Copper bar goods shelf

By designing a copper busbar rack with multi-layer support columns and positioning hole groups, the problems of low space utilization and inaccurate copper busbar positioning in traditional racks have been solved, achieving efficient storage and processing positioning.

CN223507170UActive Publication Date: 2025-11-04GUANGZHOU BANJING ELECTRONIC COPPER PROD CO LTD
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Patent Information

Application Number
CN202423046035.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-10
Publication Date
2025-11-04
Estimated Expiration
2034-12-10

AI Technical Summary

Technical Problem

Traditional copper busbar storage racks have low space utilization, cannot flexibly adjust storage capacity, and copper busbars are prone to misalignment and tilting, affecting processing positioning and the identification and grasping of automated equipment.

Method used

Design a copper busbar rack comprising multiple dispersed first support columns and a group of positioning holes along the width direction. The support columns are stacked to form a multi-layer structure, and the copper busbar is positioned according to the width of the copper busbar by a detachable positioning shaft, ensuring the accurate positioning of the copper busbar in the rack.

Benefits of technology

It improves storage space utilization, ensures accurate positioning of copper busbars during processing, facilitates identification and gripping by mechanical grippers and automated equipment, and enhances processing efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of copper bar processing, and discloses a copper bar goods shelf which comprises a goods shelf body, a plurality of scattered first supporting columns are arranged on the goods shelf body, and the goods shelf body can be supported on the first supporting columns of another goods shelf body through the first supporting columns of the goods shelf body to form a stacked state. The goods shelf body is provided with a plurality of positioning hole sets arranged at intervals in the width direction of the goods shelf body, each positioning hole set comprises a plurality of positioning holes formed in the length direction of the goods shelf body, and a positioning shaft is detachably inserted into each positioning hole. The copper bar goods shelf can be placed in a stacked mode, the width of the copper bar goods shelf can be adjusted according to the stored copper bars, so that the copper bars with different widths can be effectively and regularly placed in the goods shelf body, the positioning accuracy of the copper bars in the machining process is guaranteed, a mechanical gripper and other automatic equipment can conveniently recognize and grab the copper bars, and the machining efficiency is improved.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to copper bar processing technical field, specifically relates to a copper bar shelf. BACKGROUND

[0002] In the traditional bus duct industry, copper bar as an important conductive material is widely used in electrical equipment, power transmission and distribution systems and various electronic devices. Copper bar is a kind of slender profile, at present, it is usually stored by the shelf composed of three-dimensional frame and multiple layers of cross beams fixed in the frame, and this design leads to low storage space utilization, cannot flexibly adjust the storage capacity according to actual demand, increases the difficulty and cost of warehouse management. In addition, since the width of copper bar is various, and the partition spacing of traditional shelf is often fixed, which leads to the phenomenon that copper bar is prone to misplacement, inclination or even stacking disorder during placement. This not only increases the risk of copper bar damage, but also makes the positioning of copper bar inaccurate in the subsequent processing process, which is not convenient for the recognition and grabbing of mechanical gripper and other automatic equipment, and affects the processing efficiency. SUMMARY

[0003] The utility model aims at providing a copper bar shelf which can be stacked and placed, and can adjust its width according to the stored copper bar.

[0004] To achieve the above-mentioned purpose, the following technical solutions are implemented.

[0005] The utility model embodiment provides a kind of copper bar shelf, the copper bar shelf includes shelf body;

[0006] The first support column is arranged on the shelf body, and the shelf body can be supported on the first support column of another shelf body by the first support column of itself to form a stacked state.

[0007] The shelf body is provided with a plurality of positioning hole groups arranged at intervals along the width direction of itself, each positioning hole group includes a plurality of positioning holes opened along the length direction of the shelf body, and a positioning shaft is detachably inserted into each positioning hole.

[0008] In some embodiments, the copper bar shelf further includes at least two vertically arranged positioning members, the shelf body is provided with at least two matching positions matched with the positioning members, the matching positions and the positioning members are one-to-one correspondingly arranged, and the shelf body is positioned on the positioning members through the matching positions.

[0009] In some embodiments, the matching positions are provided with two, and the two matching positions are centrally symmetrically arranged relative to the shelf body.

[0010] In some embodiments, the mating positions are provided at opposite ends of the shelf body along its diagonal extension direction.

[0011] In some embodiments, the mating position is a second support column disposed on the shelf body. The second support column is a vertical through-structure, and the shelf body is positioned by the second support column passing through the positioning member.

[0012] In some embodiments, the first support column is a square tube structure, and the first support column passes through the shelf body along the thickness direction of the shelf body.

[0013] In some embodiments, the rack body is further provided with at least two hoisting positions for hoisting by external hoisting equipment.

[0014] In some embodiments, the shelf body is provided with a connecting plate, and two limiting posts are provided between the connecting plate and the shelf body, and a limiting space is formed between the two limiting posts. The connecting plate corresponding to the limiting space is provided with a groove on the side of the shelf body near the shelf body, and the groove is the hoisting position.

[0015] In some embodiments, four lifting positions are provided, and the four lifting positions are evenly distributed around the perimeter of the rack body.

[0016] In some embodiments, the shelf body includes two first connecting rods and a plurality of second connecting rods, the two first connecting rods being arranged in parallel; the two ends of the second connecting rods are respectively connected to the two first connecting rods, and the second connecting rods are spaced apart, the length of the first connecting rod is greater than the length of the second connecting rod, the first support columns are distributed on the first connecting rods, and the positioning holes are provided on the second connecting rods.

[0017] The technical solution provided by this utility model has the following advantages and effects:

[0018] This copper busbar rack features a rack body with multiple distributed first support columns. These rack bodies are stacked using these first support columns to form a multi-layer rack structure, improving storage space utilization. The support columns also create space between stacked rack bodies for placing copper busbars, ensuring that each layer of the stacked rack can hold copper busbars. Furthermore, the rack body has multiple spaced positioning hole groups along its width, and each group includes multiple positioning holes along its length. Positioning shafts can be detachably inserted into these holes. By inserting the positioning shaft into the corresponding positioning hole of the rack body according to the width of the copper busbar to be placed, the copper busbar is contained within the rack body through the cooperation of the positioning shaft and the positioning hole. This effectively and neatly arranges copper busbars of different widths within the rack body, ensuring accurate positioning during processing, facilitating identification and gripping by mechanical grippers and other automated equipment, and improving processing efficiency. Attached Figure Description

[0019] Figure 1 This is a structural schematic diagram of the copper busbar rack according to an embodiment of the present utility model;

[0020] Figure 2 yes Figure 1 A schematic diagram of a copper busbar rack containing copper busbars;

[0021] Figure 3 This is a structural diagram of the copper busbar rack in an embodiment of the present invention, showing the rack body in a stacked state.

[0022] Explanation of reference numerals in the attached figures:

[0023] 10. Copper busbar shelving;

[0024] 1. Shelf body; 11. Mating position; 12. First connecting rod; 13. Second connecting rod; 14. Positioning hole; 2. First support column; 3. Positioning component; 4. Lifting position; 41. Connecting plate; 42. Limiting column; 5. Positioning shaft. Detailed Implementation

[0025] To facilitate understanding of this utility model, the specific embodiments of this utility model will be described in more detail below with reference to the accompanying drawings.

[0026] Unless otherwise specified or defined, the terms "first," "second," etc., used in this document are for distinguishing names only and do not represent a specific number or order.

[0027] Unless otherwise stated or defined, the term “and / or” as used herein includes any and all combinations of one or more of the associated listed items.

[0028] It should be noted that in this article, "fixed to" or "connected to" can mean directly fixed to or connected to a component, or indirectly fixed to or connected to a component.

[0029] This utility model embodiment provides a copper busbar shelf 10, such as Figures 1 to 3 As shown, the copper busbar rack 10 includes a rack body 1.

[0030] The shelf body 1 is provided with multiple dispersed first support columns 2. Each shelf body 1 can be supported by its own first support column 2 on the first support column 2 of another shelf body 1 to form a stacked state. That is, in two adjacent shelf bodies 1, the shelf body 1 located on the upper layer is supported by its own first support column 2 on the first support column 2 of the shelf body 1 located on the lower layer to form a stacked state. The first support columns 2 on the shelf body 1 can, on the one hand, enable multiple shelf bodies 1 to be stacked to form a multi-layer shelf structure, thereby improving the utilization of storage space. On the other hand, the supporting effect of the first support columns 2 also creates a space between the stacked shelf bodies 1 to facilitate the placement of copper busbars, so that each layer of the stacked shelf body 1 can store copper busbars. The shelf body 1 has multiple spaced positioning hole groups along its width direction. Each positioning hole group includes multiple positioning holes 14 along its length direction. A positioning shaft 5 can be detachably inserted into each positioning hole 14 to adjust the width of the copper busbars stored in the shelf body 1. Specifically, in the positioning hole group opened along its own width direction, the spacing between adjacent positioning hole groups can be the same or different, and can be adapted to various width specifications of copper busbars, so that copper busbars of different width specifications can be accommodated in one copper busbar rack 10, without any special restrictions. It should be noted that the rack body 1 is a square frame structure with a long end and a short end, with the length direction along its long end and the width direction along its short end. Each rack body 1 can store copper busbars of various widths, and stacked rack bodies 1 can also hold copper busbars of different widths. In a rack body 1, specifically according to the width of the copper busbar to be placed, the positioning shaft 5 is inserted into the positioning hole 14 of the positioning hole group at the corresponding width of the rack body 1. Thus, the copper busbar is confined on the rack body 1 by the cooperation of the positioning shaft 5 and the positioning hole 14, so as to effectively and neatly place copper busbars of different widths in the rack body 1, ensuring the positioning accuracy of the copper busbar during processing, facilitating the identification and gripping of mechanical grippers and other automated equipment, and improving processing efficiency.

[0031] In summary, the copper busbar rack 10, by setting up a rack body 1, on which multiple dispersed first support columns 2 are provided, and stacking the rack body 1 through the first support columns 2, can form a multi-layer rack structure, thereby improving the utilization rate of storage space. Combined with the rack body 1 having multiple spaced positioning hole groups along its width direction, each positioning hole group includes multiple positioning holes 14 opened along the length direction of the rack body 1, and positioning shafts 5 can be detachably inserted into the positioning holes 14. Therefore, according to the width of the copper busbar to be placed, the positioning shaft 5 can be inserted into the positioning hole 14 at the corresponding width of the rack body 1. Thus, the copper busbar can be confined on the rack body 1 by the cooperation of the positioning shaft 5 and the positioning hole 14, so as to effectively and neatly place copper busbars of different widths in the rack body 1, ensuring the positioning accuracy of the copper busbar during the processing, facilitating the identification and gripping of mechanical grippers and other automated equipment, and improving processing efficiency.

[0032] In some embodiments, such as Figure 1 As shown, the copper busbar rack 10 also includes at least two vertically arranged positioning elements 3. The rack body 1 has at least two mating positions 11 that cooperate with the positioning elements 3. The mating positions 11 are arranged one-to-one with the positioning elements 3, and the rack body 1 is positioned on the positioning elements 3 through the mating positions 11. Specifically, the positioning element 3 can be fixedly set on the ground or workbench, etc. Through the positioning function of the positioning element 3, when the rack body 1 is stacked, the rack body 1 is positioned on the positioning element 3 through the mating positions 11, so that the rack body 1 can be accurately positioned in the preset position, and the stacked rack body 1 can be accurately fixed on the positioning element 3, thereby ensuring the position and stacking accuracy of the rack body 1.

[0033] In some embodiments, such as Figure 1 As shown, there are two mating positions 11, which are arranged symmetrically with respect to the shelf body 1. The two mating positions 11 are arranged symmetrically with respect to the central axis of the shelf body 1, thereby enabling the shelf body 1 to be accurately positioned in a preset location within two-dimensional space. This simplifies the structure while achieving precise positioning of the shelf body 1.

[0034] Specifically, in this embodiment, the mounting positions 11 are provided at opposite ends of the shelf body 1 along its diagonal extension direction. It can be understood that providing the mounting positions 11 along the diagonal direction of the shelf body 1 allows for more accurate positioning of the shelf body 1 without affecting the placement of the copper busbars.

[0035] In some embodiments, such as Figure 3As shown, the mating position 11 is a second support column disposed on the shelf body 1. The second support column is a vertical through-type structure, and the shelf body 1 is positioned by the positioning member 3 through the second support column. The second support column can be a vertically through-type square tube structure, and the positioning member 3 can be inserted through the second support column. Adjacent shelf bodies 1 can also be supported by two of these second support columns abutting each other, working in conjunction with the first support column 2 to support the stacked shelf bodies 1 and improve the structural stability of the stacked shelf bodies 1. Furthermore, in other embodiments, the second support column is not limited to a square tube structure; other shapes of tube structures such as round tubes are also applicable, and no particular limitation is made here. In this embodiment, the positioning member 3 can be adapted to the structure of the second support member as a square column structure or a round column structure, as long as it can be inserted through the second support column, and no particular limitation is made here.

[0036] In some embodiments, the first support column 2 is a square tube structure, which passes through the shelf body 1 along its thickness direction. The shelf body 1 is a square frame with a certain thickness. The first support column 2 passing through the shelf body 1 along its thickness direction allows it to be installed at both the bottom and top. Through the support of the first support column 2, space is formed between two adjacent stacked shelf bodies 1 to facilitate the placement of copper busbars; that is, each layer of stacked shelf bodies 1 can store copper busbars.

[0037] In some embodiments, such as Figure 1As shown, the shelf body 1 includes two first connecting rods 12 and multiple second connecting rods 13. The two first connecting rods 12 are arranged in parallel. The two ends of the second connecting rods 13 are respectively connected to the two first connecting rods 12, and the second connecting rods 13 are spaced apart. The length of the first connecting rod 12 is greater than the length of the second connecting rod 13. Specifically, the second connecting rod 13 is provided with positioning holes 14, and the first support columns 2 are distributed on the first connecting rods 12. The first connecting rods 12 and the second connecting rods 13 are connected to form a long rectangular shelf structure to accommodate the structure of the copper busbar and support its placement. By providing the first support columns 2 on the two first connecting rods 12, the first support columns 2 can effectively prevent the copper busbar from being obstructed and can also form a barrier around the copper busbar to prevent it from sliding out. In addition, to improve the limiting effect on the width direction of the copper busbar, at least three second connecting rods 13 with positioning holes 14 are provided to work together to limit the width direction of the copper busbar at various positions, further improving the regularity of the copper busbar placement. In addition, the thickness of the second connecting rod 13 with the positioning hole 14 is the same as that of the first connecting rod 12, while the thickness of the second connecting rod 13 without the positioning hole 14 can be less than that of the first connecting rod 12. It is only used to prevent the copper busbar from deforming and does not bear the main load.

[0038] In some embodiments, such as Figure 1 As shown, the rack body 1 is also provided with at least two lifting positions 4 for external lifting equipment. These lifting positions 4 can be used by external lifting equipment such as overhead cranes for hooking and transferring, thereby enabling transfer from the warehouse to the processing location without manual handling, thus improving automation.

[0039] In some embodiments, such as Figure 1 As shown, the rack body 1 is provided with a connecting plate 41. Two limiting posts 42 are provided between the connecting plate 41 and the rack body 1, and a limiting space is formed between the two limiting posts 42. Corresponding to the limiting space, the connecting plate 41 is provided with a groove on the side near the rack body 1. The groove is the lifting position 4. Specifically, the connecting plate 41 is provided above the rack body 1 along the length direction of the rack body 1, and the opposite ends of the connecting plate 41 are respectively connected to the first support post 2. The height of the connecting plate 41 is lower than the height of the first support post 2, thereby avoiding the connecting plate 41 from obstructing the stacking of rack bodies 1. Two limiting posts 42 are provided between the connecting plate 41 and the rack body 1, and a limiting space is formed between the two limiting posts 42 for the hook of the overhead crane to enter. This can improve the support strength of the connecting plate 41 and facilitate the accurate hooking of the overhead crane at the groove of the connecting plate 41.

[0040] In some embodiments, such asFigure 1 As shown, four lifting positions 4 are provided, and the four lifting positions 4 are evenly arranged around the perimeter of the shelf body 1 so that the shelf body 1 can be smoothly lifted and transferred. Of course, in other embodiments, there may be two, three or other numbers of lifting positions 4, as long as the shelf body 1 can be smoothly lifted and transferred, and no special limitation is made here.

[0041] The above embodiments are not an exhaustive list based on the present invention, and there may be other embodiments not listed. Any substitutions and improvements made without departing from the concept of the present invention are within the protection scope of the present invention.

Claims

1. A copper busbar rack, characterized in that, The copper busbar rack includes the rack body; The shelf body is provided with multiple dispersed first support columns, and the shelf body can be supported by its own first support column on the first support column of another shelf body to form a stacked state; The shelf body is provided with a plurality of spaced positioning hole groups along its width direction. Each positioning hole group includes a plurality of positioning holes opened along the length direction of the shelf body itself. A positioning shaft can be detachably inserted into each positioning hole.

2. The copper busbar rack as described in claim 1, characterized in that, The copper busbar rack also includes at least two vertically arranged positioning components. The rack body has at least two mating positions that cooperate with the positioning components. The mating positions are arranged one-to-one with the positioning components. The rack body is positioned on the positioning components through the mating positions.

3. The copper busbar rack as described in claim 2, characterized in that, There are two mating positions, and the two mating positions are arranged symmetrically with respect to the shelf body.

4. The copper busbar rack as described in claim 3, characterized in that, The shelf body has mating positions at opposite ends along its diagonal extension direction.

5. The copper busbar rack as described in claim 2, characterized in that, The mating position is a second support column set on the shelf body. The second support column is a vertical through-structure, and the shelf body is positioned by the second support column passing through the positioning member.

6. The copper busbar rack as described in claim 1, characterized in that, The first support column is a square tube structure, and the first support column passes through the shelf body along the thickness direction of the shelf body.

7. The copper busbar rack as described in any one of claims 1-6, characterized in that, The rack body is also provided with at least two hoisting positions for external hoisting equipment.

8. The copper busbar rack as described in claim 7, characterized in that, The shelf body is provided with a connecting plate, and two limiting posts are provided between the connecting plate and the shelf body, and a limiting space is formed between the two limiting posts. The connecting plate corresponding to the limiting space is provided with a groove on the side of the shelf body that is close to the shelf body, and the groove is the hoisting position.

9. The copper busbar rack as described in claim 7, characterized in that, There are four hoisting positions, which are evenly distributed around the perimeter of the rack body.

10. The copper busbar rack as described in any one of claims 1-6, characterized in that, The shelf body includes two first connecting rods and multiple second connecting rods. The two first connecting rods are arranged in parallel. The two ends of the second connecting rods are respectively connected to the two first connecting rods, and the second connecting rods are spaced apart. The length of the first connecting rod is greater than the length of the second connecting rod. The first support columns are distributed on the first connecting rods, and the positioning holes are provided on the second connecting rods.