Energy storage tank spacer stack assembly

By using a heat dissipation shell and adjustment components between energy storage boxes, the problem of poor heat dissipation when stacking energy storage boxes is solved, achieving better heat dissipation and spacing adjustment.

CN224305231UActive Publication Date: 2026-05-29SHAOXING TONGJIE TECHNOLOGY CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHAOXING TONGJIE TECHNOLOGY CO LTD
Filing Date
2025-09-11
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

The lack of spacing design during the stacking of existing energy storage boxes results in poor heat dissipation.

Method used

The design incorporates a stacked structure including a heat dissipation shell and adjustment components. The upper and lower energy storage boxes are stacked at intervals through the cooperation of the adjustment components and adjustment bases. Heat dissipation holes are provided on the heat dissipation shell to enhance the heat dissipation effect, and the spacing can be adjusted by locking bolts.

Benefits of technology

The stacking of energy storage boxes results in better heat dissipation and allows for adjustable spacing to meet different needs.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224305231U_ABST
    Figure CN224305231U_ABST
Patent Text Reader

Abstract

The utility model provides a kind of energy storage box interval stacking assembly, including upper energy storage box and lower energy storage box, and the upper energy storage box and lower energy storage box are connected with stacking assembly, and the stacking assembly includes heat dissipation sleeve shell and two sets of adjusting group;Two sets of the adjusting group are located in upper energy storage box front and back two sides respectively;The adjusting group all includes two adjusting pieces;First step is all arranged below the adjusting piece;Two mounting panels corresponding to two sets of the adjusting group are connected in the heat dissipation sleeve shell;The mounting panel is connected with the adjusting seat corresponding to two the adjusting pieces on left and right sides respectively;Second step, which is more than the number of first step, is all arranged above the adjusting seat;Heat dissipation hole is set on the heat dissipation sleeve shell.The upper energy storage box and lower energy storage box of the utility model are placed with interval, and heat dissipation hole is set on the heat dissipation sleeve shell, and its heat dissipation is enhanced.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of energy storage box technology, and specifically to an energy storage box spacer stacking assembly. Background Technology

[0002] An energy storage box is an integrated energy storage device, mainly used for energy storage and regulation in power systems. It is widely used in new energy power generation, grid peak shaving, and industrial and commercial backup power. In the stacking process of existing energy storage boxes, such as the fixed connection component for stacking energy storage boxes with publication number CN218827560U and the stacked household energy storage box with publication number CN223092989U, they are stacked in a close-fitting manner, without any gap between adjacent energy storage boxes, which affects their heat dissipation. Utility Model Content

[0003] The present invention aims to solve the technical problem of providing an energy storage box using a stacked component with spaced stacking.

[0004] To solve the above-mentioned technical problems, the technical solution of this utility model for an energy storage box spaced stacking assembly is as follows:

[0005] The device includes an upper energy storage box and a lower energy storage box, which are connected by a stacking assembly. The stacking assembly includes a heat dissipation shell and two sets of adjustment groups. The two sets of adjustment groups are located on the front and rear sides of the upper energy storage box, respectively. Each adjustment group includes two symmetrically arranged adjustment components that are laterally slidably connected to the left and right sides of the upper energy storage box. Each adjustment component has a first step below it. The heat dissipation shell has two mounting panels connected inside, each corresponding to one of the two sets of adjustment groups. The mounting panels have adjustment seats on their left and right sides, corresponding to the two adjustment components, and the two adjustment seats are also symmetrically arranged. Each adjustment seat has a second step above it, which is more numerous than the first step. The heat dissipation shell is fitted over the lower energy storage box. The lower end of the upper energy storage box is inserted into the heat dissipation shell and abuts against the adjustment seats through the adjustment components. The heat dissipation shell has heat dissipation holes.

[0006] Each of the adjusting components has a first step below it; each of the adjusting seats has four second steps above it.

[0007] The upper energy storage box has horizontal sliding grooves on both the front and rear sides below it; the two adjusting components are respectively slidably connected to both sides of the horizontal sliding grooves.

[0008] The adjusting component is connected to threaded connecting seats on both the left and right sides; each threaded connecting seat is threaded with a locking bolt; the bottom end of the locking bolt passes through the threaded connecting seat and abuts against the bottom wall of the transverse sliding groove.

[0009] The transverse groove is convex in shape.

[0010] The technical effects achievable by this utility model are as follows: The lower end of the upper energy storage box is inserted into the heat dissipation sleeve and abuts against the adjustment seat through the adjustment component. Therefore, the upper and lower energy storage boxes are placed with a gap, and heat dissipation holes are opened on the heat dissipation sleeve to enhance its heat dissipation. Compared with the prior art, the heat dissipation effect of the spaced stacking of this utility model is better. Secondly, the lateral position of the adjustment component can be adjusted so that the first step abuts against the second step at different positions, thereby adjusting the distance between the upper and lower energy storage boxes. Attached Figure Description

[0011] The present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments:

[0012] Figure 1 This is a partial cross-sectional view of an energy storage box interval stacking assembly according to the present invention;

[0013] Figure 2 yes Figure 1 Enlarged view of part A;

[0014] Figure 3 This is a schematic diagram of the structure of an energy storage box spaced stacking assembly according to the present invention;

[0015] Figure 4 This is a connection diagram of the adjusting components;

[0016] Figure 5 yes Figure 4 Enlarged view of part B;

[0017] Figure 6 This is a schematic diagram of the heat sink casing.

[0018] Figure 7 yes Figure 6 Enlarged view of part C;

[0019] Figure 8 This is a structural schematic diagram of the adjusting component. Detailed Implementation

[0020] The present invention will now be described in further detail with reference to the accompanying drawings.

[0021] See Figures 1 to 8 .

[0022] An energy storage box stacking assembly includes an upper energy storage box 1 and a lower energy storage box 2, with a stacking assembly connecting the upper energy storage box 1 and the lower energy storage box 2. The stacking assembly includes a heat dissipation shell 3 and two sets of adjustment groups. The two sets of adjustment groups are located on the front and rear sides of the upper energy storage box 1, respectively. Each adjustment group includes two symmetrically arranged adjustment components 4 that are laterally slidably connected to the left and right sides of the upper energy storage box 1. Specifically, a transverse sliding groove 11 is provided on the front and rear sides below the upper energy storage box 1, and the two adjustment components 4 are laterally slidably connected to the two sides of the transverse sliding groove 11. More specifically, a threaded connecting seat 21 is connected to the left and right sides of the adjustment component 4, and a locking bolt 22 is threadedly connected to the threaded connecting seat 21. The bottom end of the locking bolt 22 passes through the threaded connecting seat 21 and abuts against the bottom wall of the transverse sliding groove 11. The transverse sliding groove 11 is convex in shape.

[0023] The adjusting component 4 of this utility model is laterally slidably connected to the transverse slide groove 11 and is limited by the locking bolt 22. Specifically, when it is necessary to adjust the position of the adjusting component 4, first loosen the locking bolts 22 on both sides of the adjusting component 4. At this time, the adjusting component 4 can move laterally along the transverse slide groove 11. When it moves to the desired position, tighten the locking bolt 22. The bottom end of the locking bolt 22 passes through the threaded connecting seat 21 and abuts against the bottom wall of the transverse slide groove 11 (see reference). Figure 2 The adjusting component 4 is limited by the friction between the locking bolt 22 and the bottom wall of the transverse slide 11.

[0024] Each adjusting component 4 has a first step 5 below it. Specifically, each adjusting component 4 has one first step 5 below it. The heat dissipation sleeve 3 is connected to two mounting panels 6, which correspond to the two adjusting groups respectively. The left and right sides of the mounting panels 6 are respectively connected to adjusting seats 7, which correspond to the two adjusting components 4, and the two adjusting seats 7 are also symmetrically arranged. Each adjusting seat 7 has more second steps 8 than the number of first steps 5 above it. Specifically, each adjusting seat 7 has four second steps 8 above it, and the height of the second steps 8 is the same as that of the first steps 5. The heat dissipation sleeve 3 is fitted on the lower energy storage box 2. The lower end of the upper energy storage box 1 is inserted into the heat dissipation sleeve 3 and abuts against the adjusting seat 7 through the adjusting component 4. The heat dissipation sleeve 3 has heat dissipation holes 9.

[0025] In this invention, the upper energy storage box 1 and the lower energy storage box 2 are fixed together by a heat dissipation sleeve 3. The lower end of the upper energy storage box 1 is inserted into the heat dissipation sleeve 3 and abuts against the adjusting seat 7 through the adjusting member 4. Therefore, there is a gap between the upper energy storage box 1 and the lower energy storage box 2. By opening heat dissipation holes 9 on the heat dissipation sleeve 3, heat dissipation can be helped. Compared with the prior art, the heat dissipation effect of the spaced stacking of this invention is obviously better. In addition, four second steps 8 are provided on the top of the adjusting seat 7 of this invention. By moving the position of the adjusting member 4 laterally, the first step 5 below the adjusting member 4 abuts against the second steps 8 of different heights on the adjusting seat 7, thereby changing the distance between the upper energy storage box 1 and the lower energy storage box 2.

Claims

1. A stacking assembly for energy storage boxes, comprising an upper energy storage box (1) and a lower energy storage box (2), wherein the upper energy storage box (1) and the lower energy storage box (2) are connected by a stacking assembly, characterized in that: The stacking assembly includes a heat dissipation shell (3) and two sets of adjustment groups; the two sets of adjustment groups are located on the front and rear sides of the upper energy storage box (1); each adjustment group includes two symmetrically arranged adjustment components (4) that are slidably connected to the left and right sides of the upper energy storage box (1); each adjustment component (4) has a first step (5) below it; the heat dissipation shell (3) is connected to two mounting panels (6) that correspond to the two sets of adjustment groups; the mounting panels (6) have adjustment seats (7) corresponding to the two adjustment components (4) on the left and right sides respectively, and the two adjustment seats (7) are also symmetrically arranged; each adjustment seat (7) has a second step (8) above it that is more numerous than the first step (5); the heat dissipation shell (3) is fitted over the lower energy storage box (2); the lower end of the upper energy storage box (1) is inserted into the heat dissipation shell (3) and abuts against the adjustment seat (7) through the adjustment component (4); the heat dissipation shell (3) has heat dissipation holes (9).

2. The energy storage box interval stacking assembly according to claim 1, characterized in that: Each of the adjusting components (4) has a first step (5) below it; each of the adjusting seats (7) has four second steps (8) above it.

3. The energy storage box interval stacking assembly according to claim 1, characterized in that: The upper energy storage box (1) has horizontal sliding grooves (11) on both the front and rear sides below; the two adjusting components (4) are respectively slidably connected to both sides of the horizontal sliding grooves (11).

4. The energy storage box interval stacking assembly according to claim 3, characterized in that: The adjusting component (4) is connected to threaded connecting seats (21) on both the left and right sides; each threaded connecting seat (21) is threaded with a locking bolt (22); the bottom end of the locking bolt (22) passes through the threaded connecting seat (21) and abuts against the bottom wall of the transverse sliding groove (11).

5. The energy storage box interval stacking assembly according to claim 3, characterized in that: The transverse groove (11) is convex in shape.