Novel experiment table convenient for experiment operation
By optimizing the structure of the experimental platform and adopting an adjustable partition and a dual-axis linkage cover design, the problem of inconvenient storage of equipment in traditional experimental platforms has been solved, enabling classified storage and stable storage of equipment, and improving the convenience and stability of experimental operations.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- QINGDAO XINZHUOYUAN LAB EQUIP CO LTD
- Filing Date
- 2025-06-25
- Publication Date
- 2026-04-17
AI Technical Summary
Traditional laboratory benches have limited and non-adjustable storage space and lack reliable limiting mechanisms, making it difficult to classify and store equipment, inconvenient to operate, and the cover is prone to wear and tear, failing to effectively protect the experimental equipment.
An experimental platform was designed, comprising a frame, platform, uprights, support beams, box, cover, and partitions. It adopts an adjustable partition and a dual-axis linkage cover structure, combined with sliding grooves and limiting grooves, to achieve classified storage and stability of equipment. The opening and closing angle is controlled by the cooperation of the arc-shaped part and the limiting part, and the flange structure enhances the rigidity of the cover.
It enables the classified storage and quick retrieval of experimental equipment, improves operational convenience and stability, extends the service life of the cover plate, and prevents equipment from slipping and being contaminated by dust.
Smart Images

Figure CN224127332U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of laboratory equipment technology, and in particular to a novel experimental platform that facilitates experimental operations. Background Technology
[0002] In a laboratory environment, the lab bench is a fundamental piece of equipment for researchers to conduct experiments, and its design directly affects experimental efficiency and ease of operation. Traditional lab benches typically use a fixed storage structure, with limited and non-adjustable storage space, making it difficult to meet the needs of classifying and storing different types of experimental equipment. When retrieving small instruments or reagents, researchers often need to frequently bend over or move items, increasing the complexity of the operation.
[0003] Storage shelves are mostly fixed or simply plugged in, lacking reliable limiting mechanisms. During experiments, they are prone to displacement due to vibration or collision, leading to disordered equipment placement or even slippage and damage. Although some existing experimental benches use adjustable shelf designs, the adjustment methods are complex and lack a linkage mechanism with the cover, failing to achieve intelligent adaptation of storage space.
[0004] The connection between the box and the cover often uses a single pivot, which is prone to wear and tear over time, leading to difficulty in opening and closing and affecting the service life. At the same time, the storage area of traditional laboratory benches is usually an open or simply covered design, which cannot effectively protect experimental equipment from environmental interference, such as dust contamination or accidental spills. Utility Model Content
[0005] In view of this, the technical problem to be solved by this utility model is: how to provide a new type of experimental platform that facilitates experimental operations, so as to improve the convenience and stability of users when operating on the experimental platform.
[0006] To achieve the above objectives, this utility model proposes a novel experimental platform that facilitates experimental operations, comprising a frame, a platform, uprights, support beams, a box, a cover plate, and partitions.
[0007] The platform is fixedly mounted on the frame. The uprights are arranged vertically on the frame. Two uprights are arranged in parallel. A support beam is fixedly mounted between the two uprights. The support beam is arranged horizontally. The box is fixedly mounted on the support beam. The interior of the box forms a receiving cavity. Multiple partitions are spaced apart inside the receiving cavity to divide the receiving cavity into multiple independent storage cavities. The cover is rotatably connected to the upper part of the box and is used to open or close the storage cavity located below the cover.
[0008] The rear side of the box body forms a rotating groove and a sliding groove. The sliding groove is located below the rotating groove. Both the sliding groove and the rotating groove extend along the length of the box body. The rotating groove and the sliding groove are open on the side facing the receiving cavity. The bottom wall of the rotating groove is an arc-shaped groove and a limiting part is provided at the top of the rotating groove. The end of the cover plate is provided with an arc-shaped part. The end of the arc-shaped part is provided with a connecting arm. The arc-shaped part is accommodated in the rotating groove and the bottom of the arc-shaped part is attached to the arc-shaped groove. The end of the connecting arm abuts against the limiting part.
[0009] The sliding groove is provided with an upwardly recessed limiting groove, and the side wall of the partition is provided with a sliding arm, which is connected to the sliding groove. The protrusion provided on the sliding arm is assembled into the limiting groove.
[0010] Furthermore, the connecting arm extends along one side toward the cover plate and is located above the arcuate portion.
[0011] Furthermore, a flange is provided at one end of the cover plate away from the arcuate portion, and the flange extends toward one side of the receiving cavity.
[0012] Furthermore, a snap-fit arm is provided on the side of the partition away from the sliding arm, and the snap-fit arm is snapped into the front of the box body.
[0013] Compared with related technologies, this utility model proposes a novel experimental platform that facilitates experimental operations. Its advantages lie in the following: This technical solution optimizes the platform's structure, improving the convenience and functionality of experimental operations, and enabling the categorized storage and rapid retrieval of experimental equipment. The frame and uprights form a stable support framework, with horizontal support beams supporting the box. The interior is divided into independent storage areas by adjustable-space partitions, and sliding arms and limiting grooves ensure the partitions' stability. The cover employs a dual-axis linkage opening mechanism; the arc-shaped part and rotating groove achieve physical limiting, and the connecting arm abuts against the limiting part to control the opening angle. A flanged structure prevents over-opening. The vertical distribution of the sliding and rotating grooves forms a three-dimensional guide, and the snap-fit arm and the front of the box enhance the partition's stability. This novel experimental platform solves the problems of inconvenient storage and retrieval in traditional experimental platforms. The overall structure balances load-bearing strength and operational accuracy, meeting the stability and efficiency requirements of the laboratory. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the structure of a novel experimental platform that facilitates experimental operations according to an embodiment of this utility model;
[0015] Figure 2 This is a partial structural diagram of a novel experimental platform that facilitates experimental operations, as described in an embodiment of this utility model.
[0016] Figure 3 This is a partial structural diagram of a novel experimental platform that facilitates experimental operations, as described in an embodiment of this utility model. Detailed Implementation
[0017] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.
[0018] Please see Figures 1-3 As shown, this utility model proposes a novel experimental platform that facilitates experimental operations, which includes a frame 11, a platform 12, a vertical rod 13, a support beam 14, a box 15, a cover plate 21, and a partition 22.
[0019] The platform 12 is fixedly mounted on the frame 11. Vertical poles 13 are installed on the frame 11 in the vertical direction. Two vertical poles 13 are arranged in parallel. A support beam 14 is fixedly installed between the two vertical poles 13. The support beam 14 is arranged in the horizontal direction. The box 15 is fixedly mounted on the support beam 14. The inside of the box 15 forms a receiving cavity. Multiple partitions 22 are spaced apart inside the receiving cavity to divide the receiving cavity into multiple independent storage cavities.
[0020] The cover plate 21 is rotatably connected to the upper part of the box body 15 and is used to open or close the storage cavity located below the cover plate 21.
[0021] A rotating groove 31 and a sliding groove 32 are formed on the rear side of the box body 15. The sliding groove 32 is located below the rotating groove 31. Both the sliding groove 32 and the rotating groove 31 extend along the length of the box body 15. The rotating groove 31 and the sliding groove 32 are open on the side facing the receiving cavity.
[0022] The bottom wall of the rotating groove 31 is an arc-shaped groove and a limiting part 311 is provided at the top of the rotating groove 31. An arc-shaped part 211 is provided at the end of the cover plate 21. A connecting arm 212 is provided at the end of the arc-shaped part 211. The arc-shaped part 211 is accommodated in the rotating groove 31 and the bottom of the arc-shaped part 211 is attached to the arc-shaped groove. The end of the connecting arm 212 abuts against the limiting part 311. The connecting arm 212 extends along one side toward the cover plate 21 and is located above the arc-shaped part 211.
[0023] The limiting part 311 at the top of the rotating groove 31 abuts against the connecting arm 212, limiting the maximum opening angle of the cover plate 21 and preventing structural damage caused by excessive opening. This design not only simplifies one-handed operation (such as in scenarios where equipment needs to be held simultaneously during experiments), but also extends the service life of the rotating parts by dispersing stress through curved surface contact.
[0024] A recessed limiting groove 321 is provided on the sliding groove 32, and a sliding arm 221 is provided on the side wall of the partition 22. The sliding arm 221 is connected to the sliding groove 32, and the protrusion 222 provided on the sliding arm 221 is fitted into the limiting groove 321.
[0025] The limiting groove 321 provided in the sliding groove 32 cooperates with the protrusion 222 of the sliding arm 221 on the side wall of the partition 22, so that the partition 22 is fixed in the vertical direction, while allowing the spacing in the horizontal direction to be adjusted.
[0026] By using multiple partitions 22 spaced apart within the housing 15, the original single storage space is divided into multiple independent storage cavities, enabling the classified storage of experimental equipment and avoiding the mixing of different types of reagents or tools.
[0027] The sliding arm 221 on the side wall of the partition 22 and the sliding groove 32 on the rear side of the box 15 form a precision guiding system. The protrusion 222 on the sliding arm 221 is embedded in the limiting groove 321 of the sliding groove 32 to form a three-point positioning (upper and lower limit + horizontal clamping). This can prevent the partition 22 from shifting due to vibration during the experiment, while also retaining the horizontal position adjustability. Users can flexibly adjust the volume of each storage cavity according to the size of the equipment.
[0028] A flange 213 is provided at the end of the cover plate 21 away from the arc-shaped portion 211, and the flange 213 extends toward one side of the receiving cavity. The flange 213 design enhances the rigidity of the cover plate 21, and the contact between the connecting arm 212 and the limiting portion 311 ensures the stability of opening and closing, and avoids excessive opening and damage to the structure.
[0029] A snap-fit arm 223 is provided on the side of the partition 22 away from the sliding arm 221, and the snap-fit arm 223 is snapped to the front of the box body 15.
[0030] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and not to limit it. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this utility model.
Claims
1. A new type of experiment table which facilitates experimental operation, characterized in that, It includes the frame, platform, uprights, support beams, box, cover and partition; The platform is fixedly mounted on the frame. The uprights are arranged vertically on the frame. Two uprights are arranged in parallel. A support beam is fixedly mounted between the two uprights. The support beam is arranged horizontally. The box is fixedly mounted on the support beam. The interior of the box forms a receiving cavity. Multiple partitions are spaced apart inside the receiving cavity to divide the receiving cavity into multiple independent storage cavities. The cover is rotatably connected to the upper part of the box and is used to open or close the storage cavity located below the cover. The rear side of the box body forms a rotating groove and a sliding groove. The sliding groove is located below the rotating groove. Both the sliding groove and the rotating groove extend along the length of the box body. The rotating groove and the sliding groove are open on the side facing the receiving cavity. The bottom wall of the rotating groove is an arc-shaped groove and a limiting part is provided at the top of the rotating groove. The end of the cover plate is provided with an arc-shaped part. The end of the arc-shaped part is provided with a connecting arm. The arc-shaped part is accommodated in the rotating groove and the bottom of the arc-shaped part is attached to the arc-shaped groove. The end of the connecting arm abuts against the limiting part. The sliding groove is provided with an upwardly recessed limiting groove, and the side wall of the partition is provided with a sliding arm, which is connected to the sliding groove. The protrusion provided on the sliding arm is assembled into the limiting groove.
2. A new type of experiment table convenient for experimental operation according to claim 1, characterized in that, The connecting arm extends along one side toward the cover plate and is located above the arcuate portion.
3. A new type of experimental table for facilitating experimental operations according to claim 2, characterized in that, The cover plate has a flange at one end away from the arc-shaped portion, and the flange extends toward one side of the receiving cavity.
4. The novel experiment table convenient for experiment operation according to claim 3, characterized in that, A snap-fit arm is provided on the side of the partition away from the sliding arm, and the snap-fit arm is snapped to the front of the box body.