Fixed experiment socket box

By designing heat dissipation vents, mounting slots, mounting frames, and positioning mechanisms in the fixed experimental socket box, the filter plates can be easily installed and removed, solving the problem of dust affecting heat dissipation and improving heat dissipation efficiency.

CN224153640UActive Publication Date: 2026-04-21TANGSHAN YILAIDA ELECTRICAL COMPLETE EQUIPMENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TANGSHAN YILAIDA ELECTRICAL COMPLETE EQUIPMENT CO LTD
Filing Date
2025-02-24
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Dust adhering to the surface of the filter plate of the existing fixed experimental socket box affects the heat dissipation efficiency, resulting in a decrease in the working effect of the experimental socket box.

Method used

A structure including a heat dissipation port, a mounting slot, a mounting frame, a filter plate, and a positioning mechanism is designed. The positioning mechanism and the synchronous movement mechanism enable convenient installation and disassembly of the filter plate, facilitating dust cleaning and replacement.

Benefits of technology

The easy cleaning and replacement of the filter plate improves the heat dissipation efficiency of the experimental socket box, ensuring the normal operation of electrical components.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of experiment socket boxes, in particular to a fixed experiment socket box, which comprises a box body, a heat dissipation opening, a mounting groove, a mounting frame, a filter plate and a positioning mechanism, the heat dissipation opening is arranged on the box body, the mounting groove is arranged on the side wall of the box body and is communicated with the heat dissipation opening, the mounting frame is arranged in the mounting groove in a sliding manner, and the filter plate is arranged on the mounting frame. The filter plate is fixedly arranged in the mounting frame, the positioning mechanism is arranged between the side wall of the mounting groove and the mounting frame and used for positioning the mounting frame and the side wall of the mounting groove, and a sealing ring is fixedly arranged on the side wall of the mounting frame. Therefore, dust on the filter plate can be cleaned conveniently, the filter plate can be replaced, and the problem that dust attached to the surface of the filter plate on the surface of the experiment socket box in the related technology affects the heat dissipation effect of the experiment socket box is solved.
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Description

Technical Field

[0001] This utility model relates to the technical field of experimental socket boxes, specifically to a fixed experimental socket box. Background Technology

[0002] A fixed laboratory socket box is an electrical device specifically designed for laboratory environments to provide power interfaces for laboratory equipment and is fixedly installed in a specific location.

[0003] Existing fixed experimental socket boxes generally include a shell, a socket module, and electrical components. The socket module is installed on the shell, and the electrical components are installed inside the shell. In order to dissipate the heat generated when the electrical components are working, heat dissipation vents are usually opened on the surface of the shell. At the same time, a filter plate is installed inside the heat dissipation vent to isolate dust. However, during the heat dissipation process, dust from the external environment can easily adhere to the surface of the filter plate. The dust adhering to the surface of the filter plate will affect the subsequent heat dissipation efficiency of the electrical components, thereby affecting the working effect of the experimental socket box. Utility Model Content

[0004] This invention proposes a fixed experimental socket box, which solves the problem in related technologies that dust adhering to the surface of the filter plate on the surface of the experimental socket box will affect the heat dissipation effect of the experimental socket box.

[0005] The technical solution of this utility model is as follows: A fixed experimental socket box includes a box body, a heat dissipation vent, a mounting groove, a mounting frame, a filter plate, and a positioning mechanism. The heat dissipation vent is opened on the box body, the mounting groove is opened on the side wall of the box body and communicates with the heat dissipation vent, the mounting frame is slidably disposed in the mounting groove, the filter plate is fixedly disposed in the mounting frame, and the positioning mechanism is disposed between the side wall of the mounting groove and the mounting frame for positioning the mounting frame and the side wall of the mounting groove.

[0006] Preferably, the positioning mechanism includes:

[0007] The first positioning groove is formed on the two opposite side walls of the mounting groove;

[0008] The second positioning groove is formed on two opposite side walls of the mounting frame, and the shape of the second positioning groove is adapted to the first positioning groove.

[0009] A first positioning block is slidably disposed in the first positioning groove, and a plurality of second positioning blocks are fixedly disposed on the side wall of the first positioning block.

[0010] A synchronous moving mechanism is disposed on the housing and is used to drive the two first positioning blocks to move synchronously.

[0011] Furthermore, the second positioning groove has multiple positioning through grooves on its side wall, and the positioning through grooves are adapted to the shape of the second positioning block.

[0012] Furthermore, the synchronous movement mechanism includes:

[0013] The first cavity is provided on one side of the first positioning groove of the box body;

[0014] An adjusting disc is rotatably mounted on the side wall of the first cavity, and a rotating shaft is rotatably mounted at the eccentric position of the adjusting disc.

[0015] An adjusting rod is hinged between the first positioning block and the rotating shaft;

[0016] A synchronous rotation mechanism is installed inside the housing and is used to drive the two adjustment discs to rotate synchronously.

[0017] Furthermore, the synchronous rotation mechanism includes:

[0018] The second cavity is formed on one side of the first cavity;

[0019] The first bevel gear is rotatably mounted on the side wall of the second cavity, and a connecting rod is fixedly mounted between the first bevel gear and the adjusting plate;

[0020] A rotating mechanism is disposed inside the housing and is used to drive the two first bevel gears to rotate synchronously.

[0021] Based on the above scheme, the rotating mechanism includes:

[0022] The second bevel gear is rotatably mounted on the side wall of the second cavity;

[0023] A drive rod, which is fixedly disposed between the two second bevel gears;

[0024] A drive mechanism is disposed inside the housing and is used to drive the drive rod to rotate.

[0025] Based on the above solution, the drive mechanism includes:

[0026] A third cavity is formed inside the housing, and the drive rod passes through the third cavity;

[0027] The third bevel gear is fixedly mounted on the drive rod;

[0028] A fourth bevel gear is rotatably mounted on the side wall of the third cavity, and the fourth bevel gear meshes with the third bevel gear;

[0029] A drive assembly, which is mounted on the housing, is used to drive the fourth bevel gear to rotate.

[0030] Based on the above solution, the driving component includes:

[0031] A drive column is fixedly mounted on the fourth bevel gear and extends through the side wall of the third cavity and out of the housing.

[0032] The handwheel is fixedly mounted on the drive column.

[0033] Based on the above scheme, a torsion spring is fitted on the drive column, and the two ends of the torsion spring are fixedly connected to the handwheel and the housing, respectively.

[0034] Based on the above scheme, a sealing ring is fixedly provided on the side wall of the mounting frame.

[0035] The working principle and beneficial effects of this utility model are as follows:

[0036] 1. In this utility model, by setting up a positioning mechanism, after the mounting frame is inserted into the mounting groove, the second positioning block can be inserted into the second positioning groove through the positioning through groove. Then, the operation of the synchronous moving mechanism drives the first positioning block and the second positioning block to move synchronously, thereby causing the second positioning block to be misaligned with the positioning through groove. Thus, the mounting frame and the filter plate are installed through the cooperation of the second positioning block and the second positioning groove, while also facilitating their disassembly, thereby facilitating the cleaning of dust on the surface of the filter plate, and further facilitating the replacement of the filter plate.

[0037] 2. In this utility model, the synchronous movement mechanism facilitates the rotation of the drive rod and the second bevel gear by the operation of the drive mechanism. At the same time, the meshing of the second bevel gear and the first bevel gear drives the first bevel gear, the connecting rod, and the adjusting plate to rotate, thereby facilitating the synchronous movement of the first positioning block by the rotating shaft and the adjusting rod.

[0038] 3. In this utility model, the drive mechanism facilitates the rotation of the drive column and the fourth bevel gear by rotating the handwheel, and the meshing of the fourth bevel gear and the third bevel gear facilitates the adjustment of the rotation angle of the drive rod.

[0039] 4. In this utility model, the installation of the heat dissipation vent, mounting groove, mounting frame, filter plate, and positioning mechanism facilitates the installation and disassembly of the mounting frame and filter plate by rotating the handwheel. This makes it easy to clean the dust on the filter plate and replace the filter plate, thus solving the problem in related technologies where dust adhering to the surface of the filter plate on the surface of the experimental socket box affects the heat dissipation effect of the experimental socket box. Attached Figure Description

[0040] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0041] Figure 1 This is a schematic diagram of the structure of this utility model;

[0042] Figure 2 This is an exploded structural diagram of the present invention;

[0043] Figure 3 This is a cross-sectional view of the drive mechanism of this utility model;

[0044] Figure 4 This utility model Figure 3 A magnified schematic diagram of the partial structure at point A in the middle;

[0045] Figure 5 This is a cross-sectional view of the first positioning block of this utility model;

[0046] Figure 6 This is a schematic diagram of the positioning mechanism of this utility model.

[0047] In the diagram: 1. Housing; 2. Heat dissipation vent; 3. Mounting slot; 4. Mounting frame; 5. Filter plate; 6. Second positioning slot; 7. First positioning block; 8. Second positioning block; 9. Positioning through slot; 10. Adjusting disc; 11. Adjusting rod; 12. First bevel gear; 13. Second bevel gear; 14. Drive rod; 15. Third bevel gear; 16. Fourth bevel gear; 17. Drive column; 18. Handwheel. Detailed Implementation

[0048] The technical solutions of this utility model will be clearly and completely described below with reference to the embodiments of this utility model. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this utility model.

[0049] like Figures 1-6As shown, this embodiment proposes a fixed experimental socket box, including a box body 1, a heat dissipation vent 2, a mounting groove 3, a mounting frame 4, a filter plate 5, and a positioning mechanism. The heat dissipation vent 2 is opened on the box body 1, the mounting groove 3 is opened on the side wall of the box body 1, and the mounting groove 3 communicates with the heat dissipation vent 2. The mounting frame 4 is slidably disposed in the mounting groove 3, the filter plate 5 is fixedly disposed in the mounting frame 4, and the positioning mechanism is disposed between the side wall of the mounting groove 3 and the mounting frame 4 for positioning the mounting frame 4 and the side wall of the mounting groove 3. A sealing ring is fixedly disposed on the side wall of the mounting frame 4.

[0050] Reference Figure 2 and Figure 5 The positioning mechanism includes a first positioning groove, a second positioning groove 6, a first positioning block 7, and a synchronous moving mechanism. The first positioning groove is formed on two opposite side walls of the mounting groove 3, and the second positioning groove 6 is formed on two opposite side walls of the mounting frame 4. The second positioning groove 6 is adapted to the shape of the first positioning groove. The first positioning block 7 is slidably disposed in the first positioning groove. Multiple second positioning blocks 8 are fixedly disposed on the side wall of the first positioning block 7. The synchronous moving mechanism is disposed on the housing 1 and is used to drive the two first positioning blocks 7 to move synchronously. Multiple positioning through grooves 9 are formed on the side wall of the second positioning groove 6. The positioning through grooves 9 and the first positioning groove 7 are connected to the first positioning groove 6. The two positioning blocks 8 are shaped to match each other. After the mounting frame 4 is inserted into the mounting groove 3, the second positioning block 8 can be inserted into the second positioning groove 6 through the positioning through groove 9. Then, the operation of the synchronous moving mechanism drives the first positioning block 7 and the second positioning block 8 to move synchronously, thereby causing the second positioning block 8 to be misaligned with the positioning through groove 9. The installation of the mounting frame 4 and the filter plate 5 is achieved through the cooperation of the second positioning block 8 and the second positioning groove 6. At the same time, it is easy to disassemble them, so as to facilitate the cleaning of dust on the surface of the filter plate 5, and further, the filter plate 5 can be replaced.

[0051] Reference Figures 2-6The synchronous moving mechanism includes a first cavity, an adjusting plate 10, an adjusting rod 11, and a synchronous rotating mechanism. The housing 1 has a first cavity located on one side of the first positioning groove. The adjusting plate 10 is rotatably mounted on the side wall of the first cavity. A rotating shaft is rotatably mounted at the eccentric position of the adjusting plate 10. The adjusting rod 11 is hinged between the first positioning block 7 and the rotating shaft. The synchronous rotating mechanism is located inside the housing 1 and is used to drive the two adjusting plates 10 to rotate synchronously. The synchronous rotating mechanism includes a second cavity, a first bevel gear 12, and a rotating mechanism. The second cavity is located on one side of the first cavity. The first bevel gear 12 is rotatably mounted on the side wall of the second cavity. A connecting rod is fixedly mounted between the first bevel gear 12 and the adjusting plate 10. The mechanism is installed inside the housing 1 and is used to drive the two first bevel gears 12 to rotate synchronously. The rotating mechanism includes a second bevel gear 13, a drive rod 14 and a drive mechanism. The second bevel gear 13 is rotatably mounted on the side wall of the second cavity. The drive rod 14 is fixedly mounted between the two second bevel gears 13. The drive mechanism is installed inside the housing 1 and is used to drive the drive rod 14 to rotate. The operation of the drive mechanism can drive the drive rod 14 and the second bevel gear 13 to rotate. At the same time, the meshing of the second bevel gear 13 with the first bevel gear 12 drives the first bevel gear 12, the connecting rod and the adjusting plate 10 to rotate, thereby facilitating the synchronous movement of the first positioning block 7 by the rotating shaft and the adjusting rod 11.

[0052] Reference Figures 3-6 The drive mechanism includes a third cavity, a third bevel gear 15, a fourth bevel gear 16, and a drive assembly. The third cavity is located inside the housing 1, and a drive rod 14 passes through the third cavity. The third bevel gear 15 is fixedly mounted on the drive rod 14, and the fourth bevel gear 16 is rotatably mounted on the side wall of the third cavity, meshing with the third bevel gear 15. The drive assembly is mounted on the housing 1 and is used to drive the fourth bevel gear 16 to rotate. The drive assembly includes a drive column 17 and a handwheel 18. The drive column 17 is fixedly mounted on the fourth bevel gear 16 and extends out of the housing 1 through the side wall of the third cavity. The handwheel 18 is fixedly mounted on the drive column 17, and a torsion spring is fitted on the drive column 17. The two ends of the torsion spring are fixedly connected to the handwheel 18 and the housing 1, respectively. The rotation of the handwheel 18 can drive the drive column 17 and the fourth bevel gear 16 to rotate. At the same time, the meshing of the fourth bevel gear 16 and the third bevel gear 15 facilitates the adjustment of the rotation angle of the drive rod 14.

[0053] In this embodiment, the operator rotates the handwheel 18, which drives the drive column 17 and the fourth bevel gear 16 to rotate. Simultaneously, the meshing of the fourth bevel gear 16 with the third bevel gear 15 drives the drive rod 14 and the second bevel gear 13 to rotate. The meshing of the second bevel gear 13 with the first bevel gear 12 drives the first bevel gear 12, the connecting rod, and the adjusting plate 10 to rotate. This allows the rotating shaft and adjusting rod 11 to push the first positioning block 7 and the second positioning port to move synchronously. Afterwards, the operator inserts the mounting frame 4 into the mounting groove 3, allowing... The second positioning block 8 extends into the second positioning groove 6 through the positioning through groove 9. Then, the operator releases the handwheel 18, which is then reset under the action of the torsion spring. This causes the first positioning block 7 and the second positioning block 8 to move synchronously and reset, thereby causing the second positioning block 8 to misalign with the positioning through groove 9. The installation frame 4 and the filter plate 5 are then installed through the cooperation of the second positioning block 8 and the second positioning groove 6. The above steps can then be reversed to disassemble the filter plate 5, making it easier to clean the dust on the surface of the filter plate 5 and to replace the filter plate 5.

[0054] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model shall be included within the protection scope of the present utility model.

Claims

1. A stationary experimental socket box comprising a box body (1), characterized in that, Also includes: Heat dissipation vent (2), the heat dissipation vent (2) is opened on the box body (1); The mounting slot (3) is formed on the side wall of the housing (1) and is connected to the heat dissipation port (2); Mounting frame (4), which is slidably disposed within the mounting slot (3); The filter plate (5) is fixedly installed inside the mounting frame (4); A positioning mechanism is provided between the side wall of the mounting groove (3) and the mounting frame (4) for positioning the mounting frame (4) and the side wall of the mounting groove (3).

2. The fixed experimental socket box according to claim 1, wherein, The positioning mechanism includes: The first positioning groove is formed on the two opposite side walls of the mounting groove (3); The second positioning groove (6) is formed on two opposite side walls of the mounting frame (4), and the shape of the second positioning groove (6) is adapted to the first positioning groove. The first positioning block (7) is slidably disposed in the first positioning groove, and a plurality of second positioning blocks (8) are fixedly disposed on the side wall of the first positioning block (7). A synchronous moving mechanism is provided on the housing (1) and is used to drive the two first positioning blocks (7) to move synchronously.

3. The fixed experimental socket box of claim 2, wherein, The second positioning groove (6) has multiple positioning through grooves (9) on its side wall, and the positioning through grooves (9) are adapted to the shape of the second positioning block (8).

4. The fixed experimental socket box of claim 3, wherein, The synchronous movement mechanism includes: The first cavity is provided on one side of the first positioning groove of the box body (1); An adjusting disk (10) is rotatably disposed on the side wall of the first cavity, and a rotating shaft is rotatably disposed at the eccentric position of the adjusting disk (10); Adjusting rod (11), the adjusting rod (11) is hinged between the first positioning block (7) and the rotating shaft; A synchronous rotation mechanism is provided inside the housing (1) to drive the two adjustment discs (10) to rotate synchronously.

5. A fixed experimental socket box according to claim 4, characterized in that, The synchronous rotation mechanism includes: The second cavity is formed on one side of the first cavity; The first bevel gear (12) is rotatably provided on the side wall of the second cavity, and a connecting rod is fixedly provided between the first bevel gear (12) and the adjusting plate (10); A rotating mechanism is provided inside the housing (1) to drive the two first bevel gears (12) to rotate synchronously.

6. The fixed experimental socket box of claim 5, wherein, The rotating mechanism includes: The second bevel gear (13) is rotatably mounted on the side wall of the second cavity; A drive rod (14) is fixedly disposed between two second bevel gears (13); A drive mechanism is provided inside the housing (1) and is used to drive the drive rod (14) to rotate.

7. The fixed experimental socket box of claim 6, wherein, The drive mechanism includes: The third cavity is formed inside the housing (1), and the drive rod (14) passes through the third cavity; The third bevel gear (15) is fixedly mounted on the drive rod (14); The fourth bevel gear (16) is rotatably disposed on the side wall of the third cavity, and the fourth bevel gear (16) meshes with the third bevel gear (15); A drive assembly is disposed on the housing (1) and is used to drive the fourth bevel gear (16) to rotate.

8. The fixed experimental socket box of claim 7, wherein, The driving component includes: A drive column (17) is fixedly mounted on the fourth bevel gear (16) and extends through the side wall of the third cavity and out of the housing (1). Handwheel (18), which is fixedly mounted on the drive column (17).

9. The fixed experimental socket box of claim 8, wherein, A torsion spring is fitted on the drive column (17), and the two ends of the torsion spring are fixedly connected to the handwheel (18) and the housing (1) respectively.

10. The fixed experimental socket box of claim 9, wherein, A sealing ring is fixedly installed on the side wall of the mounting frame (4).