Energy storage container mounting rack

By designing a combination of sliding frame components and fixed components, multi-directional adjustment of the energy storage container mounting rack is achieved, solving the problem of limited lateral and longitudinal adjustment in existing technologies and improving the space utilization and adaptability of the battery pack.

CN224225795UActive Publication Date: 2026-05-12WUHAN DESHENG MACHINERY MANUFACTURING CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
WUHAN DESHENG MACHINERY MANUFACTURING CO LTD
Filing Date
2025-04-22
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

Existing energy storage container mounting racks cannot be adjusted in multiple directions, both horizontally and vertically, making it difficult to accommodate battery packs of different specifications, resulting in low space utilization.

Method used

An energy storage container mounting rack was designed. By combining sliding frame components and fixed components, the horizontal and vertical spacing can be adjusted. The position of the load-bearing plate can be adjusted by using movable partition components and through-hole structure to adapt to the placement requirements of different battery packs.

Benefits of technology

It achieves multi-directional adjustment of the mounting bracket, improves the space utilization of the battery pack, adapts to the energy storage needs of various battery packs, and has a simple and reliable structure that is easy to assemble and disassemble.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of mounting frames, and discloses an energy storage container mounting frame which comprises an outer frame, a plurality of positioning holes distributed up and down are formed in the two sides of the outer frame, a plurality of sliding frame assemblies are arranged in the outer frame in a sliding mode, and each sliding frame assembly comprises two longitudinal square pipes installed on the inner side edge of the outer frame in a sliding mode. Through transverse sliding connection between the sliding frame assemblies and the outer frame, the number of the sliding frame assemblies can be increased or decreased, the transverse distance between the multiple sliding frame assemblies can be adjusted in cooperation with the fixing assemblies and the positioning holes, and meanwhile through cooperation of the through holes and the movable partition plate assemblies, the sliding frame assemblies can be conveniently and rapidly adjusted. According to the mounting rack for the energy storage container, the distance between the bearing plates can be longitudinally adjusted, the mounting rack for the energy storage container is simple in overall structure, reliable in mounting and convenient to disassemble and assemble, the energy storage requirements of various battery packs can be met, and the utilization rate of the internal space of the energy storage container is increased.
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Description

Technical Field

[0001] This utility model relates to the field of mounting rack technology, and in particular to an energy storage container mounting rack. Background Technology

[0002] An energy storage container is a container structure that houses multiple battery modules. To ensure that as many battery modules as possible can be stored, special mounting racks are usually installed inside the energy storage container to neatly place the battery packs on the mounting racks for centralized storage.

[0003] Chinese Patent Publication No. CN220290989U discloses an adjustable mounting bracket for an energy storage container, including a sliding bracket. The sliding bracket is arranged in two rows, with multiple brackets in each row, and the two rows of sliding brackets are distributed from top to bottom. The bottom of the upper sliding bracket is fixed with a limit box by bolts to support battery packs of different sizes. The scissor-type telescopic bracket connected to the horizontal plate is resisted by the horizontal plate, which facilitates the sliding bracket to pull the scissor-type telescopic bracket to extend. The limit box limits the battery pack and prevents the battery pack from shifting to the sides.

[0004] The existing technical solution has the following shortcomings: the device mainly achieves the effect of adjusting the distance between the limit boxes by the lateral telescopic movement of the scissor-type telescopic frame. However, the scissor-type telescopic frame in this structure can only be adjusted laterally and cannot be adjusted longitudinally, which limits the adjustable range of the mounting frame and makes it difficult to adapt to more battery packs. Therefore, there is room for improvement. Utility Model Content

[0005] The technical problem to be solved by this utility model is to overcome the shortcomings of the prior art in which it is not easy to adjust the placement spacing on the mounting frame in multiple directions, both horizontally and vertically. This utility model proposes an energy storage container mounting frame.

[0006] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is: an energy storage container mounting rack, comprising: an outer frame, with multiple positioning holes distributed vertically on both sides of the outer frame, multiple sliding frame assemblies slidably arranged inside the outer frame, each sliding frame assembly including two longitudinal square tubes slidably mounted on the inner edge of the outer frame, two vertically distributed H-shaped tubes welded between the longitudinal square tubes, multiple through holes being provided inside each longitudinal square tube, multiple reinforcing seats being welded on both sides of each longitudinal square tube, each reinforcing seat being located below adjacent through holes, movable partition assemblies connecting adjacent through holes at the front and rear, and fixing assemblies connecting both sides of the H-shaped tubes to adjacent positioning holes.

[0007] Preferably, the fixing assembly includes fixing plate A and fixing plate B welded to the outside of the H-shaped tube. Fixing plate A and fixing plate B are arranged in parallel front and back. A reinforcing bolt is connected through fixing plate A and fixing plate B. One end of the reinforcing bolt passes through the interior of the adjacent positioning hole. A locking nut is threaded to the end of the reinforcing bolt near the positioning hole. The inner side of the locking nut abuts against the outer wall of the outer frame.

[0008] Preferably, the diameter of the reinforcing bolt is matched with the inner diameter of the positioning hole, and the reinforcing bolt and the fixing plate A and fixing plate B are movably connected.

[0009] Preferably, the movable partition assembly includes a load-bearing plate, with connecting plates fixed at both ends of the inner side of the load-bearing plate. The inner sides of the connecting plates extend into the interior of adjacent through holes and are fixed with limiting plates. The bottom end of the load-bearing plate abuts against the top end of the reinforcing seat.

[0010] Preferably, the load-bearing plate, the limiting plate, and the connecting plate are an integrated structure, and the load-bearing plate is horizontally distributed on the sliding frame assembly.

[0011] Preferably, the connecting plate is located at one-quarter of the length of the limiting plate, the length of the limiting plate is greater than the length of the through hole, and the length of the through hole is less than three-quarters of the length of the limiting plate but greater than one-quarter of the length of the limiting plate.

[0012] Preferably, multiple reinforcing rings are evenly fitted on the outside of the load-bearing plate, and the reinforcing rings slide up and down along the outer wall of the load-bearing plate, with the reinforcing rings and reinforcing seats being distributed alternately.

[0013] Compared with the prior art, the beneficial effects of this utility model include:

[0014] The number of sliding frame components can be adjusted by the lateral sliding connection between the sliding frame components and the outer frame. With the help of fixing components and positioning holes, the lateral spacing between multiple sliding frame components can be adjusted. At the same time, the spacing between multiple load-bearing plates can be adjusted longitudinally by using through holes and movable partition components. The disassembly and assembly work does not require the use of other tools, making it more convenient to operate. The size of the placement space on the load-bearing plates can be adjusted at will. Moreover, the overall structure of the energy storage container mounting rack is simple, reliable to install, and easy to disassemble and assemble. It can adapt to the energy storage needs of various battery packs and improve the utilization rate of the internal space of the energy storage container. Attached Figure Description

[0015] The disclosure of this utility model is illustrated with reference to the accompanying drawings. It should be understood that the drawings are for illustrative purposes only and are not intended to limit the scope of protection of this utility model. In the drawings, the same reference numerals are used to refer to the same parts. Wherein:

[0016] Figure 1The schematic diagram shows a three-dimensional structural schematic diagram according to one embodiment of the present invention;

[0017] Figure 2 The schematic diagram shows a three-dimensional structural schematic of a sliding frame assembly according to one embodiment of the present invention;

[0018] Figure 3 The schematic diagram shows a three-dimensional structural view of the movable partition assembly according to one embodiment of the present invention;

[0019] Figure 4 The schematic diagram shows a three-dimensional structural schematic of a movable partition assembly according to one embodiment of the present invention;

[0020] Figure 5 The schematic diagram shows a cross-sectional view of a longitudinal square tube according to one embodiment of the present invention.

[0021] Figure 6 The illustration schematically shows a method proposed according to one embodiment of the present invention. Figure 3 A schematic diagram of the structure at point A in the middle.

[0022] The following are the labeling elements in the diagram: 1. Outer frame; 2. Positioning hole; 3. Sliding frame assembly; 31. Longitudinal square tube; 32. H-shaped tube; 33. Through hole; 34. Reinforcing seat; 4. Movable partition assembly; 41. Load-bearing plate; 42. Limiting plate; 43. Connecting plate; 5. Fixing assembly; 51. Fixing plate A; 52. Fixing plate B; 53. Reinforcing bolt; 54. Locking nut; 6. Reinforcing ring. Detailed Implementation

[0023] It is readily understood that, based on the technical solution of this utility model, those skilled in the art can propose various interchangeable structural methods and implementations without altering the essential spirit of this utility model. Therefore, the following detailed embodiments and accompanying drawings are merely illustrative descriptions of the technical solution of this utility model and should not be considered as the entirety of this utility model or as limitations or restrictions on the technical solution of this utility model.

[0024] To address the shortcomings of existing technologies in terms of the difficulty in multi-directional adjustment of the spacing on the mounting bracket, both horizontally and vertically, the following solution is disclosed, specifically as follows: Figures 1-6 As shown:

[0025] An energy storage container mounting rack includes: an outer frame 1, with multiple positioning holes 2 distributed vertically on both sides of the outer frame 1; multiple sliding frame assemblies 3 are slidably arranged inside the outer frame 1; each sliding frame assembly 3 includes two longitudinal square tubes 31 slidably mounted on the inner edge of the outer frame 1; two vertically distributed H-shaped tubes 32 are welded between the longitudinal square tubes 31; multiple through holes 33 are provided inside each longitudinal square tube 31; multiple reinforcing seats 34 are welded to both sides of each longitudinal square tube 31; each reinforcing seat 34 is located below an adjacent through hole 33; movable partition assemblies 4 are connected between adjacent through holes 33 at the front and rear; and fixing assemblies 5 are connected between both sides of the H-shaped tubes 32 and adjacent positioning holes 2.

[0026] The fixing component 5 includes fixing plate A51 and fixing plate B52 welded to the outside of H-shaped tube 32. Fixing plate A51 and fixing plate B52 are arranged in parallel front and back. A reinforcing bolt 53 is connected through the fixing plate A51 and fixing plate B52. One end of the reinforcing bolt 53 penetrates into the interior of the adjacent positioning hole 2. A locking nut 54 is threaded to the end of the reinforcing bolt 53 near the positioning hole 2. The inner side of the locking nut 54 abuts against the outer wall of the outer frame 1.

[0027] The diameter of the reinforcing bolt 53 is compatible with the inner diameter of the positioning hole 2, and the reinforcing bolt 53 is movably connected to the fixing plate A51 and the fixing plate B52.

[0028] The movable partition assembly 4 includes a load-bearing plate 41. Both the left and right ends of the inner side of the load-bearing plate 41 are fixed with connecting plates 43. The inner side of the connecting plates 43 extends into the interior of the adjacent through holes 33 and is fixed with a limiting plate 42. The bottom end of the load-bearing plate 41 abuts against the top end of the reinforcing seat 34.

[0029] The load-bearing plate 41, the limiting plate 42 and the connecting plate 43 are an integral structure, and the load-bearing plate 41 is horizontally distributed on the sliding frame assembly 3;

[0030] The connecting plate 43 is located at one-quarter of the length of the limiting plate 42. The length of the limiting plate 42 is greater than the length of the through hole 33. The length of the through hole 33 is less than three-quarters of the length of the limiting plate 42 and greater than one-quarter of the length of the limiting plate 42.

[0031] Multiple reinforcing rings 6 are evenly fitted on the outside of the load-bearing plate 41. The reinforcing rings 6 slide up and down along the outer wall of the load-bearing plate 41, and the reinforcing rings 6 and the reinforcing seats 34 are alternately distributed.

[0032] In this embodiment, a rectangular frame 1 is pre-assembled using steel plates. Multiple through holes 33 are made through the longitudinal square tubes 31, and a corresponding number of reinforcing seats 34 are welded on them. Two longitudinal square tubes 31 and two H-shaped tubes 32 are welded together to form a rectangular structure. The sliding frame assembly 3 is pushed into the outer frame 1 from the side. According to the width requirements of the battery pack, the sliding frame assembly 3 is placed in a suitable position in the outer frame 1. The reinforcing bolts 53 are sequentially passed through the fixing plate B52, the fixing plate B52 and the adjacent positioning holes 2. The locking nuts 54 are tightened to connect and fix the sliding frame assembly 3 and the outer frame 1. The number of sliding frame assemblies 3 can be increased or decreased according to the overall size of the outer frame 1 and the number of battery packs to be placed.

[0033] Take the load-bearing plate 41, slide the reinforcing ring 6 upwards above the through hole 33, first insert the top of the limiting plate 42 at an angle into the corresponding through hole 33, lift the load-bearing plate 41 upwards and adjust it from an angle to a vertical position, place the load-bearing plate 41 downwards, so that the bottom end of the limiting plate 42 is inserted into the through hole 33, so that the connecting plate 43 passes through the entrance of the through hole 33, so that the bottom end of the load-bearing plate 41 is located on the reinforcing seat 34, slide the reinforcing ring 6 downwards and intercept the through hole 33 to increase the support strength of the limiting plate 42 and the outer frame 1 when the load-bearing plate 41 bears the load, and adjust the position of the load-bearing plate 41 in time according to the height requirements of the battery pack, so that a space of a certain size is formed between the left and right adjacent load-bearing plates 41, and place the battery pack directly on the left and right adjacent load-bearing plates 41 to meet the installation and placement requirements of the battery pack, and due to the action of the longitudinal square tube 31, there is a gap space between the left and right adjacent battery packs to ensure the heat dissipation requirements of the foundation.

[0034] The technical scope of this utility model is not limited to the content described above. Those skilled in the art can make various modifications and variations to the above embodiments without departing from the technical concept of this utility model, and all such modifications and variations should fall within the protection scope of this utility model.

Claims

1. An energy storage container mounting rack, characterized in that, include: The outer frame has multiple positioning holes distributed vertically on both sides. Multiple sliding frame assemblies are slidably arranged inside the outer frame. Each sliding frame assembly includes two longitudinal square tubes slidably mounted on the inner edge of the outer frame. Two vertically distributed H-shaped tubes are welded between the longitudinal square tubes. Multiple through holes are provided inside each longitudinal square tube. Multiple reinforcing seats are welded to both sides of each longitudinal square tube. The reinforcing seats are all located below adjacent through holes. Movable partition assemblies are connected between adjacent through holes at the front and rear. Fixed assemblies are connected between both sides of each H-shaped tube and adjacent positioning holes.

2. The energy storage container mounting rack according to claim 1, characterized in that: The fixing assembly includes fixing plate A and fixing plate B welded to the outside of the H-shaped tube. Fixing plate A and fixing plate B are arranged in parallel front and back. A reinforcing bolt is connected through fixing plate A and fixing plate B. One end of the reinforcing bolt passes through the interior of an adjacent positioning hole. A locking nut is threaded to the end of the reinforcing bolt near the positioning hole. The inner side of the locking nut abuts against the outer wall of the outer frame.

3. The energy storage container mounting rack according to claim 2, characterized in that: The diameter of the reinforcing bolt is compatible with the inner diameter of the positioning hole, and the reinforcing bolt is movably connected to the fixing plate A and the fixing plate B.

4. The energy storage container mounting rack according to claim 1, characterized in that: The movable partition assembly includes a load-bearing plate, and connecting plates are fixed to both the left and right ends of the inner side of the load-bearing plate. The inner side of each connecting plate extends into the interior of an adjacent through hole and is fixed with a limiting plate. The bottom end of the load-bearing plate abuts against the top end of the reinforcing seat.

5. The energy storage container mounting rack according to claim 4, characterized in that: The load-bearing plate, the limiting plate, and the connecting plate are an integral structure, and the load-bearing plate is horizontally distributed on the sliding frame assembly.

6. The energy storage container mounting rack according to claim 4, characterized in that: The connecting plate is located at one-quarter of the length of the limiting plate. The length of the limiting plate is greater than the length of the through hole, and the length of the through hole is less than three-quarters of the length of the limiting plate but greater than one-quarter of the length of the limiting plate.

7. The energy storage container mounting rack according to claim 4, characterized in that: Multiple reinforcing rings are evenly fitted around the outside of the load-bearing plate. The reinforcing rings slide up and down along the outer wall of the load-bearing plate, and the reinforcing rings and reinforcing seats are alternately distributed.