Nerve cell kit
By using a sealing structure of protective blocks and sponge blocks in the nerve cell kit, combined with the design of compression springs and rectangular blocks, the problem of easy damage to the reagent tube during transfer is solved, and the stability and protective effect of the reagent tube are achieved.
Patent Information
- Application Number
- CN202421757483.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-24
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-07-24
AI Technical Summary
When the existing nerve cell kit is transferred, its protective effect on the reagent bottles inside is less than ideal, resulting in the reagent tube being easily damaged by external forces.
A nerve cell reagent kit was designed, using protective blocks and sponge blocks to seal and fix the reagent tube in the storage tank, and using structures such as compression springs and rectangular blocks to ensure that the reagent tube is not easily crushed by external forces during transfer.
It effectively prevents the reagent tube from being crushed by external forces during the transfer process, improves the stability of the reagent tube, and makes it less likely to shake in the storage tank.
Smart Images

Figure CN222876629U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a nerve cell kit, in particular to a nerve cell kit applied in the field of kits. Background Art
[0002] The main function of the test kit is to hold chemical reagents, facilitate and standardize laboratory work, and reduce the complexity and risk of operations. It can not only be used for laboratory work in the fields of medicine, biology, chemistry, environmental science, etc., but also can be checked in regular hospitals. There are many types of test kits, and the neural cell test kit is one of them.
[0003] When the existing neural cell test kit is transferred, the reagent tubes stored therein are mainly protected by the box body. This protection method is less than ideal, and it makes the reagent tubes more easily damaged by external forces, thereby causing great inconvenience to personnel when transferring the test kit. Utility Model Content
[0004] In view of the above-mentioned prior art, the technical problem to be solved by the utility model is that the existing neural cell test kit has an unsatisfactory protective effect on the reagent bottles inside when being transferred.
[0005] In order to solve the above problems, the utility model provides a neural cell test kit, including a test kit, a pull-out plate is movably inserted inside the test kit, a storage groove is provided at the side end of the pull-out plate, a fixed tube is fixedly connected to the inner top wall of the storage groove, a compression spring is provided on the outer end sliding sleeve of the fixed tube, a protective block is provided at the lower end of the fixed tube, a sponge block is fixedly connected to the side end of the protective block, a snap-in groove is provided on the inner wall of the storage groove, and a reagent tube is fitly placed inside the snap-in groove.
[0006] In the above-mentioned neural cell reagent kit, the reagent tube can be prevented from being damaged by external force and the stability of the reagent tube can be improved.
[0007] As a further improvement of the present application, in the initial state, the compression spring is in a contracted state, and the end of the sponge block away from the protective block is tightly fitted with the outer end of the reagent tube.
[0008] As a further improvement of the present application, a pair of rectangular grooves are provided at the lower end of the protective block, and a rectangular block is movably inserted into the interior of the rectangular grooves. A pair of inner side walls of the storage groove are provided with plug-in grooves movably inserted into the rectangular block.
[0009] As a further improvement of the present application, a T-shaped block is fixedly connected to the upper end of the rectangular block, and a T-shaped slot slidably connected to the T-shaped block is provided on the inner top wall of the rectangular slot.
[0010] As a further improvement of the present application, an auxiliary groove is provided at one end of the protective block away from the sponge block, and a pair of protrusions are fixedly connected to the side ends of the rectangular block.
[0011] As another improvement of the present application, a circular groove and a pair of reinforcement grooves that are interconnected with the circular groove are provided on the inner wall of the storage groove, a reinforcement block is slidably inserted inside the reinforcement groove, the upper and lower ends of the reinforcement block are coated with magnetic coating one, and the inner top wall and the inner bottom wall of the reinforcement groove are coated with magnetic coating two.
[0012] As another improved supplement of the present application, the upper and lower ends of the reinforcement block are fixedly connected with sliders, and the inner top wall and the inner bottom wall of the reinforcement groove are provided with sliding grooves slidably connected to the sliders.
[0013] In summary, the test kit utilizes a protective block and a sponge block to seal and fix the reagent tube in the storage groove, thereby protecting the reagent tube, making it difficult for the reagent tube to be crushed by external forces. At the same time, it can also improve the stability of the reagent tube in the storage groove, making it difficult for it to shake in the storage groove. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 This is a schematic diagram of the overall structure of the first and second implementation modes of the present application;
[0015] Figure 2 This is a schematic diagram of the pull-out plate structure of the first embodiment of the present application;
[0016] Figure 3 This is a schematic diagram of the storage tank structure of the first embodiment of the present application;
[0017] Figure 4 Schematic diagram of the protective block and circular groove structure of the first embodiment and the second embodiment of the present application;
[0018] Figure 5 For this application Figure 4 A partial enlarged schematic diagram in the middle;
[0019] Figure 6 This is a schematic diagram of the compression spring structure of the first embodiment of the present application;
[0020] Figure 7 This is a schematic diagram of the movement of the rectangular block and the protective block in the first embodiment of the present application.
[0021] Description of the numbers in the figure:
[0022] 1. Reagent box; 2. Pull-out plate; 3. Storage slot; 4. Fixed tube; 5. Compression spring; 6. Protective block; 7. Sponge block; 8. Reagent tube; 9. Rectangular slot; 10. Rectangular block; 11. Plug-in slot; 12. T-shaped block; 13. Auxiliary slot; 14. Bump; 15. Round slot; 16. Reinforcement slot; 17. Reinforcement block; 18. Magnetic coating one; 19. Magnetic coating two; 20. Slider; 21. Slide slot. DETAILED DESCRIPTION
[0023] Two implementation modes of the present application are described in detail below with reference to the accompanying drawings.
[0024] The first implementation method:
[0025] Figure 1-4 and Figure 6-7 A neural cell test kit is shown, comprising a test kit 1, wherein a pull-out plate 2 is movably inserted inside the test kit 1, a storage groove 3 is provided at the side end of the pull-out plate 2, a fixed tube 4 is fixedly connected to the inner top wall of the storage groove 3, a compression spring 5 is slidably sleeved on the outer end of the fixed tube 4, a protective block 6 is sleeved on the lower end of the fixed tube 4, a sponge block 7 is fixedly connected to the side end of the protective block 6, a clamping groove is provided on the inner wall of the storage groove 3, and a reagent tube 8 is fitly placed inside the clamping groove;
[0026] In the initial state, the compression spring 5 is in a contracted state, and the end of the sponge block 7 away from the protective block 6 is tightly fitted with the outer end of the reagent tube 8. A pair of rectangular grooves 9 are provided at the lower end of the protective block 6, and a rectangular block 10 is movably inserted inside the rectangular groove 9. A pair of inner side walls of the storage groove 3 are provided with plug-in grooves 11 movably inserted with the rectangular block 10. A T-shaped block 12 is fixedly connected to the upper end of the rectangular block 10. The T-shaped block 12 can be used to limit the rectangular block 10 to prevent the rectangular block 10 from separating from the rectangular groove 9. A T-shaped groove slidably connected to the T-shaped block 12 is provided on the inner top wall of the rectangular groove 9. An auxiliary groove 13 is provided at the end of the protective block 6 away from the sponge block 7. A pair of protrusions 14 are fixedly connected to the side ends of the rectangular block 10. The protrusions 14 are used to facilitate personnel to manually apply force to the rectangular block 10.
[0027] When transferring the reagent kit 1, since the compression spring 5 is in a contracted state, the compression spring 5 will push the protection block 6 under the action of the elastic force of the compression spring 5, so that the protection block 6 drives the sponge block 7 to move downward, thereby making the lower ends of the protection block 6 and the sponge block 7 closely contact with the inner bottom wall of the storage groove 3, and at the same time, the end of the sponge block 7 away from the protection block 6 is closely fitted with the reagent tube 8, and the protection block 6 and the sponge block 7 are used to seal and fix the reagent tube 8 in the storage groove 3, so as to protect the reagent tube 8, thereby making it difficult for the reagent tube 8 to be crushed by external force, and at the same time, it can also improve the stability of the reagent tube 8 in the storage groove 3, making it difficult for it to shake in the storage groove 3;
[0028] When taking out the reagent tube 8 for use, place the finger in the auxiliary groove 13 and apply force to the protective block 6 to move it upward. When moving upward, its upper end will continue to squeeze the compression spring 5. When one end of the rectangular block 10 is aligned with the insertion groove 11, push the rectangular block 10 and insert one end of the rectangular block 10 into the insertion groove 11 (combined with Figure 7 As shown), the rectangular block 10 is used to limit the protective block 6 to prevent it from moving downward and causing obstacles when personnel take out the reagent tube 8. Finally, the reagent tube 8 can be taken out of the storage tank 3 for use.
[0029] The second implementation method:
[0030] Based on the first embodiment, this embodiment newly adds structures such as a solid block 17, and the rest of the parts remain the same as the first embodiment.
[0031] Figure 4-5 It is shown that a circular groove 15 and a pair of reinforcement grooves 16 that are interconnected with the circular groove 15 are provided on the inner wall of the storage groove 3, a reinforcement block 17 is slidably inserted inside the reinforcement groove 16, the upper and lower ends of the reinforcement block 17 are coated with a magnetic coating 18, the inner top wall and the inner bottom wall of the reinforcement groove 16 are coated with a magnetic coating 2 19, the upper and lower ends of the reinforcement block 17 are fixedly connected with sliders 20, the sliders 20 can not only improve the stability of the reinforcement block 17 when moving, but also prevent the slider 20 from separating from the slide groove 21, the inner top wall and the inner bottom wall of the reinforcement groove 16 are provided with slide grooves 21 that are slidably connected to the slider 20.
[0032] After taking the reagent tube 8 out of the card slot, move the pull-out plate 2 from a vertical state to a horizontal state and place it on the operating platform. Then, insert the bottom end of the reagent tube 8 into the reinforcement slot 16, and push a pair of reinforcement blocks 17 so that the pair of reinforcement blocks 17 squeeze the reagent tube 8 at the same time, thereby fixing the reagent tube 8 in the reinforcement slot 16, making it convenient for personnel to place the reagent tube 8 during operation, so that the reagent tube 8 is not easy to overturn. When the reinforcement block 17 applies pressure to the reagent tube 8, the magnetic coating 1 18 will be adsorbed together with the magnetic coating 2 19, thereby improving the stability of the reinforcement block 17 in the reinforcement slot 16.
[0033] In view of current practical needs, the protection scope of the above-mentioned implementation mode adopted in this application is not limited to this. Various changes made within the knowledge scope of technical personnel in this field without departing from the concept of this application still fall within the protection scope of this utility model.
Claims
1. A neural cell kit, comprising a kit (1), characterized in that: The reagent box (1) is provided with a pull-out plate (2) movably inserted inside, a storage groove (3) is provided at the side end of the pull-out plate (2), a fixed tube (4) is fixedly connected to the inner top wall of the storage groove (3), a compression spring (5) is slidably sleeved on the outer end of the fixed tube (4), a protective block (6) is sleeved on the lower end of the fixed tube (4), a sponge block (7) is fixedly connected to the side end of the protective block (6), a snap-in groove is provided on the inner wall of the storage groove (3), and a reagent tube (8) is fitly placed inside the snap-in groove.
2. A neural cell kit according to claim 1, characterized in that: In the initial state, the compression spring (5) is in a contracted state, and the end of the sponge block (7) away from the protective block (6) is tightly fitted to the outer end of the reagent tube (8).
3. A neural cell kit according to claim 2, characterized in that: A pair of rectangular grooves (9) are provided at the lower end of the protection block (6), a rectangular block (10) is movably inserted into the interior of the rectangular groove (9), and a pair of inner side walls of the storage groove (3) are provided with plug-in grooves (11) movably inserted into the rectangular block (10).
4. A neural cell kit according to claim 3, characterized in that: The upper end of the rectangular block (10) is fixedly connected to a T-shaped block (12), and the inner top wall of the rectangular groove (9) is provided with a T-shaped groove which is slidably connected to the T-shaped block (12).
5. A neural cell kit according to claim 4, characterized in that: An auxiliary groove (13) is provided at one end of the protection block (6) away from the sponge block (7), and a pair of protrusions (14) are fixedly connected to the side ends of the rectangular block (10).
6. A neural cell kit according to claim 5, characterized in that: The inner wall of the storage groove (3) is provided with a circular groove (15) and a pair of reinforcing grooves (16) which are interpenetrating with the circular groove (15); a reinforcing block (17) is slidably inserted inside the reinforcing groove (16); the upper and lower ends of the reinforcing block (17) are coated with a first magnetic coating (18); and the inner top wall and the inner bottom wall of the reinforcing groove (16) are coated with a second magnetic coating (19).
7. A neural cell kit according to claim 6, characterized in that: The upper and lower ends of the reinforcement block (17) are fixedly connected to a sliding block (20), and the inner top wall and the inner bottom wall of the reinforcement groove (16) are provided with a sliding groove (21) slidably connected to the sliding block (20).