储能集装箱及移动储能车

By installing shock absorbers inside the energy storage container, the vibration and impact problems of mobile energy storage vehicles when driving on rough roads are solved, ensuring the safety and functional stability of the equipment, reducing production costs, and achieving effective heat dissipation.

CN224520761UActive Publication Date: 2026-07-17CIMC ENERGY STORAGE TECH CO LTD +3

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CIMC ENERGY STORAGE TECH CO LTD
Filing Date
2025-07-18
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

When mobile energy storage vehicles travel on rough roads, they encounter strong vibrations and impacts, which affect the safety performance and functionality of electrical equipment. At the same time, the existing connection methods result in high production difficulty and cost.

Method used

Vibration dampers are installed inside the energy storage container. Electrical equipment is connected to the outer surface of the container in the Z, X and Y directions through the vibration dampers to absorb vibration and impact energy in different directions. There is also a flow space between the equipment and the container to achieve heat dissipation.

Benefits of technology

It effectively reduces the risk of electrical equipment failure due to vibration and impact, ensures the safety performance and functionality of the equipment, reduces production costs, and achieves effective heat dissipation through the circulation space.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224520761U_ABST
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Abstract

本实用新型提供了一种储能集装箱及移动储能车,储能集装箱包括集装箱、电气设备和减振器,电气设备安装于集装箱的内部,电气设备在Z向外表面、X向外表面以及Y向外表面上均设有减振器,且电气设备通过减振器与集装箱连接,使得电气设备在Z向外表面、X向外表面和Y向外表面分别通过减振器与集装箱连接,当移动储能车行驶在恶劣路面时,设置于电气设备Z向外表面、X向外表面以及Y向外表面上的减振器分别吸收不同方向的振动、冲击等激励能量,减少电气设备由于运输、使用过程中遭受的振动、冲击、车辆制动中带来的失效风险。而且,电气设备的Z向外表面、电气设备的X向外表面以及电气设备的Y向外表面与集装箱之间均具有距离以形成流通空间,空气能够在该流通空间内流通以对电气设备进行散热,保证电气设备的散热效果。
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Claims

1. An energy storage container, characterized by, The device includes a container, electrical equipment, and vibration dampers. The electrical equipment is installed inside the container. The vibration dampers are provided on the outer surfaces of the electrical equipment in the Z, X, and Y directions, and the electrical equipment is connected to the container through the vibration dampers. The Z-direction outer surface, X-direction outer surface, and Y-direction outer surface of the electrical equipment are all spaced apart from the container to form a circulation space for airflow.

2. The energy storage container of claim 1, wherein ; The vibration damper includes a first vibration damper, a second vibration damper, and a third vibration damper; The first shock absorber is axially arranged along the Z-direction. The lower end of the first shock absorber is connected to the bottom surface of the container, and the upper end of the first shock absorber is connected to the bottom surface of the electrical equipment, so that the container supports the electrical equipment through the first shock absorber. The second vibration damper is arranged axially along the X direction, and the electrical equipment is provided with the second vibration damper on at least one outer surface along the X direction. The end of the second vibration damper away from the electrical equipment is connected to the inner wall of the container in the X direction corresponding to it. The third vibration damper is arranged axially along the Y direction; the third vibration damper is provided on at least one outer surface of the electrical equipment along the Y direction, and the end of the third vibration damper away from the electrical equipment is connected to the inner wall of the container in the Y direction.

3. The energy storage container according to claim 2, characterized in that, The first shock absorber includes a base, a connector, and a first elastic element. The base has a mounting cavity with one end open. The connector has a movable end and an extended end at opposite ends. The movable end is movably disposed in the mounting cavity of the base, and the extended end extends to the outside of the base. The first elastic element is installed in the mounting cavity of the base and covers the movable end of the connector. One of the protruding ends of the base and the connector is fixedly connected to the bottom surface of the container, and the other is fixedly connected to the bottom surface of the electrical equipment, so that the container supports the electrical equipment through the first shock absorber.

4. The energy storage container according to claim 3, characterized in that, The first elastic element includes a first elastic colloid and a second elastic colloid. The first elastic colloid is sleeved on the circumferential outer side of the movable end of the connector, and the circumferential outer surface of the first elastic colloid is in contact with the inner wall of the mounting cavity. The second elastic colloid is fixed on the connector, and the second elastic colloid is at least partially located below the connector. The lower end of the first elastic colloid is provided with a receiving cavity, and the bottom of the first elastic colloid is provided with a cavity; the second elastic colloid is embedded in the receiving cavity and seals the opening of the cavity, and the cavity is filled with pressurized liquid.

5. The energy storage container according to claim 3, characterized in that, The connector includes a connecting shaft and a lower pressure plate connected to the lower end of the connecting shaft, wherein the diameter of the lower pressure plate is larger than the diameter of the connecting shaft; The lower end of the connecting shaft and the lower pressure plate are both located inside the first elastic member.

6. The energy storage container according to claim 2, characterized in that, The second shock absorber includes a first connecting screw and a second elastic element. The first connecting screw extends along the X direction and its opposite ends are respectively connected to the container and the electrical equipment. The second elastic element is sleeved on the outer periphery of the first connecting screw, and its opposite ends abut against the outer surfaces of the container and the electrical equipment, respectively; and / or The third shock absorber includes a second connecting screw and a third elastic element. The second connecting screw extends along the Y direction and its opposite ends are respectively connected to the container and the electrical equipment. The third elastic element is sleeved on the outer periphery of the second connecting screw, and its opposite ends abut against the outer surfaces of the container and the electrical equipment, respectively.

7. The energy storage container according to claim 1, characterized in that, The container includes a frame and side panels, the side panels being fixed to the outside of the frame; The end of the vibration damper furthest from the electrical equipment is connected to the bracket, so that the flow space is formed between the outer surface of the electrical equipment and the side plate.

8. The energy storage container according to claim 7, characterized in that, The side panel includes multiple baffles connected to the bracket, the multiple baffles are arranged in a vertical array, and an air passage connecting the interior and exterior of the container is formed between the multiple baffles; Each of the baffles includes a first blocking portion, a second blocking portion, and a connecting portion. The first blocking portion and the second blocking portion are spaced apart in the thickness direction of the side plate. The second blocking portion is located above the first blocking portion. The connecting portion connects the upper end of the first blocking portion and the lower end of the second blocking portion. The second blocking portion and the first blocking portion of the adjacent baffle are spaced apart in the thickness direction of the baffle, and their projections in the thickness direction of the baffle at least partially overlap.

9. The energy storage container according to claim 8, characterized in that, The side plate also includes a dustproof screen plate connected to the bracket, and the dustproof screen plate is disposed on the outside of the baffle. There is a gap between the dustproof screen plate and the baffle.

10. The energy storage container according to claim 1, characterized in that, The electrical equipment includes a chassis and electrical components disposed inside the chassis, and the vibration damper is connected to the chassis; The chassis has ventilation holes that communicate with the circulation space.

11. A mobile energy storage vehicle, characterized by: It includes a vehicle and an energy storage container as described in any one of claims 1 to 10, wherein the energy storage container is mounted on the vehicle.