Sealing: Prevent moisture evaporation or contamination. Biodegradable antibacterial ultrasonic coupling agents possess biodegradable and antibacterial functional characteristics.

[0003] The purpose of storing biodegradable antibacterial ultrasound coupling agents separately is to isolate components: different chambers can store complementary components (such as base gel + additives), which are mixed during use to extend the lifespan of the active ingredients. It also allows for dosage-based use: single-use applications do not contaminate the remaining portion (such as coupling agents specifically for medical ultrasound probes).

[0004] Existing storage devices are simple in structure, which is not conducive to the mixing of multiple components of the coupling agent. Furthermore, the use and storage of the coupling agent are inconvenient. Therefore, we propose a biodegradable, antibacterial, multi-chamber storage device for ultrasonic coupling agents. Utility Model Content

[0005] To address the shortcomings of existing technologies, this invention provides a biodegradable antibacterial ultrasonic coupling agent multi-chamber storage device, which solves the problems mentioned in the background art.

[0006] To achieve the above objectives, this utility model is implemented through the following technical solution: a biodegradable antibacterial ultrasonic coupling agent multi-chamber storage device, comprising: a storage tank: the bottom of the storage tank is provided with two symmetrically distributed discharge ends;

[0007] The storage tank is provided with a cap inside the top, which is used to seal at least the upper part of the storage tank;

[0008] A push-pull assembly is provided above the storage tank and extends into the interior of the storage tank. A piston plate is slidably disposed inside the storage tank. One end of the push-pull assembly is connected to the piston plate. The push-pull assembly is at least used to drive the piston plate to slide up and down inside the storage tank.

[0009] The top of the cover is provided with several locking elements, and the inside of the storage tank is provided with several movable partitions that penetrate the cover and the piston plate. The locking elements are used at least for positioning the movable partitions.

[0010] A partition plate is provided in the middle of the storage tank, which is used to divide the storage tank into at least two storage cavities.

[0011] Preferably, several card slots are fixedly provided on both outer walls of the storage tank, and the push-pull assembly is fixed to both sides of the storage tank through the card slots.

[0012] Preferably, the discharge end includes a nipple fixed to the outer wall of the bottom of the storage tank, and a double-ring sealing plug is inserted into the bottom end of the nipple.

[0013] Preferably, an insert is fixedly provided at the bottom of the cap, and a sealing ring is provided between the insert and the storage tank;

[0014] The top two sides of the cover are fixedly provided with support rods, and the top of the support rods is provided with a slot. The top two sides of the cover are provided with through holes, and the top of the cover is provided with an insertion hole.

[0015] Preferably, the push-pull assembly is composed of a long rod, a rotating joint, a connecting rod, a short rod, and a sleeve;

[0016] The long rod, short rod, and connecting rod are connected by a rotating joint, and the sleeve is located at the rotating joint and slides on the long rod and short rod.

[0017] Preferably, the locking element includes a fixing block fixed to the outer wall of the top of the cover, and a round rod inserted into the inside of the fixing block and extending into the movable partition. One end of the round rod is fixedly connected to a square block whose bottom contacts the outer wall of the top of the cover.

[0018] Preferably, the piston plate has a semi-circular structure, and a slide is provided on the outer wall of the piston plate. The movable partition is slidably inserted into the inside of the piston plate, and the movable partition further divides the cavity separated by the partition plate.

[0019] Preferably, the bottom end of the movable partition is fitted with a sleeve, the sleeve being interference-fitted with the movable partition, and the inner wall of the storage tank is provided with a plurality of guide seats for inserting the movable partition.

[0020] This invention provides a multi-chamber storage device for a biodegradable and antibacterial ultrasonic coupling agent, which has the following beneficial effects:

[0021] 1. The partition plate used can divide the storage tank into two storage cavities. At the same time, the movable partition plate further divides the two storage cavities. The coupling agent and additives are stored in one storage cavity respectively. When in use, the movable partition plate is removed to allow the substances to mix.

[0022] 2. The push-pull assembly allows the piston plate to slide within the two cavities inside the storage tank, enabling the discharge of the coupling agent. Simultaneously, the push-pull assembly can be folded and unfolded, saving space and facilitating the storage of the coupling agent. Attached Figure Description

[0023] Figure 1 This utility model discloses a three-dimensional structure of a biodegradable antibacterial ultrasonic coupling agent multi-chamber storage device. Figure 1 ;

[0024] Figure 2 This utility model discloses a three-dimensional structure of a biodegradable antibacterial ultrasonic coupling agent multi-chamber storage device. Figure 2 ;

[0025] Figure 3 This is an exploded view of the structure of a multi-chamber storage device for a biodegradable antibacterial ultrasonic coupling agent according to this utility model;

[0026] Figure 4 This is an enlarged view of the socket structure of a multi-chamber storage device for a biodegradable antibacterial ultrasonic coupling agent according to this utility model;

[0027] Figure 5 This is a schematic diagram of the partition plate structure of a multi-chamber storage device for a biodegradable antibacterial ultrasonic coupling agent according to the present invention;

[0028] Figure 6 This is a cross-sectional view of the structure of a multi-chamber storage device for a biodegradable antibacterial ultrasonic coupling agent according to the present invention;

[0029] Figure 7 This is a schematic diagram of the locking mechanism of a multi-chamber storage device for a biodegradable antibacterial ultrasonic coupling agent according to this utility model.

[0030] 1. Storage tank; 11. Card seat; 2. Discharge end; 21. Nipple; 22. Sealing plug; 3. Cover; 31. Embedded body; 32. Sealing ring; 33. Support rod; 34. Card slot; 35. Through hole; 36. Insertion hole; 4. Push-pull assembly; 41. Long rod; 42. Rotating joint; 43. Connecting rod; 44. Short rod; 45. Bundle; 5. Locking element; 51. Fixing block; 52. Round rod; 53. Square block; 6. Piston plate; 61. Slide rail; 7. Movable partition; 71. Insertion sleeve; 72. Guide seat; 8. Partition plate. Detailed Implementation

[0031] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.

[0032] like Figures 1-5As shown, the present invention provides a technical solution: a multi-chamber storage device for a biodegradable antibacterial ultrasonic coupling agent.

[0033] In this embodiment, it includes: a storage tank 1, which is made of an opaque material, which improves the light-blocking properties of the storage tank and is beneficial for the storage of the coupling agent;

[0034] Specifically, several card slots 11 are fixedly installed on both outer walls of the storage tank 1. The push-pull assembly 4 is fixed to both sides of the storage tank 1 through the card slots 11. When the push-pull assembly 4 is folded, the long rod 41 bends along the rotating joint 42 and then engages with the inside of the card slot 11 for fixation.

[0035] In this embodiment, the bottom of the storage tank 1 is provided with two symmetrically distributed discharge ends 2;

[0036] Specifically, the discharge end 2 includes a nipple 21 fixed on the bottom outer wall of the storage tank 1, and a double-ring sealing plug 22 is inserted into the bottom end of the nipple 21. The coupling agent inside the storage tank 1 is discharged outward through the nipple 21, and the sealing plug 22 seals the nipple 21. The double-ring structure design improves the sealing performance of the sealing plug 22 on the nipple 21 and the storage tank 1.

[0037] In this embodiment, a cap 3 is provided inside the top of the storage tank 1, and the cap 3 is used to seal the upper part of the storage tank 1 at least.

[0038] Specifically, an insert 31 is fixedly provided at the bottom of the cap 3, and a sealing ring 32 is provided between the insert 31 and the storage tank 1. The insert 31 is inserted into the opening at the top of the storage tank 1, and the sealing ring 32 is used to improve the sealing between the cap 3 and the storage tank 1.

[0039] Specifically, support rods 33 are fixedly installed on both sides of the top of the cover 3, and the top of the support rods 33 is provided with a slot 34. After the push-pull assembly 4 is bent, the connecting rod 43 is engaged in the inside of the slot 34. When the connecting rod 43 is accidentally touched or pressed, the support rod 33 plays a limiting role on the connecting rod 43, so that the short rod 44 cannot drive the piston plate 6 to move downward.

[0040] The top two sides of the cover 3 are provided with through holes 35, and the short rod 44 is slidably inserted into the inside of the through hole 35, so that the short rod 44 slides inside the through hole 35, driving the piston plate 6 to move down. The cover 3 is provided with an insertion hole 36 on the top, and the movable partition 7 is inserted into the inside of the insertion hole 36.

[0041] In this embodiment, a push-pull assembly 4 is provided above the storage tank 1, extending into the interior of the storage tank 1. The push-pull assembly 4 is at least used to drive the piston plate 6 to slide up and down inside the storage tank 1.

[0042] Specifically, the push-pull assembly 4 is composed of a long rod 41, a rotating joint 42, a connecting rod 43, a short rod 44, and a sleeve 45.

[0043] Specifically, the long rod 41, the short rod 44 and the connecting rod 43 are connected by a rotating joint 42, and the sleeve 45 is located at the rotating joint 42 and slides on the long rod 41 and the short rod 44.

[0044] When operating the piston plate 6 using the push-pull assembly 4, the operator can first remove the long rod 41 from the holder 11, and then rotate the joint 42 to make the long rod 41, short rod 44 and connecting rod 43 vertical. Then, by using the sliding of the sleeve 45, the rotation joint 42 at the long rod 41 and connecting rod 43, short rod 44 and connecting rod 43 is limited, so that the long rod 41, short rod 44 and connecting rod 43 are vertical, and the piston plate 6 can be pressed by the push-pull assembly 4.

[0045] In this embodiment, a piston plate 6 is slidably disposed inside the storage tank 1, and one end of the push-pull assembly 4 is connected to the piston plate 6;

[0046] Specifically, the piston plate 6 has a semi-circular structure, and a slide 61 is provided on the outer wall of the piston plate 6. Two piston plates 6 are provided inside a storage tank 1 to realize the separate use of two storage cavities, which can store coupling agents with different properties, such as antibacterial coupling agents and non-antibacterial coupling agents.

[0047] In this embodiment, the top of the cover 3 is provided with a plurality of locking members 5, which are used at least for positioning the movable partition 7.

[0048] Specifically, the locking component 5 includes a fixing block 51 fixed to the top outer wall of the cover 3. A round rod 52 is inserted into the inside of the fixing block 51 and extends into the movable partition 7. One end of the round rod 52 is fixedly connected to a square block 53 whose bottom contacts the top outer wall of the cover 3. By inserting the round rod 52 into the fixing block 51 and the movable partition 7, and by keeping the bottom of the square block 53 close to the upper surface of the cover 3, the movable partition 7 is limited, thus ensuring the stability of the movable partition 7.

[0049] In this embodiment, several movable partitions 7 that penetrate the sealing cap 3 and piston plate 6 are inserted into the inside of the storage tank 1;

[0050] Specifically, the movable partition 7 is slidably inserted into the inside of the piston plate 6, and the movable partition 7 further divides the cavity separated by the partition plate 8;

[0051] Specifically, a sleeve 71 is fitted at the bottom of the movable partition 7, and the sleeve 71 is interference-fitted with the movable partition 7. Several guide seats 72 for inserting the movable partition 7 are provided on the inner wall of the storage tank 1.

[0052] When using the coupling agent, the operator can remove the movable partition 7 from the top of the cover 3, first release the locking part 5, and then remove the two movable partitions 7 inside the two storage cavities respectively. At this time, the insert 71 at the bottom of the movable partition 7 will be stuck at the piston plate 6. After the operator pulls out the movable partition 7 with appropriate force, the insert 71 separates from the movable partition 7 and makes the insert 71 snap into the inside of the slide 61, so that the piston plate 6 forms an integral structure. At this time, the coupling agent or additive stored in the sub-cavities inside one storage cavity can be mixed together. The operator can use the push-pull component 4 to drive the piston plate 6 to slide downward inside the storage cavity, and discharge the material inside the storage cavity from the discharge end 2, which is convenient for people to use the coupling agent.

[0053] In this embodiment, a partition plate 8 is provided in the middle of the storage tank 1. The partition plate 8 is used to divide the storage tank 1 into two storage cavities. The partition plate 8 is used to divide the storage tank 1 into two cavities with fixed volumes. The movable partition plate 7 can be used to further divide the two cavities with fixed volumes.

Claims

1. A multi-chamber storage device for a biodegradable antibacterial ultrasonic coupling agent, comprising: Storage tank (1): characterized in that: the bottom of the storage tank (1) is provided with two symmetrically distributed discharge ends (2); The storage tank (1) is provided with a cap (3) inside the top, and the cap (3) is used to seal the upper part of the storage tank (1); A push-pull assembly (4) is provided above the storage tank (1) and extends into the storage tank (1). A piston plate (6) is slidably provided inside the storage tank (1). One end of the push-pull assembly (4) is connected to the piston plate (6). The push-pull assembly (4) is at least used to drive the piston plate (6) to slide up and down inside the storage tank (1). The top of the cover (3) is provided with several locking parts (5), and the inside of the storage tank (1) is provided with several movable partitions (7) that penetrate the cover (3) and the piston plate (6). The locking parts (5) are used at least for positioning the movable partitions (7). A partition plate (8) is provided in the middle of the storage tank (1), and the partition plate (8) is used to divide the storage tank (1) into two storage cavities.

2. The biodegradable antibacterial ultrasonic coupling agent multi-chamber storage device according to claim 1, characterized in that: Several card holders (11) are fixedly installed on both outer walls of the storage tank (1), and the push-pull assembly (4) is fixed to both sides of the storage tank (1) through the card holders (11).

3. The biodegradable antibacterial ultrasonic coupling agent multi-chamber storage device according to claim 1, characterized in that: The discharge end (2) includes a nipple (21) fixed on the bottom outer wall of the storage tank (1), and a double-ring sealing plug (22) is inserted into the bottom end of the nipple (21).

4. The biodegradable antibacterial ultrasonic coupling agent multi-chamber storage device according to claim 1, characterized in that: An insert (31) is fixedly provided at the bottom of the cover (3), and a sealing ring (32) is provided between the insert (31) and the storage tank (1). The top two sides of the cover (3) are fixedly provided with support rods (33), and the top of the support rods (33) is provided with a slot (34). The top two sides of the cover (3) are provided with through holes (35), and the top of the cover (3) is provided with an insertion hole (36).

5. The biodegradable antibacterial ultrasonic coupling agent multi-chamber storage device according to claim 1, characterized in that: The push-pull assembly (4) is composed of a long rod (41), a rotating joint (42), a connecting rod (43), a short rod (44), and a sleeve (45); The long rod (41), short rod (44) and connecting rod (43) are connected by a rotating joint (42), and the sleeve (45) is located at the rotating joint (42) and slides on the long rod (41) and short rod (44).

6. The biodegradable antibacterial ultrasonic coupling agent multi-chamber storage device according to claim 1, characterized in that: The locking component (5) includes a fixing block (51) fixed on the top outer wall of the cover (3). A round rod (52) is inserted into the inside of the fixing block (51) and extends into the movable partition (7). One end of the round rod (52) is fixedly connected to a square block (53) whose bottom contacts the top outer wall of the cover (3).

7. The biodegradable antibacterial ultrasonic coupling agent multi-chamber storage device according to claim 1, characterized in that: The piston plate (6) has a semi-circular structure, and a slide (61) is provided on the outer wall of the piston plate (6). The movable partition (7) is slidably inserted into the interior of the piston plate (6), and the movable partition (7) further divides the cavity separated by the partition plate (8).

8. The biodegradable antibacterial ultrasonic coupling agent multi-chamber storage device according to claim 1, characterized in that: The bottom end of the movable partition (7) is fitted with a sleeve (71), and the sleeve (71) is press-fitted to the movable partition (7). The inner wall of the storage tank (1) is provided with a number of guide seats (72) for inserting the movable partition (7).