Mobile distribution automation joint debugging test platform
By designing a mobile power distribution automation joint commissioning and testing platform with supporting protrusions, casters, and cable trays, the problems of inconvenient equipment transportation and cable storage were solved, enabling convenient equipment transportation and classified cable storage, thus improving practicality.
Patent Information
- Application Number
- CN202520373608.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-05
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-03-05
AI Technical Summary
The existing mobile power distribution automation commissioning and testing platform is too large, takes up too much space, is inconvenient to transport, and has inconvenient cable storage, which reduces its practicality.
A mobile power distribution automation commissioning and testing platform was designed, comprising a test chamber, an operating table, and a transfer box. It adopts structures such as support protrusions, casters, rodless cylinders, and cable racks to achieve convenient equipment transfer and classified storage of cables.
The overall size of the testing platform has been reduced, making it easier to transport and operate the equipment, improving the ability to classify and distinguish cables, and enhancing its practicality.
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Figure CN223897569U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of distribution test workbench, specifically, relates to a mobile distribution automation joint debugging test platform. BACKGROUND
[0002] Distribution joint debugging test refers to the process of integrated testing of each component in the distribution automation system after installation or upgrading, which aims to ensure that all distribution equipment and automation functions can work together to achieve the expected performance and reliability, and requires debugging test of multiple devices.
[0003] In the prior art, the application number 202421724785.2 discloses a mobile distribution automation joint debugging test platform, which comprises a device box, a vertical beam is arranged at the middle position between the upper and lower edge beams, a horizontal beam is arranged between the right edge beam and the vertical beam, two small drawers and one large drawer are arranged from top to bottom between the right side of the upper and lower edge beams and the horizontal beam, slide rails are arranged on the left and right sides of the two small drawers and the large drawer, a placing platform is arranged at the upper end of the device box, a pull handle is arranged at the right upper end of the device box, a winding roller is arranged on the outer surface of the rear side of the device box, and a tool placing groove is arranged on the left outer surface of the device box. The front and rear pull-out drawers of the above device greatly occupy space, and the setting of the drawers is not convenient in a narrow and limited working environment. The overall structure of the above device is too large, it is not convenient to start the whole vehicle body in the working environment during on-site testing, the equipment in the working site is not convenient to transfer, and the simple cable storage and centralized cable bundling cannot solve the problem of distinguishing and classifying the wires of multiple device connections, and the practicality is greatly reduced.
[0004] For the problems in the related art, there is no effective solution at present. UTILITY MODEL CONTENTS
[0005] In view of the problems in the related art, the utility model provides a mobile distribution automation joint debugging test platform to overcome the above technical problems existing in the prior art.
[0006] Therefore, the utility model adopts the following specific technical scheme:
[0007] A mobile distribution automation joint debugging test platform, comprising a test box, an operation table and a transfer box, the transfer box is arranged inside the right side of the test box, the top of the test box is fixedly connected with the operation table, equidistant support protrusions are connected to the top of the transfer box, a pull handle is fixedly connected to the left side of the test box, symmetrical handle rods are connected to the right side of the transfer box, a storage opening is arranged through the left side of the top of the test box, and a placing rack is movably connected inside the storage opening.
[0008] As preferred, the test box comprises a box body, side plates symmetrically arranged on the right side of the box body, and a device placing cavity arranged in the box body, and a door plate is connected to the inside of the device placing cavity through a hinge.
[0009] As preferred, universal wheels are respectively connected to the four corners of the bottom of the box body and the bottom of the transfer box, a connecting groove is excavated on the right side of the operation table, and guide plates are equidistantly connected to the left side of the inner wall of the connecting groove.
[0010] As preferred, the transfer box is movably connected between the side plates, and the transfer box is embedded between the guide plates through supporting protrusions.
[0011] As preferred, a rodless cylinder is embedded and fixed to the rear side of the inner wall of the device placing cavity, and the placing rack comprises a back plate and a layer plate, the back plate is fixedly connected to the upper front side of the layer plate, and the movable end of the rodless cylinder is fixedly connected to the rear side of the back plate.
[0012] As preferred, a line collecting cavity is formed through the right side of the top of the box body, a wire bundling rack is formed through the top of the middle of the operation table, the wire bundling rack corresponds to the position of the line collecting cavity and is connected thereto, and the line collecting cavity is connected to the inside of the device placing cavity.
[0013] As preferred, the wire bundling rack comprises a groove plate and movable blocks, the movable blocks are equidistantly arranged in the groove plate, a sliding groove is excavated on the left side of the inner wall of the groove plate, sliding rods are fixedly connected between the inner walls of the sliding groove, and the movable blocks are slidingly sleeved on the outside of the sliding rods.
[0014] As preferred, mounting holes are formed through the top of each movable block, wire inlet pipes are fixedly connected to the inside of the mounting holes, corrugated pipes are fixedly connected to the bottom end of the wire inlet pipes, and the corrugated pipes extend into the line collecting cavity.
[0015] The device has the advantages that the size of the overall test platform is greatly reduced, the device can be directly operated on the spliced transfer box, the operation space on the operation table is increased, the device is convenient to lift and store, the drawer structure is not used to occupy the space of the working site, the design is more reasonable, the gap between the classified cables can be adjusted, the situation that the cables are tangled due to disorderly stacking is avoided, the wires connected to multiple devices can be distinguished and classified, and the practicability is further improved. BRIEF DESCRIPTION OF DRAWINGS
[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the drawings needed in the embodiments will be briefly introduced as follows. Obviously, the drawings in the following description only constitute some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained without creative labor on the basis of these drawings.
[0017] Figure 1 is a general structure schematic diagram of a mobile power distribution automation joint debugging test platform according to an embodiment of the present application;
[0018] Figure 2 is a test box appearance structure schematic diagram of a mobile power distribution automation joint debugging test platform according to an embodiment of the present application;
[0019] Figure 3 is a box body internal structure schematic diagram of a mobile power distribution automation joint debugging test platform according to an embodiment of the present application;
[0020] Figure 4 is a cable binding rack appearance structure schematic diagram of a mobile power distribution automation joint debugging test platform according to an embodiment of the present application.
[0021] In the drawings:
[0022] 1, test box; 2, operation table; 3, transfer box; 4, supporting protrusion; 5, push-pull handle; 6, holding rod; 7, storage opening; 8, placing rack; 9, box body; 10, side baffle; 11, equipment placing cavity; 12, door plate; 13, universal wheel; 14, connecting groove; 15, guide plate; 16, rodless cylinder; 17, back plate; 18, layer plate; 19, cable collecting cavity; 20, cable binding rack; 21, groove plate; 22, movable block; 23, sliding groove; 24, sliding rod; 25, mounting hole; 26, wire inlet pipe; 27, corrugated pipe. DETAILED DESCRIPTION
[0023] To further illustrate the embodiments, the present application provides drawings which are part of the disclosure of the present application, mainly used to illustrate the embodiments, and can be used to explain the operation principle of the embodiments in cooperation with the related description of the specification. With reference to these contents, those skilled in the art should understand other possible embodiments and advantages of the present application. The components in the drawings are not drawn to scale, and similar component symbols are usually used to represent similar components.
[0024] According to the embodiments of the present application, a mobile power distribution automation joint debugging test platform is provided.
[0025] Embodiment one
[0026] As Figures 1-4As shown, a mobile power distribution automation commissioning test platform according to an embodiment of the present invention includes a test chamber 1, an operating table 2, and a transfer box 3. The transfer box 3 is located inside the right side of the test chamber 1. The top of the test chamber 1 is fixedly connected to the operating table 2. Supporting protrusions 4 are equidistantly connected to the top of the transfer box 3. A push-pull handle 5 is fixedly connected to the left side of the test chamber 1. Handles 6 are symmetrically connected to the right side of the transfer box 3. A storage opening 7 is provided through the top left side of the test chamber 1. A placement rack 8 is movably connected inside the storage opening 7. The test chamber 1 includes a box body 9 and side baffles 10. The side baffles 10 are symmetrically arranged on the right side of the box body 9. An equipment placement cavity 11 is provided inside the box body 9. A door panel 12 is connected to the equipment placement cavity 11 through a hinge. Universal wheels 13 are connected to the bottom of the box body 9 and the four corners of the bottom of the transfer box 3. A connecting groove 14 is dug on the right side of the platform 2. Guide plates 15 are equidistantly connected to the left side of the inner wall of the connecting groove 14. The transfer box 3 is movably connected between the side baffles 10, and the transfer box 3 is embedded between the guide plates 15 through the support protrusions 4. The transfer box 3 can be removed from between the side baffles 10, and the support protrusions 4 on its top can be pulled out from between the guide plates 15, so that the test chamber 1 and the transfer box 3 can be separated. The transfer box 3 can be moved within the work area, which greatly reduces the size of the overall test platform. The equipment to be tested can be placed on the support protrusions 4, so that the transfer box 3 and the test chamber 1 can be spliced together. There is no need for the staff to move the transferred equipment to the test platform again for operation. The operation can be carried out directly on the spliced transfer box 3, which greatly improves the practicality.
[0027] Example 2
[0028] like Figures 1-4As shown, a mobile power distribution automation commissioning test platform according to an embodiment of the present invention includes a test chamber 1, an operating table 2, and a transfer box 3. The transfer box 3 is located inside the right side of the test chamber 1. The top of the test chamber 1 is fixedly connected to the operating table 2. Supporting protrusions 4 are equidistantly connected to the top of the transfer box 3. A push-pull handle 5 is fixedly connected to the left side of the test chamber 1. Handles 6 are symmetrically connected to the right side of the transfer box 3. A storage opening 7 is provided through the top left side of the test chamber 1. A placement rack 8 is movably connected inside the storage opening 7. A rodless cylinder 16 is embedded and fixedly installed on the rear side of the inner wall of the equipment placement cavity 11. The placement rack 8 includes a back plate 17 and a shelf 18. The upper front side of the back plate 17 is fixedly connected to the shelf 18. The movable end of the rodless cylinder 16 is connected to... The back panel 17 is fixed to the rear side. A cable management cavity 19 is provided through the top right side of the housing 9. A cable bundle 20 is provided through the middle of the top side of the operating table 2. The cable bundle 20 corresponds to the position of the cable management cavity 19 and is connected through it. The cable management cavity 19 is connected through the inside of the equipment placement cavity 11. The operator can place the test equipment on the equipment placement cavity 11 and the shelf 18. By activating the rodless cylinder 16, the movable end of the rodless cylinder 16 drives the back panel 17 to rise, which can adjust the height of the test equipment placed on the shelf 18. This increases the operating space on the operating table 2 and facilitates the lifting and storage of the equipment. It avoids the need to use a drawer structure for front and rear pulling, which would occupy the space of the work area. The design is more reasonable.
[0029] Example 3
[0030] like Figures 1-4As shown, a mobile power distribution automation commissioning test platform according to an embodiment of the present invention includes a test chamber 1, an operating table 2, and a transfer box 3. The transfer box 3 is located inside the right side of the test chamber 1. The top of the test chamber 1 is fixedly connected to the operating table 2. Supporting protrusions 4 are equidistantly connected to the top of the transfer box 3. A push-pull handle 5 is fixedly connected to the left side of the test chamber 1. Handles 6 are symmetrically connected to the right side of the transfer box 3. A storage opening 7 is provided through the top left side of the test chamber 1. A placement rack 8 is movably connected inside the storage opening 7. The cable tie 20 includes a grooved plate 21 and movable blocks 22. The movable blocks 22 are equidistantly arranged inside the grooved plate 21. A sliding groove 23 is carved into the left side of the inner wall of the grooved plate 21. A sliding rod 24 is fixedly connected between the inner walls of the sliding grooves 23. Block 22 is slidably sleeved on the outside of sliding rod 24. Each movable block 22 has a through mounting hole 25 on its top. An inlet pipe 26 is fixedly connected inside the mounting hole 25. A corrugated pipe 27 is fixedly connected to the bottom end of the inlet pipe 26. The corrugated pipe 27 extends into the cable collection cavity 19. By installing the equipment wiring cables on the inlet pipes 26 in different movable blocks 22, and then using the corrugated pipe 27 to bundle multiple groups of cables, the movable block 22 can be slid to move the classified cables inside the groove plate 21. This allows for adjustment of the gap between the classified cables, avoiding the tangling of a large number of cables. It can solve the problem of distinguishing and classifying the wires of multiple equipment connections, further improving practicality.
[0031] In summary, with the help of the above-mentioned technical solution of this utility model, when using this device, the transfer box 3 can be removed from between the side baffles 10, and its top support protrusion 4 can be pulled out from between the guide plates 15, allowing the test chamber 1 and the transfer box 3 to be separated. The transfer box 3 can then be moved within the work area, greatly reducing the overall size of the test platform. Furthermore, the equipment to be tested can be placed on the support protrusion 4, allowing the transfer box 3 and the test chamber 1 to be assembled. This eliminates the need for personnel to transport the equipment back to the test platform for operation; operation can be performed directly on the assembled transfer box 3. The testing equipment is placed on the equipment placement cavity 11 and the shelf 18. By activating the rodless cylinder 16, the movable end of the rodless cylinder 16 drives the back plate 17 to rise, which allows the height of the testing equipment placed on the shelf 18 to be adjusted. This increases the operating space on the operating table 2 and facilitates the lifting and storage of the equipment. By installing the equipment wiring cables on the inlet pipes 26 in different movable blocks 22, and then bundling multiple groups of cables through the corrugated pipe 27, the movable blocks 22 can be slid to move the classified cables inside the groove plate 21, thereby adjusting the gap between the classified cables.
[0032] 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 mobile power distribution automation commissioning test platform, comprising a test chamber (1), an operating table (2), and a transfer box (3), characterized in that, The transfer box (3) is located inside the right side of the test chamber (1). The top of the test chamber (1) is fixedly connected to the operating table (2). The top of the transfer box (3) is equidistantly connected with support protrusions (4). The left side of the test chamber (1) is fixedly connected with a push-pull handle (5). The right side of the transfer box (3) is symmetrically connected with a handle (6). The top left side of the test chamber (1) is provided with a storage opening (7). The storage opening (7) is movably connected with a placement rack (8).
2. The mobile power distribution automation joint commissioning and testing platform according to claim 1, characterized in that, The test chamber (1) includes a chamber body (9) and side baffles (10). The side baffles (10) are symmetrically arranged on the right side of the chamber body (9). The chamber body (9) has an equipment placement cavity (11) inside, and a door panel (12) is connected to the equipment placement cavity (11) through a hinge.
3. The mobile power distribution automation joint commissioning test platform according to claim 2, characterized in that, The bottom of the box (9) and the four corners of the bottom of the transfer box (3) are respectively connected to casters (13). A connecting groove (14) is dug on the right side of the operating table (2). A guide plate (15) is equidistantly connected to the left side of the inner wall of the connecting groove (14).
4. The mobile power distribution automation joint commissioning test platform according to claim 3, characterized in that, The transfer box (3) is movably connected between the side baffles (10), and the transfer box (3) is respectively embedded between the guide plates (15) by the support protrusions (4).
5. The mobile power distribution automation joint commissioning test platform according to claim 4, characterized in that, A rodless cylinder (16) is embedded and fixed on the rear side of the inner wall of the equipment placement cavity (11). The placement rack (8) includes a back plate (17) and a shelf (18). The upper front side of the back plate (17) is fixedly connected to the shelf (18). The movable end of the rodless cylinder (16) is connected and fixed to the rear side of the back plate (17).
6. The mobile power distribution automation joint commissioning test platform according to claim 5, characterized in that, The top right side of the housing (9) is provided with a cable collection cavity (19), and the top center of the operating table (2) is provided with a cable bundle (20). The cable bundle (20) corresponds to the position of the cable collection cavity (19) and is connected through it. The cable collection cavity (19) is connected through it to the inside of the equipment placement cavity (11).
7. A mobile power distribution automation joint commissioning test platform according to claim 6, characterized in that, The cable tie (20) includes a grooved plate (21) and a movable block (22). The movable block (22) is equidistantly arranged inside the grooved plate (21). A sliding groove (23) is dug on the left side of the inner wall of the grooved plate (21). A sliding rod (24) is fixedly connected between the inner walls of the sliding groove (23). The movable block (22) is slidably sleeved on the outside of the sliding rod (24).
8. The mobile power distribution automation joint commissioning test platform according to claim 7, characterized in that, The top of each movable block (22) is provided with a through mounting hole (25), and an inlet pipe (26) is fixedly connected inside the mounting hole (25). A corrugated pipe (27) is fixedly connected to the bottom end of the inlet pipe (26), and the corrugated pipe (27) extends into the inside of the cable collection cavity (19).
Citation Information
Patent Citations
Mobile distribution automation joint debugging test platform
CN221677105U