Reinforced energy storage battery cabinet sheet metal frame

CN224774060UActive Publication Date: 2026-09-18SHENZHEN XUJI PINEYMITE CABLE BRIDGE
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Patent Information

Application Number
CN202522192569.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-16
Publication Date
2026-09-18
Estimated Expiration
2035-10-16

AI Technical Summary

Technical Problem

该现场快速组装的储能柜电池框架,其能够不用焊接及螺栓连接即可将电池安置在电池框架内,安装方便,但缺乏对结构的加强及缓冲设计,存在刚度不足、应力集中风险高、抗震性能差等问题,且长期负载易导致结构疲劳,安全性和使用寿命较低

Benefits of technology

[0014] 1. This utility model incorporates a reinforcement system, including a grid of reinforcing ribs, shock-absorbing pads, columnar reinforcing ribs, a metal reinforcement plate, a stainless steel woven mesh, and thermal grease. In use, the grid of reinforcing ribs balances lightweight design with bending resistance, enhancing the overall rigidity of the frame through its grid distribution and dispersing localized stress during battery pack stacking. The shock-absorbing pads possess high elasticity and aging resistance, absorbing vibration energy from the battery modules and reducing mechanical impact damage to the sheet metal support plate. The columnar reinforcing ribs enhance the frame's load-bearing capacity and prevent deformation. The metal reinforcement plate covers critical stress areas, preventing fatigue cracks from long-term loads. The stainless steel woven mesh assists in heat dissipation and blocks the spread of flames during battery thermal runaway. The thermal grease fills the gaps within the sheet metal support plate, improving heat conduction efficiency. Thus, through multi-level reinforcement and rib design, this device significantly improves bending rigidity and heat dissipation efficiency while maintaining lightweight design, effectively buffering vibration impacts and extending the overall lifespan of the device.

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Abstract

The utility model discloses a kind of energy storage battery cabinet sheet metal frame with reinforcing rib, it is related to energy storage battery cabinet component technical field, including sheet metal support plate and reinforcing assembly, the sheet metal support plate is integrated structure, the reinforcing assembly is set to sheet metal support plate surface, and reinforcing assembly includes grid reinforcing rib, shock-absorbing cushion, column type reinforcing rib, metal reinforcing plate, stainless steel braid and heat dissipation silicone grease, the grid reinforcing rib is set to sheet metal support plate lower side surface, and grid reinforcing rib uses high-strength aluminum alloy material. The energy storage battery cabinet sheet metal frame with reinforcing rib, by reinforcing assembly, so that the device is through multilevel strengthening and reinforcing rib design, while maintaining lightweight, significantly improve bending stiffness and heat dissipation efficiency, and effectively buffer vibration impact, prolong the overall life of the device, by dismounting component, so that the device is through modular design and quick locking structure, realize the flexible dismounting and adjustment of frame, facilitate later maintenance expansion.
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Description

Technical Field

[0001] This utility model relates to the technical field of energy storage battery cabinet components, specifically a sheet metal frame for an energy storage battery cabinet with reinforcing ribs. Background Technology

[0002] Energy storage battery cabinets are modular energy storage devices that store and release electrical energy through battery packs and intelligent management systems. They are widely used in scenarios such as grid peak shaving and renewable energy consumption. The sheet metal frame of the energy storage battery cabinet is its core load-bearing structure, typically made of cold-rolled steel, galvanized steel, or stainless steel through laser cutting, bending, and welding processes to ensure the cabinet's strength, sealing, and environmental adaptability. However, current sheet metal frames for energy storage battery cabinets still have the following shortcomings:

[0003] For example, patent document CN221900128U discloses a battery frame for a field-mounted energy storage cabinet. This field-mounted energy storage cabinet battery frame can place the battery in the battery frame without welding or bolt connection, which is convenient for installation. However, it lacks structural reinforcement and buffer design, and has problems such as insufficient rigidity, high risk of stress concentration, and poor seismic performance. Moreover, long-term load can easily lead to structural fatigue, resulting in low safety and service life. Utility Model Content

[0004] The purpose of this utility model is to provide a sheet metal frame for an energy storage battery cabinet with reinforcing ribs, so as to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a sheet metal frame for an energy storage battery cabinet with reinforcing ribs, comprising a sheet metal support plate and reinforcing components. The sheet metal support plate is an integrated structure. The reinforcing components are disposed on the surface of the sheet metal support plate and include mesh reinforcing ribs, shock-absorbing buffer pads, column-shaped reinforcing ribs, metal reinforcing plates, stainless steel braided mesh, and thermal grease. The mesh reinforcing ribs are disposed on the lower surface of the sheet metal support plate and are made of high-strength aluminum alloy. A shock-absorbing buffer pad is disposed on the lower side inside the sheet metal support plate. The shock-absorbing buffer pad is made of elastic polyurethane material, and column-shaped reinforcing ribs are installed on the upper surface of the shock-absorbing buffer pad. The surface of the column-shaped reinforcing ribs is galvanized, and a metal reinforcing plate is disposed on the upper side of the column-shaped reinforcing ribs.

[0006] Furthermore, the metal reinforcing plate is an integrated structure, and a stainless steel woven mesh is provided on the upper surface of the metal reinforcing plate.

[0007] Furthermore, the stainless steel woven mesh is connected with thermal grease, and the thermal grease is made of a high thermal conductivity material.

[0008] Furthermore, sheet metal protective railings are installed on both the front and rear ends of the upper surface of the sheet metal support plate, and disassembly and assembly components are provided on the surface of the sheet metal support plate for easy and quick disassembly and assembly.

[0009] Furthermore, the assembly and disassembly components include a support plate, a fixing ring, a fixing column, a reinforcing cover, a support strip, a movable support frame, and a threaded fixing rod. The support plate is located on both sides of the sheet metal support plate, and a fixing ring is installed at the lower end of the outer surface of the support plate.

[0010] Furthermore, a fixing post is engaged with the inner side of the fixing ring, a reinforcing cap is threaded to the upper end of the outer surface of the fixing post, and a support bar is installed at the bottom of the fixing post. The front and rear ends of the support bar are provided with movable support frames, and threaded fixing rods are threaded to the surface of the movable support frames.

[0011] Furthermore, the assembly and disassembly components also include a supporting column, a mounting groove, a mounting slider, and a partition plate. The supporting column is slidably connected to the inner side of the movable support frame. The upper end of the inner surface of the sheet metal guardrail is provided with a mounting groove. The mounting slider is slidably connected to the inner side of the mounting groove, and a partition plate is installed on the surface of the mounting slider.

[0012] Furthermore, a fixed base plate is installed at the bottom of the supporting column, and an anti-slip pad is provided on the lower surface of the fixed base plate.

[0013] This utility model provides a sheet metal frame for an energy storage battery cabinet with reinforcing ribs, which has the following beneficial effects:

[0014] 1. This utility model incorporates a reinforcement system, including a grid of reinforcing ribs, shock-absorbing pads, columnar reinforcing ribs, a metal reinforcement plate, a stainless steel woven mesh, and thermal grease. In use, the grid of reinforcing ribs balances lightweight design with bending resistance, enhancing the overall rigidity of the frame through its grid distribution and dispersing localized stress during battery pack stacking. The shock-absorbing pads possess high elasticity and aging resistance, absorbing vibration energy from the battery modules and reducing mechanical impact damage to the sheet metal support plate. The columnar reinforcing ribs enhance the frame's load-bearing capacity and prevent deformation. The metal reinforcement plate covers critical stress areas, preventing fatigue cracks from long-term loads. The stainless steel woven mesh assists in heat dissipation and blocks the spread of flames during battery thermal runaway. The thermal grease fills the gaps within the sheet metal support plate, improving heat conduction efficiency. Thus, through multi-level reinforcement and rib design, this device significantly improves bending rigidity and heat dissipation efficiency while maintaining lightweight design, effectively buffering vibration impacts and extending the overall lifespan of the device.

[0015] 2. This utility model incorporates a disassembly and assembly assembly, comprising a support plate, a fixing ring, a fixing column, a reinforcing cover, support strips, a movable support frame, and a threaded fixing rod. The assembly also includes a support square column, an installation groove, an installation slider, and a partition plate. In use, the height and spacing of the support strips are adjusted by sliding the movable support frame against the surface of the support square column. The threaded fixing rod secures the movable support frame to the support square column. The support plate is installed on the support strip by engaging the fixing ring against the surface of the fixing column, thus achieving the installation of the sheet metal support plate. The partition plate is installed on the surface of the sheet metal guardrail by sliding the installation slider against the inner side of the installation groove. The spacing between the partition plates can be adjusted according to actual needs. This modular design and quick-locking structure enable flexible disassembly, assembly, and adjustment of the frame, facilitating future maintenance and expansion. Attached Figure Description

[0016] Figure 1 This is a three-dimensional structural diagram of a sheet metal frame for an energy storage battery cabinet with reinforcing ribs according to this utility model.

[0017] Figure 2 This is a three-dimensional structural diagram of a reinforcing component of a sheet metal frame for an energy storage battery cabinet with reinforcing ribs, according to this utility model.

[0018] Figure 3 This is a three-dimensional structural diagram of the disassembly and assembly components of a sheet metal frame for an energy storage battery cabinet with reinforcing ribs, according to this utility model.

[0019] In the diagram: 1. Sheet metal support plate; 2. Reinforcing components; 201. Mesh reinforcing ribs; 202. Shock-absorbing buffer pads; 203. Column-type reinforcing ribs; 204. Metal reinforcing plate; 205. Stainless steel woven mesh; 206. Thermal grease; 3. Sheet metal guardrail; 4. Disassembly and assembly components; 401. Support upright plate; 402. Fixing ring; 403. Fixing column; 404. Reinforcing cover; 405. Support strip; 406. Movable support frame; 407. Threaded fixing rod; 408. Support square column; 409. Mounting slide; 410. Mounting slider; 411. Divider plate; 5. Fixed base plate; 6. Anti-slip pad. Detailed Implementation

[0020] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.

[0021] like Figures 1 to 3As shown, a sheet metal frame for a reinforced energy storage battery cabinet includes a sheet metal support plate 1 and a reinforcing component 2. The sheet metal support plate 1 is an integrated structure. The reinforcing component 2 is disposed on the surface of the sheet metal support plate 1 and includes a mesh reinforcing rib 201, a shock-absorbing buffer pad 202, a column-shaped reinforcing rib 203, a metal reinforcing plate 204, a stainless steel braided mesh 205, and thermal grease 206. The mesh reinforcing rib 201 is disposed on the lower surface of the sheet metal support plate 1 and is made of high-strength aluminum alloy. The sheet metal support plate 1 is internally... A shock-absorbing buffer pad 202 is provided on the lower side. The shock-absorbing buffer pad 202 is made of elastic polyurethane material, and a column-shaped reinforcing rib 203 is installed on the upper surface of the shock-absorbing buffer pad 202. The surface of the column-shaped reinforcing rib 203 is galvanized, and a metal reinforcing plate 204 is provided on the upper side of the column-shaped reinforcing rib 203. The metal reinforcing plate 204 is an integrated structure, and a stainless steel woven mesh 205 is provided on the upper surface of the metal reinforcing plate 204. The stainless steel woven mesh 205 is connected to a heat-dissipating silicone grease 206, and the heat-dissipating silicone grease 206 is made of a high thermal conductivity silicone grease material.

[0022] The specific operation is as follows: When in use, the mesh reinforcing rib 201 can balance lightweight and bending performance. It can improve the overall rigidity of the frame through mesh distribution and disperse the local stress when the battery pack is stacked. The shock-absorbing buffer pad 202 has high elasticity and aging resistance, which can absorb the vibration energy of the battery module and reduce the damage of mechanical impact to the sheet metal support plate 1. The column-shaped reinforcing rib 203 enhances the load-bearing capacity of the frame and prevents deformation. The metal reinforcement plate 204 covers the key stress area and prevents fatigue cracks from long-term load. The stainless steel woven mesh 205 assists in heat dissipation and blocks the spread of flames in the event of battery thermal runaway. The thermal grease 206 fills the internal gaps of the sheet metal support plate 1 and improves the heat conduction efficiency.

[0023] Please refer to Figure 1 and Figure 3Sheet metal guardrails 3 are installed at both the front and rear ends of the upper surface of the sheet metal support plate 1. The surface of the sheet metal support plate 1 is provided with disassembly and assembly components 4 for easy and quick disassembly and assembly. The disassembly and assembly components 4 include a support plate 401, a fixing ring 402, a fixing post 403, a reinforcing cover 404, a support bar 405, a movable support frame 406, and a threaded fixing rod 407. The support plate 401 is located on both sides of the sheet metal support plate 1. A fixing ring 402 is installed at the lower end of the outer surface of the support plate 401. The fixing post 403 is engaged with the inner side of the fixing ring 402. The upper end of the outer surface of the fixing post 403 is threaded with a reinforcing cover 404. A support bar is installed at the bottom of the fixing post 403. 405, the support bar 405 is provided with movable support frame 406 at the front and rear ends, and the movable support frame 406 is threadedly connected to the surface of the threaded fixing rod 407. The disassembly and assembly component 4 also includes a support column 408, a mounting groove 409, a mounting slider 410 and a partition plate 411. The movable support frame 406 is slidably connected to the inner side of the support column 408. The upper end of the inner surface of the sheet metal guardrail 3 is provided with a mounting groove 409. The mounting groove 409 is slidably connected to the inner side of the mounting groove 409. The mounting slider 410 is installed on the surface of the mounting slider 410 and a partition plate 411 is installed on the surface of the mounting slider 410. The bottom of the support column 408 is installed with a fixed base plate 5, and the lower surface of the fixed base plate 5 is provided with an anti-slip pad 6.

[0024] The specific operation is as follows: During use, the height and spacing of the support bars 405 are adjusted by sliding the movable support frame 406 and the support column 408. The movable support frame 406 and the support column 408 are fixed by the threaded fixing rod 407. The support plate 401 is installed on the support bar 405 by engaging the fixing ring 402 with the surface of the fixing column 403, thereby realizing the installation of the sheet metal support plate 1. The partition plate 411 is installed on the surface of the sheet metal guardrail 3 by sliding the mounting slider 410 with the inner side of the mounting groove 409. The spacing between the partition plates 411 is adjusted according to actual needs.

[0025] In summary, as Figures 1 to 3As shown, the sheet metal frame of the energy storage battery cabinet with reinforcing ribs, in use, firstly, adjusts the height and spacing of the support bars 405 by sliding the movable support frame 406 to the surface of the support column 408, and then fixes the movable support frame 406 and the support column 408 by threaded fixing rod 407. Then, the support plate 401 is installed on the support bar 405 by engaging the fixing ring 402 with the surface of the fixing column 403, thereby realizing the installation of the sheet metal support plate 1. Finally, the partition plate 411 is installed on the surface of the sheet metal guardrail 3 by sliding the mounting slider 410 to the inner side of the mounting groove 409, and the spacing between the partition plates 411 is adjusted according to actual needs. During the use of this device, the mesh reinforcing ribs 201 can balance lightweight and bending performance, and can improve the overall rigidity of the frame through mesh distribution, and disperse the local stress when the battery pack is stacked. The shock-absorbing buffer pads 202 have high elasticity and aging resistance, and can absorb the vibration energy of the battery module, reducing the damage of mechanical impact to the sheet metal support plate 1. The column-shaped reinforcing ribs 203 enhance the load-bearing capacity of the frame and prevent deformation. The metal reinforcement plate 204 covers the key stress areas to prevent fatigue cracks caused by long-term load. The stainless steel woven mesh 205 assists in heat dissipation and blocks the spread of flames in the event of battery thermal runaway. The thermal grease 206 fills the internal gaps of the sheet metal support plate 1, while improving the heat conduction efficiency.

[0026] The embodiments of this utility model are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the utility model to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described in order to better illustrate the principles and practical applications of this utility model, and to enable those skilled in the art to understand this utility model and design various embodiments with various modifications suitable for a particular purpose.

Claims

1. A sheet metal frame for an energy storage battery cabinet with reinforcing ribs, comprising a sheet metal support plate (1) and reinforcing components (2), characterized in that: The sheet metal support plate (1) is an integrated structure. The reinforcing component (2) is disposed on the surface of the sheet metal support plate (1). The reinforcing component (2) includes a mesh reinforcing rib (201), a shock-absorbing buffer pad (202), a column-shaped reinforcing rib (203), a metal reinforcing plate (204), a stainless steel braided mesh (205), and thermal grease (206). The mesh reinforcing rib (201) is disposed on the lower surface of the sheet metal support plate (1). The mesh reinforcing rib (201) is made of high-strength aluminum alloy. The lower side of the sheet metal support plate (1) is provided with a shock-absorbing buffer pad (202). The shock-absorbing buffer pad (202) is made of elastic polyurethane material. The upper surface of the shock-absorbing buffer pad (202) is equipped with a column-shaped reinforcing rib (203). The surface of the column-shaped reinforcing rib (203) is galvanized. The upper side of the column-shaped reinforcing rib (203) is provided with a metal reinforcing plate (204).

2. The battery cabinet frame with reinforcing ribs according to claim 1, characterized in that, The metal reinforcing plate (204) is an integrated structure, and a stainless steel woven mesh (205) is provided on the upper surface of the metal reinforcing plate (204).

3. The sheet metal frame of the energy storage battery cabinet with reinforcing ribs according to claim 1, characterized in that, The stainless steel woven mesh (205) is connected to a heat-dissipating silicone grease (206), and the heat-dissipating silicone grease (206) is made of a high thermal conductivity silicone grease material.

4. The sheet metal frame of the energy storage battery cabinet with reinforcing ribs according to claim 1, characterized in that, Sheet metal guardrails (3) are installed on the front and rear ends of the upper surface of the sheet metal support plate (1), and the surface of the sheet metal support plate (1) is provided with disassembly and assembly components (4) for easy and quick disassembly and assembly.

5. The sheet metal frame of the energy storage battery cabinet with reinforcing ribs according to claim 4, characterized in that, The assembly / disassembly component (4) includes a support plate (401), a fixing ring (402), a fixing column (403), a reinforcing cover (404), a support strip (405), a movable support frame (406), and a threaded fixing rod (407). The support plate (401) is located on both sides of the sheet metal support plate (1), and a fixing ring (402) is installed at the lower end of the outer surface of the support plate (401).

6. The sheet metal frame of the energy storage battery cabinet with reinforcing ribs according to claim 5, characterized in that, The fixing ring (402) is engaged with a fixing post (403) on its inner side. A reinforcing cap (404) is threaded onto the upper end of the outer surface of the fixing post (403). A support bar (405) is installed at the bottom of the fixing post (403). A movable support frame (406) is provided at the front and rear ends of the support bar (405). A threaded fixing rod (407) is threaded onto the surface of the movable support frame (406).

7. A sheet metal frame for an energy storage battery cabinet with reinforcing ribs according to claim 5, characterized in that, The assembly / disassembly component (4) also includes a support column (408), an installation groove (409), an installation slider (410), and a partition plate (411). The support column (408) is slidably connected to the inner side of the movable support frame (406). The upper end of the inner surface of the sheet metal guardrail (3) is provided with an installation groove (409). The installation slider (410) is slidably connected to the inner side of the installation groove (409). The partition plate (411) is installed on the surface of the installation slider (410).

8. A sheet metal frame for an energy storage battery cabinet with reinforcing ribs according to claim 7, characterized in that, The bottom of the supporting column (408) is equipped with a fixed base plate (5), and the lower surface of the fixed base plate (5) is provided with an anti-slip pad (6).

Citation Information

Patent Citations

  • Energy storage cabinet battery frame capable of being quickly assembled on site

    CN221900128U