Experimental glass container placing cabinet

By designing a rotatable support plate in the experimental glass container placing cabinet, the problem of inconvenience of container occlusion and removal is solved, and the convenient access and storage of containers is achieved and the space efficiency of the storage cabinet is improved.

CN223027378UActive Publication Date: 2025-06-27CHENGDU SAIJIE PHARM TECH CO LTD
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Patent Information

Application Number
CN202421786267.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-26
Publication Date
2025-06-27
Estimated Expiration
2034-07-26

AI Technical Summary

Technical Problem

When there are many containers in the existing experimental glass container placing cabinet, the inner container is easily blocked by the outer container, making it inconvenient to pick it up.

Method used

An experimental glass container placing cabinet is designed, which contains a rotatable support plate. By rotating the support plate, the inner container can be rotated to the outside, thereby improving the pick-up and placement efficiency.

Benefits of technology

It realizes convenient access and placement of experimental glass containers, improves the efficiency of experimental operation, and the splicing design of support rods and rotating rings is easy to disassemble, reducing the space for transportation and storage.

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Abstract

The utility model provides an experimental glass container placement cabinet, which is characterized by comprising a circular shell, a plurality of supporting rings, a plurality of supporting rods, a plurality of supporting rods, a plurality of supporting rods, a plurality of supporting rods, a plurality of supporting rods and a plurality of supporting rods, the opening is formed in one side of the circular shell, and the cabinet door is hinged to the opening; the circular supporting discs are rotationally connected to the supporting rods through the rotating rings respectively, the supporting rods are coaxially connected into the circular shell, a first preset distance is formed between every two adjacent supporting discs, a second preset distance is formed between the topmost supporting disc and the top of the circular shell, and the supporting discs are located on the supporting rings respectively. After the experiment container bottles are placed on the supporting pieces, the supporting discs can be rotated, the container bottles placed on the inner side of the containing cabinet are rotated to the outer side, and the taking and placing efficiency of the experiment glass containers is improved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of equipment for chemical experiments, and particularly relates to a storage cabinet for experimental glass containers. Background Art

[0002] Experimental glass containers such as beakers, flasks, and conical flasks need to be frequently used in laboratories, and after use, they need to be cleaned and then stored in a storage cabinet. Currently, the storage cabinet is usually square, with multiple support plates inside, and multiple layers of experimental containers can be placed. When there are many experimental glass containers placed in the storage cabinet, the experimental glass containers inside the storage cabinet will be blocked by those outside. If it is necessary to use the experimental glass containers inside the storage cabinet, the outside experimental glass containers must be transferred out of the storage cabinet first, which is not convenient for taking and placing the container bottles. Therefore, it is necessary to make improvements. Content of the Utility Model

[0003] To solve the above-mentioned defects of the prior art, this application provides a storage cabinet for experimental glass containers. After the experimental container bottles are placed on the support pieces, the support disk can be rotated to rotate the container bottles inside the storage cabinet to the outside, improving the efficiency of taking and placing the experimental glass containers.

[0004] To achieve the above purpose, the utility model adopts the following technologies:

[0005] A storage cabinet for experimental glass containers, characterized by comprising:

[0006] A circular shell, with an opening on one side, and a cabinet door is hinged at the opening. A plurality of support rings are arranged in an axial array inside the circular shell;

[0007] A plurality of circular support disks are respectively rotationally connected to a support rod through a plurality of rotating rings. The support rod is coaxially connected inside the circular shell. There is a first preset distance between adjacent support disks, and there is a second preset distance between the topmost support disk and the top of the circular shell. The plurality of support disks are respectively located on the plurality of support rings.

[0008] Further, a plurality of groups of through holes are provided on the support disk.

[0009] Further, the sizes of each group of through holes on the support disk are different.

[0010] Further, a push rod is vertically provided on the outside of the top of the support disk.

[0011] Further, the support rod is formed by splicing a plurality of connecting rods end to end, and a plurality of rotating rings are respectively rotatably arranged between adjacent connecting rods.

[0012] Further, threaded holes are provided at the tops of the connecting rods below the topmost connecting rod, and screws matching the threaded holes are provided at the bottoms of the connecting rods above the bottommost connecting rod. The multiple screws are respectively connected into the multiple threaded holes, and multiple rotating rings are sleeved outside the multiple screws.

[0013] Further, the rotating disc and the rotating ring are connected by screws.

[0014] The beneficial effects of the present utility model are as follows:

[0015] 1. After the practical container bottle is placed on the support disc, the support disc can be rotated to rotate the container bottle placed inside the storage cabinet to the outside, improving the taking and placing efficiency of the experimental glass containers.

[0016] 2. The support rod and the rotating ring are connected in a splicing form, which is convenient for disassembling the storage cabinet, and thus the storage cabinet occupies less space during transportation and storage. Description of the Drawings

[0017] Figure 1 It is a three-dimensional view of the overall structure of the device in the embodiment of the present application.

[0018] Figure 2 It is a three-dimensional view of a partial structure of the device in the embodiment of the present application.

[0019] Figure 3 It is Figure 2 the enlarged view of part A in

[0020] Figure 4 It is an exploded view of a partial structure of the device in the embodiment of the present application.

[0021] Figure 5 It is Figure 4 the enlarged view of part B in

[0022] Figure 6 It is an exploded view of another partial structure of the device in the embodiment of the present application.

[0023] Reference numerals: circular housing - 1, support disc - 2, support rod - 3, push rod - 4, arc-shaped cabinet door - 101, support ring - 102, rotating ring - 201, screw - 202, through hole - 203, threaded hole - 301, screw - 302, connecting rod - 303. Detailed Embodiments

[0024] To make the objectives, technical solutions, and advantages of the embodiments of the present utility model clearer, the following will describe the embodiments of the present utility model in detail with reference to the drawings. However, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments.

[0025] The embodiment of the present application provides an experimental glass container storage cabinet, asFigures 1-6 As shown, it includes a circular shell 1, a support rod 3, a support disk 2, etc.

[0026] Specifically, an opening is provided on one side of the circular shell 1, and an arc-shaped cabinet door 101 is hinged at the opening. A plurality of support rings 102 are arranged in an axial array inside the circular shell 1; there are a plurality of circular support disks 2, which are respectively rotatably connected to the support rod 3 through a plurality of rotating rings 201. The support rod 3 is coaxially connected inside the circular shell 1. There is a first preset distance between adjacent support disks 2, and there is a second preset distance between the topmost support disk 2 and the top of the circular shell 1. The plurality of support disks 2 are respectively located on the plurality of support rings 102. Specifically, both the first preset distance and the second preset distance are set to be greater than the height of the experimental glass container.

[0027] During actual use, after placing the experimental glass container in the storage cabinet, if it is necessary to take out the experimental glass container inside the storage cabinet subsequently, rotating the support disk 2 can turn out the experimental glass container inside the storage cabinet, without the need to transfer the other experimental glass containers, making it more convenient to take and place the experimental containers.

[0028] Preferably, refer to Figure 1 , Figure 6 , a plurality of groups of through holes 203 are provided on the support disk 2. The washed experimental glass container can be placed upside down on the support disk 2, and the remaining water in the experimental glass container can drain out along the through holes 203. And when it is necessary to place an experimental glass container such as a flask with a circular bottom and a cylindrical upper part, this kind of container can be inserted upside down into the through holes 203 on the support disk 2 to prevent it from tipping over. Specifically, the size of each group of through holes 203 on the support disk 2 is different, and can be specifically set to match the circular structure size of the upper part of flasks of different sizes, so as to be used for placing flasks of different sizes.

[0029] Preferably, the support rod 3 is formed by splicing a plurality of connecting rods 303 end to end, and a plurality of rotating rings 201 are respectively rotatably arranged between adjacent connecting rods 303. Through this setting, it is convenient to disassemble the storage cabinet, and thus the storage cabinet occupies less space during transportation and storage. Specifically, refer to Figures 4-6 , in one embodiment, threaded holes 301 are provided at the tops of the connecting rods 303 below the topmost connecting rod 303, and screw rods 302 matching the threaded holes 301 are provided at the bottoms of the connecting rods 303 above the bottommost connecting rod 303. A plurality of screw rods 302 are respectively connected into a plurality of threaded holes 301, and a plurality of rotating rings 201 are sleeved outside the plurality of screw rods 302 to realize the splicing connection of the connecting rods 303 and realize the rotational connection of the rotating rings 201 between adjacent connecting rods 303.

[0030] Specifically, refer to Figure 1, on the outer sides of the top of the support plate 2, a push rod 4 is vertically provided, which can be used to assist in pushing the support plate 2 to rotate. More specifically, refer to Figure 3 , the rotating disk and the rotating ring 201 are connected by screws 202, which is convenient for disassembling and cleaning the rotating disk.

[0031] The above are only some of the embodiments listed in this application and are not used to limit this application.

Claims

1. A laboratory glass container storage cabinet, characterized in that: include: A circular shell (1) is provided with an opening on one side, an arc-shaped cabinet door (101) is hingedly connected to the opening, and a plurality of support rings (102) are arranged in an axial array in the circular shell (1); A plurality of circular support plates (2) are rotatably connected to a support rod (3) via a plurality of rotating rings (201); the support rod (3) is coaxially connected to the inside of a circular shell (1); there is a first preset distance between adjacent support plates (2); there is a second preset distance between the topmost support plate (2) and the top of the circular shell (1); and the plurality of support plates (2) are respectively located on a plurality of support rings (102).

2. The experimental glass container storage cabinet according to claim 1, characterized in that: The support rod (3) is formed by splicing a plurality of connecting rods (303) end to end, and the plurality of rotating rings (201) are rotatably disposed between adjacent connecting rods (303).

3. The experimental glass container storage cabinet according to claim 2, characterized in that: The top of the connecting rod (303) below the topmost connecting rod (303) is provided with a threaded hole (301), and the bottom of the connecting rod (303) above the bottommost connecting rod (303) is provided with a screw rod (302) matching the threaded hole (301), a plurality of screw rods (302) are respectively connected to the plurality of threaded holes (301), and a plurality of rotating rings (201) are sleeved outside the plurality of screw rods (302).

4. The experimental glass container storage cabinet according to claim 1, characterized in that: The rotating disk is connected to the rotating ring (201) via screws (202).

5. The experimental glass container storage cabinet according to claim 1, characterized in that: The support plate (2) is provided with a plurality of groups of through holes (203).

6. The experimental glass container storage cabinet according to claim 5, characterized in that: The size of each group of through holes (203) on the support plate (2) is different.

7. The experimental glass container storage cabinet according to claim 1, characterized in that: A push rod (4) is vertically provided on the outer side of the top of the support plate (2).