Convenient-to-disassemble-and-assemble circulating heat dissipation device for new energy storage box

By introducing protective components, conveying mechanisms, and locking components into the new energy storage box, combined with servo motor drive and cooling circulation system, the problems of cumbersome operation and low heat dissipation efficiency of the storage box are solved, achieving rapid disassembly and assembly and efficient heat dissipation.

CN224006038UActive Publication Date: 2026-03-17HEFEI QINGDA TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-02
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

The current circulating heat dissipation device for new energy storage boxes is cumbersome to operate, requiring manual opening and closing of the cover, which affects the equipment's sealing performance and heat dissipation effect.

Method used

It employs protective components, a conveying mechanism, and a locking component. The cover is automatically opened and closed using a servo motor. Combined with the conveying mechanism and locking component, it enables rapid assembly and disassembly of the energy storage box. Furthermore, a cooling circulation system is formed by the circulating pump and fan of the heat dissipation component to improve heat dissipation efficiency.

Benefits of technology

It enables rapid disassembly and stable locking of the energy storage box, improves disassembly and assembly efficiency, enhances heat dissipation, and ensures that the equipment maintains a suitable temperature while operating efficiently.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a convenient-to-disassemble-and-assemble circulating heat dissipation device for a new energy storage box, and the device comprises a protection assembly which comprises a frame and a cover plate and is used for bearing the new energy storage box, and one side of the interior of the frame is symmetrically provided with streamline-shaped guide grooves; and the conveying mechanism is installed in the frame in the protection assembly and used for rapidly disassembling and assembling the new energy storage box. When the servo motor rotates reversely to merge the cover plate and the frame, the transfer assembly drives the driving shaft to move in the guide rail groove through meshing transmission of the gear and the tooth groove, the roller and the conveying belt are driven to move horizontally along the rail, and the new energy storage box is pushed to the designated position in the frame. The new energy storage box extrudes the opening and closing plate in the locking assembly in the frame, the opening and closing plate slides in the notch of the frame through the rotating shaft and the second guide shaft, automatic closing is achieved, the energy storage box is clamped, stable locking is formed, and then the disassembly and assembly efficiency is remarkably improved.
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Description

Technical Field

[0001] This utility model relates to the field of new energy storage box technology, and in particular to a circulating heat dissipation device for a new energy storage box that is easy to disassemble and assemble. Background Technology

[0002] A renewable energy storage box is a device used to store and manage electrical energy generated from renewable energy sources such as solar and wind power. It utilizes advanced battery technology to store excess electrical energy for release when needed, thus achieving efficient energy utilization and a stable supply. This type of storage box offers advantages such as environmental friendliness, energy efficiency, and strong scalability, and is widely used in residential, commercial, and industrial sectors, contributing to the transformation of the energy structure and sustainable development.

[0003] Currently, most circulating heat dissipation devices for new energy storage boxes adopt a cover plate limiting design. After the energy storage box is placed on the heat dissipation rack, the cover plate needs to be opened and closed manually for installation and removal. This operation is cumbersome and can easily affect the sealing and heat dissipation effect of the equipment. Therefore, it needs to be improved. Utility Model Content

[0004] One objective of this invention is to provide a circulating heat dissipation device for new energy storage boxes that is easy to install and disassemble. This invention addresses the problem mentioned in the background that current circulating heat dissipation devices for new energy storage boxes mostly adopt a cover plate limiting design, which requires manual opening and closing of the cover plate for installation and removal after the energy storage box is placed on the heat dissipation frame. This operation is cumbersome and can easily affect the sealing and heat dissipation effect of the equipment.

[0005] A circulating heat dissipation device for a new energy storage box that is easy to assemble and disassemble, according to an embodiment of the present utility model, includes:

[0006] The protective assembly includes a frame and a cover plate for supporting the new energy storage box. The frame has symmetrical streamlined guide grooves on one side inside, and the cover plate is connected to the frame by a drive assembly.

[0007] A heat dissipation component, installed on the outside of the frame in the protective assembly, is used to achieve effective heat dissipation;

[0008] The conveying mechanism is installed inside the frame of the protective assembly and is used to quickly disassemble and assemble the new energy storage box. The conveying mechanism includes a track fixed to the lower end of the frame and a transfer component. Two tracks are symmetrically arranged. The lower end of the track and the inner wall of the track are respectively provided with guide grooves and toothed grooves. The transfer component realizes the installation or removal of the new energy storage box through the connection between the guide grooves and toothed grooves.

[0009] A locking component is installed inside the frame of the protective component to lock the new energy storage box that has been moved into the frame. The locking component includes two opening and closing plates that are rotatably connected by a rotating shaft.

[0010] Preferably, the drive assembly includes a servo motor fixed above the streamlined guide groove on the outside of the frame, and an opening and closing support arm fixed to the bottom of the cover plate. A first guide shaft is fixedly provided at the lower end of one side of the opening and closing support arm. The cover plate achieves guided movement through the opening and closing support arm and the first guide shaft located inside the streamlined guide groove. A drive arm that is rotatably connected to the opening and closing support arm is fixedly provided at the output end of the servo motor to realize the opening and closing movement of the cover plate.

[0011] Preferably, the heat dissipation assembly includes a circulating coil fixed inside the frame and a fan on top of the circulating coil. Inlet pipes and outlet pipes are respectively installed at both ends of the circulating coil. The inlet pipes and outlet pipes are respectively connected to the circulating pump and the water tank. A cooling device is fixedly installed on the outside of the water tank.

[0012] Preferably, both the circulation pump and the water tank are mounted on the back of the frame.

[0013] Preferably, the transfer assembly includes a support seat movably disposed between the two tracks, and a lever rotatably connected to one side of the opening and closing support arm. Rollers are rotatably disposed inside the support seat, and a conveyor belt is driven between the rollers. Drive shafts are fixedly disposed at both ends of the rollers near one end of the frame. Gears that mesh with tooth grooves are fixed on the outside of the drive shafts. The lower end of the lever is rotatably disposed with the drive shaft.

[0014] Preferably, the drive shaft is movably positioned inside the guide rail groove.

[0015] Preferably, a second guide shaft is fixedly provided at the bend of the opening and closing plate, and the second guide shaft is movably disposed in the upper and lower end slots inside the frame.

[0016] The beneficial effects of this utility model are:

[0017] This invention effectively avoids the problems of cumbersome manual opening and closing of the cover, poor sealing, and low disassembly and assembly efficiency by setting up protective components, conveying mechanisms, and locking components. When it is necessary to install or remove the new energy storage box, the servo motor starts and drives the drive arm to push the opening and closing support arm to slide along the streamlined guide groove. Then, under the guidance of the first guide shaft, the cover is automatically opened and closed. Simultaneously, the lever connected between the drive arm and the conveying mechanism pushes the transfer component from the inside of the frame to the outside. Then, the new energy storage box is placed on the top of the transfer component. At this time, when the servo motor reverses to merge the cover with the frame, the transfer component is driven by the meshing of gears and tooth grooves. The drive shaft moves in the guide groove, driving the rollers and conveyor belt to move along the track and push the new energy storage box to the designated position inside the frame. The new energy storage box squeezes the opening and closing plate in the locking component inside the frame. The opening and closing plate slides in the slot of the frame through the rotating shaft and the second guide shaft, automatically closing and clamping the energy storage box to form a stable lock, thereby significantly improving the disassembly and assembly efficiency.

[0018] This invention effectively avoids the problems of low heat exchange efficiency and uneven temperature distribution of traditional heat dissipation devices by setting heat dissipation components. The circulating pump cools the coolant in the water tank through the refrigeration equipment and then enters the circulating coil through the water inlet pipe to form a cooling circulation system. Then, the fan is started to form a cold airflow, which can further improve the heat dissipation effect. Attached Figure Description

[0019] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention, but do not constitute a limitation thereof. In the drawings:

[0020] Figure 1 This is a three-dimensional structural diagram of one side of a circulating heat dissipation device for a new energy storage box that is easy to disassemble and assemble, as proposed in this utility model.

[0021] Figure 2 A three-dimensional structural diagram of the other side of a circulating heat dissipation device for a new energy storage box that is easy to disassemble and assemble, as proposed in this utility model.

[0022] Figure 3 This is a schematic diagram of the internal structure of a circulating heat dissipation device for a new energy storage box that is easy to disassemble and assemble, as proposed in this utility model.

[0023] Figure 4 This is a schematic diagram of the conveyor belt structure of a circulating heat dissipation device for a new energy storage box that is easy to assemble and disassemble, as proposed in this utility model.

[0024] In the diagram: 1. Protective components; 101. Frame; 102. Streamlined guide groove; 103. Opening and closing support arm; 104. First guide shaft; 105. Cover plate; 106. Servo motor; 107. Drive arm; 2. Heat dissipation components; 201. Circulation coil; 202. Fan unit; 203. Water inlet pipe; 204. Water outlet pipe; 205. Circulation pump; 206. Water tank; 207. Refrigeration equipment; 3. Conveying mechanism; 301. Track; 302. Guide rail groove; 303. Gear groove; 304. Support base; 305. Roller; 306. Conveyor belt; 307. Drive shaft; 308. Gear; 309. Lever; 4. Locking components; 401. Opening and closing plate; 402. Rotating shaft; 403. Second guide shaft. Detailed Implementation

[0025] The present invention will now be described in further detail with reference to the accompanying drawings. These drawings are simplified schematic diagrams, illustrating only the basic structure of the present invention, and therefore only show the components relevant to the present invention.

[0026] refer to Figure 1-4 A circulating heat dissipation device for a new energy storage box that is easy to assemble and disassemble includes:

[0027] Protective component 1 includes a frame 101 and a cover plate 105, used to support the new energy storage box. A streamlined guide groove 102 is symmetrically formed on one side of the interior of the frame 101. The cover plate 105 is engaged with the frame 101 via a drive assembly. The drive assembly includes a servo motor 106 fixed to the outside of the frame 101 above the corresponding streamlined guide groove 102, and an opening / closing support arm 103 fixed to the bottom of the cover plate 105. A first guide shaft 104 is fixedly provided at the lower end of one side of the opening / closing support arm 103. The cover plate 105 is connected to the frame 101 via the opening / closing support arm 106. 3. The first guide shaft 104, which is movably set inside the streamlined guide groove 102, realizes the guiding movement. The output end of the servo motor 106 is fixedly set with a drive arm 107 that is rotatably connected to the opening and closing support arm 103, so as to realize the opening and closing movement of the cover plate 105. After the servo motor starts, it drives the drive arm to push the opening and closing support arm to slide along the streamlined guide groove. Then, with the guiding action of the first guide shaft, the automatic opening and closing of the cover plate is realized. Simultaneously, the lever rotatably connected between the drive arm and the conveying mechanism pushes the transfer component from the inside of the frame to the outside.

[0028] The heat dissipation component 2 is installed on the outside of the frame 101 in the protective component 1 to achieve effective heat dissipation. The heat dissipation component 2 includes a circulation coil 201 fixed inside the frame 101 and a fan on the top of the circulation coil 201. The two ends of the circulation coil 201 are respectively equipped with an inlet pipe 203 and an outlet pipe 204. The inlet pipe 203 and the outlet pipe 204 are respectively connected to the circulation pump 205 and the water tank 206. A refrigeration device 207 is fixedly installed on the outside of the water tank 206. The circulation pump cools the coolant in the water tank through the refrigeration device and then enters the circulation coil through the inlet pipe to form a cooling circulation system. Then, the fan is started to form a cold airflow, which can further improve the heat dissipation effect.

[0029] The conveying mechanism 3, installed inside the frame 101 of the protective assembly 1, is used to quickly assemble and disassemble the new energy storage box. The conveying mechanism 3 includes a track 301 fixed to the lower end of the frame 101 and a transfer assembly. Two tracks 301 are symmetrically arranged. Guide rail grooves 302 and toothed grooves 303 are respectively formed inside the track 301 and at the lower end of its inner wall. The transfer assembly connects the guide rail grooves 302 and toothed grooves 303 to install or remove the new energy storage box. The transfer assembly includes a support base 304 movably disposed between the two tracks 301 and rotatably connected to the opening and closing support arm 103. Rollers 305 are rotatably installed inside the lever 309 on one side and the support base 304. A conveyor belt 306 is connected between several rollers 305. Drive shafts 307 are fixed at both ends of the rollers 305 near the frame 101. Gears 308 that mesh with the toothed grooves 303 are fixed on the outside of the drive shafts 307. The lower end of the lever 309 is rotatably connected to the drive shaft 307. When the servo motor reverses to merge the cover plate with the frame, the transfer component is driven by the meshing of the gears and toothed grooves. The drive shaft moves in the guide groove, driving the rollers and the conveyor belt to move along the track and push the new energy storage box to the designated position inside the frame.

[0030] Locking component 4 is installed inside the frame 101 of the protective component 1 to lock the new energy storage box that has moved into the frame 101. Locking component 4 includes opening and closing plates 401, which are rotatably connected by a rotating shaft 402. When the new energy storage box presses the opening and closing plates in the locking component inside the frame, the opening and closing plates slide in the slots of the frame through the rotating shaft and the second guide shaft, automatically closing and clamping the energy storage box to form a stable lock.

[0031] Example 1: The circulating pump 205 and the water tank 206 are both installed on the back of the frame 101. The drive shaft 307 is located inside the guide rail groove 302 and is movable. The drive arm pushes the opening and closing support arm to slide along the streamlined guide groove. With the guidance of the first guide shaft, the automatic opening and closing of the cover plate is realized.

[0032] Example 2: A second guide shaft 403 is fixedly installed at the bend of the opening and closing plate 401. The second guide shaft 403 is movably installed in the upper and lower end slots inside the frame 101. The opening and closing plate slides in the slots of the frame through the rotating shaft and the second guide shaft, automatically closing and clamping the energy storage box to form a stable lock.

[0033] Working principle: First, the frame 101 of the protective component 1 carries the energy storage box. The cover 105 is automatically opened and closed by a drive assembly consisting of a servo motor 106 and an opening and closing support arm 103, facilitating the entry and exit of the energy storage box. The conveying mechanism 3 is installed inside the frame and includes a track 301, a support 304, rollers 305, a conveyor belt 306, and gears 308. When the cover is opened, the lever 309 pushes the transfer assembly. Through the meshing of the gears and tooth grooves, the drive shaft 307 drives the rollers and conveyor belt to move along the track, quickly pushing the energy storage box to the designated position. The locking component 4 includes an opening and closing plate 401 and a rotating shaft 402. When the energy storage box moves into the frame, the opening and closing plate is squeezed by the energy storage box. The energy storage box slides in the slot of the frame via the rotating shaft and the second guide shaft 403, automatically closing and clamping it to achieve stable locking. The heat dissipation component 2 is installed on the outside of the frame and includes a circulation coil 201, a fan, an inlet pipe 203, an outlet pipe 204, a circulation pump 205, and a water tank 206. The circulation pump cools the coolant in the water tank through the refrigeration equipment 207 and then enters the circulation coil through the inlet pipe to form a cooling circulation system. After the fan starts, it generates a cold airflow, further improving the heat dissipation effect and ensuring that the energy storage box maintains a suitable temperature while operating efficiently. This achieves rapid disassembly and assembly, stable locking, and efficient heat dissipation of the new energy storage box, providing reliable technical support for new energy storage systems.

[0034] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A circulating heat dissipation device for a new energy energy storage box convenient to disassemble, characterized by, Include: Protective components (1), including frame (101) and cover plate (105), for carrying new energy storage box, the frame (101) inside one side symmetry open flow line guide slot (102), the cover plate (105) is connected with the frame (101) by driving assembly realization and frame (101) snap fit; Heat dissipation assembly (2) is installed in the outside of frame (101) in protective assembly (1), for realizing effective heat dissipation; Conveying mechanism (3) is installed in the inside of frame (101) in protective assembly (1), for realizing quickly dismounting new energy storage box, wherein, conveying mechanism (3) includes track (301) fixed to the inside of frame (101) lower end and transfer assembly, the track (301) is symmetrically provided with two, the inside of track (301) and the lower end of track (301) inner wall are respectively provided with guide groove (302) and gear groove (303), the transfer assembly is connected through the guide groove (302) and the gear groove (303) between realization installs or takes out new energy storage box; Locking assembly (4) is installed in the inside of frame (101) in protective assembly (1), for realizing locking new energy storage box moving to the inside of frame (101), wherein, locking assembly (4) includes opening and closing plate (401), two opening and closing plate (401) are rotatably arranged through rotating shaft (402) between them.

2. The circulating heat dissipation device for a new energy energy storage box convenient to disassemble according to claim 1, characterized in that, The driving assembly includes servo motor (106) fixed to the outside of frame (101) above corresponding flow line guide slot (102), opening and closing arm (103) fixed to the bottom of cover plate (105), the lower end of one side of opening and closing arm (103) is fixedly provided with first guide shaft (104), the cover plate (105) is movably arranged in the inside of flow line guide slot (102) through opening and closing arm (103) and first guide shaft (104) and realizes the guided motion of the cover plate (105), the output end of servo motor (106) is fixedly provided with driving arm (107) rotatably connected with opening and closing arm (103), to realize the opening and closing motion of cover plate (105).

3. The circulating heat dissipation device for a new energy energy storage box convenient to disassemble according to claim 1, characterized in that, The heat dissipation assembly (2) includes circulating coil (201) fixed to the inside of frame (101), and fan on the top of circulating coil (201), the two ends of circulating coil (201) are respectively provided with water inlet pipe (203) and water outlet pipe (204), the water inlet pipe (203) and water outlet pipe (204) are respectively connected with circulating pump (205) and water tank (206), the outside of water tank (206) is fixedly provided with refrigeration equipment (207).

4. The circulating heat dissipation device for a new energy energy storage box convenient to disassemble according to claim 3, characterized in that, The circulating pump (205) and water tank (206) are all installed on the back of frame (101).

5. The circulating heat dissipation device for a new energy energy storage box convenient to disassemble according to claim 1, characterized in that, The transport assembly includes a support seat (304) movably arranged between the two tracks (301), a lever (309) rotatably connected to one side of the opening and closing support arm (103), the inside of the support seat (304) is rotatably provided with a roller (305), a plurality of the rollers (305) are drivingly provided with a conveying belt (306), the two ends of the roller (305) near one end of the frame (101) are fixedly provided with a driving shaft (307), the outer side of the driving shaft (307) is fixedly provided with a gear (308) engaged with the gear slot (303), and the lower end of the lever (309) is rotatably provided with the driving shaft (307).

6. The circulating heat dissipation device for a new energy energy storage box convenient to disassemble according to claim 5, characterized in that, The driving shaft (307) is movably arranged in the guide rail slot (302).

7. The circulating heat dissipation device for a new energy energy storage box convenient to disassemble according to claim 1, characterized in that, The bending part of the opening and closing plate (401) is fixedly provided with a second guide shaft (403), and the second guide shaft (403) is movably arranged in the upper and lower end slots in the inside of the frame (101).