Workshop busbar rack
By introducing electrically driven moving rack components, support plates, and rotating column structures into the mother rack, the problems of complex material handling and insufficient stability of existing racks are solved, achieving automated material handling and extending equipment life.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 陕西振力实业有限公司
- Filing Date
- 2025-09-19
- Publication Date
- 2026-07-24
AI Technical Summary
Existing busbar racks are complex to operate when retrieving materials deep on the shelves, and are prone to causing other materials to scatter. They also lack automation and stability.
A workshop motherboard rack was designed, which adopts a moving rack assembly including an electric telescopic rod, a moving rack, a moving rod, a moving plate, and an electric telescopic column. The electric drive moves the storage frame to the top, and the insertion slot and insertion column realize automated material picking. At the same time, the support plate and rotating column structure reduce friction, prevent the storage frame from falling, and extend the equipment life.
It automates the material handling process, avoids contact with other materials, is easy to operate, and improves the stability and service life of the equipment through the support plate and rotating column structure.
Smart Images

Figure CN224547060U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of industrial warehousing equipment technology, and in particular relates to a workshop busbar rack. Background Technology
[0002] Workshop busbar racks are devices used in warehouses or factory workshops to store materials such as busbars (a conductive material in electrical equipment). They are used to arrange busbars and other materials in an orderly manner, making them easy to manage and access.
[0003] Existing busbar racks mainly consist of shelves, uprights, and beams. Uprights and beams are the main load-bearing components of the rack. Uprights provide vertical support, while beams connect the uprights and form horizontal shelves, together constituting the rack's skeletal structure. Shelves provide additional support surfaces for storing materials such as busbars. However, in actual use, if workers need to retrieve materials deep within the shelves, they must pass over other materials, which is not only complex but also easily causes materials in other locations to scatter. Therefore, a workshop busbar rack is needed to solve these problems. Utility Model Content
[0004] The purpose of this utility model embodiment is to provide a workshop busbar rack to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution:
[0006] A workshop busbar rack, comprising:
[0007] The main body of the shelf includes multiple uprights, multiple shelves and multiple sets of storage frames. The multiple shelves are horizontally installed between the multiple uprights at intervals. Each set of storage frames is provided with multiple frames. The multiple storage frames in each set are respectively arranged at intervals on the upper surface of each shelf. The opposite side walls of the storage frames have insertion slots.
[0008] A moving shelf assembly is provided, wherein multiple moving shelf assemblies are provided, each moving shelf assembly is installed at a predetermined distance above each shelf. The moving shelf assembly includes an electric telescopic rod, a moving frame, a pair of moving rods, a moving plate, and an electric telescopic column. The two ends of the electric telescopic rod are connected to the moving plate and the moving frame. The pair of moving rods are slidably placed on the lower end face of the moving frame. The end of the moving rod has a plug-in post, which is adapted to the plug-in slot. The electric telescopic column is connected to the shelf and the moving plate.
[0009] In a further technical solution, the moving frame assembly also includes a rotating rod and a driving member. The rotating rod is provided with opposing threads, and the moving rod has a threaded hole at one end away from the plug-in post. The rotating rod is threadedly connected to the threaded hole, and the rotating rod is rotatably mounted on the moving frame. The output shaft of the driving member is connected to the rotating rod, and the driving member is mounted on the moving frame.
[0010] In a further technical solution, the main body of the shelf also includes multiple pairs of support plates, the two ends of which are rotatably mounted on a pair of opposite uprights. Each pair of support plates is positioned above each set of storage frames, and the distance between a pair of support plates is less than the length of the storage frame.
[0011] In a further technical solution, the main body of the shelf also includes multiple sets of rotating columns, each set of rotating columns having multiple columns, and each set of multiple rotating columns being rotatably and spaced apart from each of the storage frames.
[0012] In a further technical solution, mounting holes are provided at both ends of the support plate, and multiple spaced mounting posts are provided on the end face of the upright near the storage frame. Each mounting post is inserted into each mounting hole, and a limit plate is provided at a predetermined distance below each mounting post on the upright. The lower end face of the storage frame is in contact with the limit plate.
[0013] A further technical solution is that the upper surface of the shelf is provided with multiple sets of limiting members, each set of limiting members is provided with multiple members, and each storage frame is placed between each set of limiting members.
[0014] Compared with the prior art, the beneficial effects of this utility model are:
[0015] This utility model features a movable shelf assembly, which includes an electric telescopic rod, a movable shelf, a pair of movable rods, a movable plate, and an electric telescopic column. The two ends of the electric telescopic rod are connected to the movable plate and the movable shelf. The pair of movable rods are slidably positioned on the lower surface of the movable shelf, and each movable rod has a connecting post at its end that fits into a connecting slot. The electric telescopic column is connected to the shelf and the movable plate. Upon activation, the electric telescopic column moves the movable plate and the movable shelf directly above the corresponding storage frame; the activated electric telescopic rod then moves the movable shelf... The conveyor belt moves downward until the insertion post at the end of the conveyor belt aligns with the insertion slot; the conveyor belt moves away from each other until the insertion post is inserted into the insertion slot and the side wall of the conveyor belt is in contact with the side wall of the storage frame; the electric telescopic rod drives the conveyor frame and the conveyor belt to move upward, and the storage frame moves upward; the electric telescopic column drives the conveyor plate to move towards the worker, at which point the worker can take out the material in the storage frame, which is simple to operate; and during the movement of the storage frame, there is no contact with other storage frames, which reflects the degree of automation of the equipment;
[0016] This utility model comprises a support plate and rotating columns. The two ends of the support plate are rotatably mounted to a pair of opposite uprights, with each pair of support plates positioned above each set of storage frames. Multiple rotating columns from each set are rotatably and spaced apart from each storage frame. Mounting holes are provided at both ends of the support plate. Multiple spaced mounting columns are provided on the end face of the uprights near the storage frame, with each mounting column inserted into a mounting hole. A limit plate is positioned at a predetermined distance below each mounting column on the uprights, and the lower end face of the storage frame is in contact with the limit plate. When the electric telescopic rod moves the storage frame upward, the upper surface of the storage frame lifts a pair of support plates, causing the support plates to rotate axially around the mounting column. As the storage frame continues to move upward, under the action of gravity, the support plates rotate in the opposite direction until they are in contact with the limiting plate. Subsequently, the electric telescopic rod moves the storage frame downward until the lower surface of the storage frame is in contact with the rotating column. In this way, by setting up support plates, the storage frame is prevented from falling during movement. Furthermore, by setting up rotating columns, the friction between the storage frame and the support plates is reduced, thus extending the service life of the equipment.
[0017] To more clearly illustrate the structural features and effects of this utility model, the following detailed description of this utility model is provided in conjunction with the accompanying drawings and specific embodiments. Attached Figure Description
[0018] Figure 1 This is a three-dimensional schematic diagram of the present invention;
[0019] Figure 2 This is a partial exploded view of the present invention;
[0020] Figure 3 This is a partial exploded view of the frame-shifting assembly of this utility model.
[0021] In the diagram: 1. Shelf body; 11. Upright pole; 111. Mounting column; 112. Limiting plate; 12. Shelf; 121. Limiting component; 13. Storage frame; 131. Insertion slot; 14. Support plate; 141. Mounting hole; 15. Rotating column; 2. Moving shelf assembly; 21. Electric telescopic rod; 22. With moving shelf; 23. With moving rod; 231. Insertion column; 232. Threaded hole; 24. With moving plate; 25. Electric telescopic column; 26. Rotating rod; 27. Drive component. Detailed Implementation
[0022] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0023] The specific implementation of this utility model will be described in detail below with reference to specific embodiments.
[0024] like Figures 1 to 3 As shown, this utility model embodiment provides a workshop busbar rack, including:
[0025] The shelving body 1 includes multiple uprights 11, multiple shelves 12 and multiple sets of storage frames 13. The multiple shelves 12 are horizontally installed between the multiple uprights 11 at intervals. Each set of storage frames 13 is provided with multiple frames. The multiple storage frames 13 in each set are respectively arranged at intervals on the upper surface of each shelf 12. The opposite side walls of the storage frames 13 all have insertion slots 131.
[0026] The moving shelf assembly 2 is provided in multiple ways. Each moving shelf assembly 2 is installed at a predetermined distance above each shelf 12. The moving shelf assembly 2 includes an electric telescopic rod 21, a moving frame 22, a pair of moving rods 23, a moving plate 24, and an electric telescopic column 25. The two ends of the electric telescopic rod 21 are connected to the moving plate 24 and the moving frame 22. The pair of moving rods 23 are slidably placed on the lower end face of the moving frame 22. The ends of the moving rods 23 have plug-in posts 231, which are adapted to plug-in slots 131. The electric telescopic column 25 is connected to the shelf 12 and the moving plate 24.
[0027] In this embodiment, when a worker needs to retrieve a storage frame 13 located deep within the shelf 12, the activated electric telescopic column 25 moves the conveyor belt 24 and conveyor frame 22 directly above the corresponding storage frame 13. The activated electric telescopic rod 21 moves the conveyor frame 22 and conveyor rod 23 downwards until the insertion post 231 at the end of the conveyor rod 23 aligns with the insertion slot 131. The conveyor rod 23 moves away from each other until the insertion post 231 is inserted into the insertion slot 131, and the side wall of the conveyor rod 23 is in contact with the side wall of the storage frame 13. Then, the electric telescopic rod 21 moves the conveyor frame 22 and conveyor rod 23 upwards, thereby moving the storage frame 13 upwards. Subsequently, the electric telescopic column 25 moves the conveyor belt 24 toward the worker, at which point the worker can retrieve the material from the storage frame 13. The operation is simple, and during the movement of the storage frame 13, there is no contact with other storage frames 13, demonstrating the degree of automation of the equipment.
[0028] Specifically, the shifting frame assembly 2 also includes a rotating rod 26 and a driving member 27. The rotating rod 26 is provided with opposing threads. The shifting rod 23 has a threaded hole 232 at one end away from the insertion post 231. The rotating rod 26 is threadedly connected to the threaded hole 232. The rotating rod 26 is rotatably mounted on the shifting frame 22. The output shaft of the driving member 27 is connected to the rotating rod 26. The driving member 27 is mounted on the shifting frame 22.
[0029] In this embodiment, the driving member 27 drives the rotating rod 26 to rotate around its own axis, thereby driving a pair of moving rods 23 to move away from each other until the insertion post 231 is inserted into the insertion slot 131 and the side wall of the moving rod 23 is in contact with the side wall of the storage frame 13; by setting the rotating rod 26 and the driving member 27, the degree of automation of the equipment is reflected.
[0030] Specifically, the main body of the shelf 1 also includes multiple pairs of support plates 14. The two ends of the support plates 14 are rotatably mounted on a pair of opposite uprights 11. Each pair of support plates 14 is positioned above each set of storage frames 13, and the distance between a pair of support plates 14 is less than the length of the storage frame 13.
[0031] Specifically, the main body of the shelf 1 also includes multiple sets of rotating columns 15, each set of rotating columns 15 having multiple columns, and each set of multiple rotating columns 15 is rotatably and spaced apart from each storage frame 13.
[0032] Specifically, the support plate 14 is provided with mounting holes 141 at both ends, and the upright 11 is provided with a plurality of spaced mounting posts 111 on one end face near the storage frame 13. Each mounting post 111 is inserted into each mounting hole 141. A limit plate 112 is provided at a predetermined distance below each mounting post 111, and the lower end face of the storage frame 13 is in contact with the limit plate 112.
[0033] In this embodiment, when the electric telescopic rod 21 moves the storage frame 13 upward, the upper surface of the storage frame 13 lifts up a pair of support plates 14, causing the support plates 14 to rotate axially around the mounting column 111. As the storage frame 13 continues to move upward, under the action of gravity, the support plates 14 rotate in the opposite direction until they are in contact with the limiting plate 112. Subsequently, the electric telescopic rod 21 moves the storage frame 13 downward until the lower surface of the storage frame 13 is in contact with the rotating column 15. In this way, by setting the support plates 14, the storage frame 13 is prevented from falling when it moves. Furthermore, by setting the rotating column 15, the friction between the storage frame 13 and the support plates 14 is reduced, thus extending the service life of the equipment.
[0034] Specifically, the upper surface of the shelf 12 is provided with multiple sets of limiting members 121, each set of limiting members 121 is provided with multiple members, and each storage frame 13 is placed between each set of limiting members 121.
[0035] In this embodiment, in the initial state, each storage frame 13 is placed between each set of limiting members 121 on each shelf 12, and the material is placed in the storage frame 13; by setting the limiting members 121, the storage frame 13 is prevented from shifting, thereby ensuring the stability of the storage frame 13 and the material.
[0036] The working principle of this utility model is as follows:
[0037] In the initial state, each storage box 13 is placed between each set of limiting members 121 on each shelf 12, and the material is placed in the storage box 13; by setting the limiting members 121, the storage box 13 is prevented from shifting, thereby ensuring the stability of the storage box 13 and the material.
[0038] When a worker needs to retrieve a storage frame 13 located deeper on shelf 12, the activated electric telescopic column 25 moves the sliding plate 24 and sliding bracket 22 to directly above the corresponding storage frame 13; the activated electric telescopic rod 21 moves the sliding bracket 22 and sliding rod 23 downwards until the insertion post 231 at the end of the sliding rod 23 aligns with the insertion slot 131; subsequently, the activated drive unit 27 drives the rotating rod 26 to rotate around its own axis, thereby moving a pair of sliding rods 23 in a direction away from each other until the insertion post 231 is inserted into the insertion slot 131, and the side wall of the sliding rod 23 is in contact with the side wall of the storage frame 13; by setting the sliding rod 23, the storage frame 13 and the sliding plate 24 are fixed together;
[0039] Then, the electric telescopic rod 21 drives the conveyor frame 22 and the conveyor rod 23 to move upward, which in turn drives the storage frame 13 to move upward; subsequently, the electric telescopic column 25 drives the conveyor plate 24 to move towards the worker, at which point the worker can take out the material in the storage frame 13; during the movement of the storage frame 13, there is no contact with other storage frames 13, which reflects the degree of automation of the equipment.
[0040] Furthermore, when the electric telescopic rod 21 moves the storage frame 13 upward, the upper surface of the storage frame 13 lifts up a pair of support plates 14, causing the support plates 14 to rotate axially around the mounting column 111. As the storage frame 13 continues to move upward, under the action of gravity, the support plates 14 rotate in the opposite direction until they are in contact with the limiting plate 112. Subsequently, the electric telescopic rod 21 moves the storage frame 13 downward until the lower surface of the storage frame 13 is in contact with the rotating column 15. In this way, by setting the support plates 14, the storage frame 13 is prevented from falling when it moves. Furthermore, by setting the rotating column 15, the friction between the storage frame 13 and the support plates 14 is reduced, thus extending the service life of the equipment.
[0041] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A workshop motherboard rack, characterized in that, include: The shelf body (1) includes multiple uprights (11), multiple shelves (12) and multiple sets of storage frames (13). The multiple shelves (12) are horizontally installed between the multiple uprights (11) at intervals. Each set of storage frames (13) is provided with multiple frames. The multiple storage frames (13) in each set are respectively arranged at intervals on the upper surface of each shelf (12). The opposite side walls of the storage frames (13) are provided with insertion slots (131). A moving shelf assembly (2) is provided in multiple ways. Each moving shelf assembly (2) is installed at a predetermined distance above each shelf (12). The moving shelf assembly (2) includes an electric telescopic rod (21), a moving shelf (22), a pair of moving rods (23), a moving plate (24), and an electric telescopic column (25). The two ends of the electric telescopic rod (21) are connected to the moving plate (24) and the moving shelf (22). The pair of moving rods (23) are slidably placed on the lower end face of the moving shelf (22). The end of the moving rod (23) has a plug-in post (231). The plug-in post (231) is adapted to the plug-in slot (131). The electric telescopic column (25) is connected to the shelf (12) and the moving plate (24).
2. The workshop motherboard rack according to claim 1, characterized in that: The moving frame assembly (2) further includes a rotating rod (26) and a driving member (27). The rotating rod (26) is provided with opposing threads. The moving rod (23) has a threaded hole (232) at one end away from the plug post (231). The rotating rod (26) is threadedly connected to the threaded hole (232). The rotating rod (26) is rotatably mounted on the moving frame (22). The output shaft of the driving member (27) is connected to the rotating rod (26). The driving member (27) is mounted on the moving frame (22).
3. The workshop motherboard rack according to claim 2, characterized in that: The main body of the shelf (1) also includes multiple pairs of support plates (14), the two ends of which are rotatably mounted on a pair of opposite uprights (11). Each pair of support plates (14) is positioned above each set of storage frames (13), and the distance between a pair of support plates (14) is less than the length of the storage frame (13).
4. A workshop motherboard rack according to claim 3, characterized in that: The main body of the shelf (1) also includes multiple sets of rotating columns (15), each set of rotating columns (15) is provided with multiple, and the multiple rotating columns (15) of each set are rotatably and spaced apart from each of the storage frames (13).
5. A workshop motherboard rack according to claim 4, characterized in that: The support plate (14) has mounting holes (141) at both ends. The upright (11) has a plurality of spaced mounting posts (111) on one end face near the storage frame (13). Each mounting post (111) is inserted into each mounting hole (141). The upright (11) has a limit plate (112) at a predetermined distance below each mounting post (111). The lower end face of the storage frame (13) is in contact with the limit plate (112).
6. A workshop motherboard rack according to claim 4, characterized in that: The upper surface of the shelf (12) is provided with multiple sets of limiting members (121), each set of limiting members (121) is provided with multiple, and each of the storage frames (13) is placed between each set of limiting members (121).