Interface assembly of energy storage all-in-one machine
By introducing heat dissipation pores and tension spring fixing structures into the interface assembly of the integrated energy storage unit, the heat dissipation and stable connection problems of the interface assembly are solved, achieving efficient internal energy transmission and easy maintenance.
Patent Information
- Application Number
- CN202422741193.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-11
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-11-11
AI Technical Summary
The interface components of existing integrated energy storage devices lack effective heat dissipation design, which leads to overheating of the interface components during long-term use. In addition, the lack of stable connection structure makes them prone to loosening, affecting the transmission of internal energy and making maintenance difficult.
A heat dissipation plate with heat dissipation holes and a tension spring fixing mechanism were designed to dissipate heat quickly through the heat dissipation holes and maintain a stable connection of the interface components using the tension spring.
It effectively prevents interface components from overheating, ensures long-term stable connection, improves internal energy transmission efficiency, and simplifies the maintenance process.
Smart Images

Figure CN223625328U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of interface component devices, specifically to an interface component for an integrated energy storage machine. Background Technology
[0002] Interface components of an integrated energy storage unit are an important part of an energy storage system. They typically include battery modules, inverters, monitoring systems, and safety protection devices. These components work together to ensure the efficient, safe, and reliable operation of the integrated energy storage unit, while optimizing energy use and cost-effectiveness. External interface components are indispensable in the construction of an integrated energy storage unit. These interface components are used to achieve internal and external transmission efficiency and ensure the safe operation of the integrated energy storage unit.
[0003] However, most energy storage integrated machines nowadays directly connect to the interface components of the moving parts. Due to the large internal energy of the energy storage integrated machine, the design of ordinary external interfaces is prone to various problems. For example, since the external interface components are not designed for heat dissipation, long-term use will lead to serious wear and tear on the interface components, reducing the service life of the interface components themselves. Summary of the Invention
[0004] The purpose of this invention is to provide an interface component for an integrated energy storage device to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, the present invention provides the following technical solution: an interface component for an integrated energy storage machine, including a connection port, a delivery pipeline installed at the lower end of the connection port, and a meshing port at the front end of the connection port. A recessed opening is provided on the surface of the delivery pipeline. An interface plate is installed at the lower end of the delivery pipeline, and an inner concave layer is provided at the bottom end of the interface plate. Heat dissipation plates are assembled on both sides of the inner concave layer. Heat dissipation pores are provided on the surface of the heat dissipation plate, and an outer protrusion is provided at the lower end of the heat dissipation plate. A sliding groove is provided on the surface of the outer protrusion.
[0006] Preferably, a sliding post is inserted inside the sliding groove, and a sliding plate block is assembled at the upper end of the sliding post, with a bonding plate installed on the side of the sliding plate block.
[0007] Preferably, a fixing block is installed along the middle of the groove, and tension springs are fitted on both sides of the fixing block, with the tension springs connected to the surface of the bonding plate.
[0008] Preferably, a pressure plate is installed along the rear end of the sliding block, and a soft pad is fitted inside the pressure plate, with a grab bar installed at the rear end of the pressure plate.
[0009] Preferably, an external block is installed on the outside of the pressure plate, and the external protrusion is provided with an external opening, and a bending groove is provided at the external opening.
[0010] Compared with the prior art, the beneficial effects of this utility model are:
[0011] 1. Compared with the interface components of other integrated energy storage devices, this device uses heat dissipation holes on the interface components to dissipate heat and avoid overheating of the interface components due to high temperatures during long-term connection.
[0012] 2. In addition, considering that some interface components are designed without fastening structures, and that the connectors of these components often have been in use for a long time, it is inevitable that the connections will loosen over time. Loose connections can lead to a series of problems, affecting the internal energy transmission of the device or interrupting the use of other energy-consuming devices. Furthermore, for subsequent cleaning and maintenance, the interface components may become old and difficult to disassemble. This device uses a tension fixing mechanism to effectively ensure the connection effect of the interface components. Attached Figure Description
[0013] Figure 1 This is a front overview view of the present utility model;
[0014] Figure 2 This is the bottom overall view of the present invention;
[0015] Figure 3 This is a bottom overview view of the present invention.
[0016] In the diagram: 1. Interface plate; 2. Conveying pipeline; 3. Connecting port; 4. Outer protrusion; 5. Slide block; 6. Slide post; 7. External block; 8. Pressure plate; 9. Grab bar; 10. Soft pad; 11. Attachment plate; 12. Fixing block; 13. Tension spring; 14. Adhesive plate. Detailed Implementation
[0017] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0018] Please see Figures 1 to 3 This utility model provides a technical solution:
[0019] refer to Figure 1The main body is a connection port 3. The lower end of the connection port 3 is equipped with a conveying pipe 2, and the front end of the connection port 3 is provided with a meshing port. The meshing port is used to complete the front end connection and ensure the connection of the conveying front end. A recessed opening is provided on the surface of the conveying pipe 2. An interface plate 1 is installed at the lower end of the conveying pipe 2, and the bottom end of the interface plate 1 is provided with a concave layer. The design of the concave layer provides the necessary space for the installation of other components of the device. Heat dissipation plates are assembled on both sides of the concave layer. The surface of the heat dissipation plate is provided with heat dissipation holes. Due to the long-term connection at the interface, the transfer of internal energy will cause heat accumulation. The design of the heat dissipation holes can effectively dissipate a large amount of heat energy and avoid the interface components themselves being severely heated, which will affect the connection and transmission effect between devices. The lower end of the heat dissipation plate is provided with an outer protrusion 4, and the surface of the outer protrusion 4 is provided with a sliding groove.
[0020] refer to Figure 2 The main body is a sliding groove, with a sliding post 6 inserted inside the sliding groove. A sliding plate block 5 is mounted on the upper end of the sliding post 6. A bonding plate 14 is installed on the side of the sliding plate block 5. A fixing block 12 is installed in the middle of the sliding groove. An attachment plate 11 is installed on both sides of the fixing block 12. Tension springs 13 are mounted on both sides of the fixing block 12. The tension springs 13 are mounted on the surface of the attachment plate 11 and connected to the surface of the bonding plate 14. The design of the tension springs 13 provides tension to the sliding posts 6 on both sides, so that the sliding plate blocks 5 on both sides always retract inward. This can press the connection end installed at the interface component, ensuring that it will not easily loosen or fall off during long-term use.
[0021] refer to Figure 3 The main body is a sliding block 5. A pressure plate 8 is installed along the rear end of the sliding block 5. A soft pad 10 is installed inside the pressure plate 8. The tension brought by the tension spring 13, together with the pressure plate 8, presses the inserted parts together. The soft pad 10 on the inside can reduce damage to the insertion port. A grab bar 9 is installed at the rear end of the pressure plate 8 to facilitate the opening by the staff. An external block 7 is installed on the outside of the pressure plate 8. An external opening is provided on the external protrusion 4. A bending groove is provided at the external opening. The installation of the external block 7 restricts the position of the pressure plate 8 to prevent it from being pulled too far inward by the tension spring 13.
[0022] In actual use, first, insert the device itself into the connection structure of the energy storage unit. Then, take out the component to be connected, grasp the gripping rod 9 and pull it outward. Due to the design of the tension spring 13, the pressing block moves outward. Wait until there is a large remaining space, then place the component to be inserted into the concave layer. After it makes contact with the interior, release the gripping rods 9 on both sides. With the stretching effect of the tension spring 13, the pressing blocks on both sides press the internal interface tightly, ensuring the stability of the device. Furthermore, during the transfer of internal energy, since the interface component has heat dissipation plates on both sides with heat dissipation holes on the surface of the heat dissipation plates, the heat generated inside is dissipated as quickly as possible, avoiding the presence of heat energy that could cause the interface component to overheat or cause other problems, leading to failure of internal energy transfer.
[0023] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An interface component for an integrated energy storage device, comprising a connection port (3), wherein a delivery pipeline (2) is installed at the lower end of the connection port (3), and a meshing port is provided at the front end of the connection port (3), and a recessed opening is provided on the surface of the delivery pipeline (2), characterized in that: The lower end of the conveying pipeline (2) is equipped with an interface plate (1), and the bottom end of the interface plate (1) is provided with a concave layer. Heat dissipation plates are assembled on both sides of the concave layer. The surface of the heat dissipation plate is provided with heat dissipation holes, and the lower end of the heat dissipation plate is provided with an outer protrusion (4). The surface of the outer protrusion (4) is provided with a sliding groove.
2. The interface component of the integrated energy storage unit according to claim 1, characterized in that: The sliding column (6) is inserted inside the sliding groove, and the upper end of the sliding column (6) is fitted with the sliding plate block (5), and the bonding plate (14) is installed on the side of the sliding plate block (5).
3. The interface component of the integrated energy storage unit according to claim 2, characterized in that: The fixing block (12) is installed in the middle of the groove, and tension springs (13) are assembled on both sides of the fixing block (12). The tension springs (13) are connected to the surface of the bonding plate (14).
4. The interface component of an integrated energy storage unit according to claim 3, characterized in that: The pressure plate (8) is installed at the rear end of the sliding block (5), and the inside of the pressure plate (8) is fitted with a soft pad (10), and a grab bar (9) is installed at the rear end of the pressure plate (8).
5. The interface component of an integrated energy storage unit according to claim 4, characterized in that: An external block (7) is installed on the outside of the pressure plate (8), and an external opening is provided on the external protrusion (4), with a bending groove at the external opening.