Outer protective structure of energy storage device

CN224698039UActive Publication Date: 2026-08-28NINGBO SMART XINNENG TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202521984664.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-16
Publication Date
2026-08-28
Estimated Expiration
2035-09-16

AI Technical Summary

Technical Problem

[0003]目前便捷式储能设备通过上侧把手能够便捷进行设备的携带,但是在携带使用的过程中,由于储能设备缺少防护,储能设备容易与其他物体碰撞,此时储能设备表面的屏幕以及连接插孔易出现损坏,无法再进行对其他设备的供电使用

Benefits of technology

1、通过防护部件,利用缓冲组件和防护板配合,能够在储能器前后受到碰撞的时候,对储能器起到保护效果,防止了储能器表面零件因为碰撞出现损坏的状况,方便了储能器在户外的便携使用,并提高了使用寿命。

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Abstract

The utility model provides an outer protection structure of energy storage equipment belongs to the technical field of energy storage equipment, including protection part, including energy storage device, both sides of energy storage device all are fixedly connected with two slide rails, the inner wall of two slide rails all are connected with slide frame slidingly, the inner wall of slide frame is connected with the fender slidingly, the buffer assembly of reducing the damage of impact is equipped between slide frame and fender, the limiting component of assisting energy storage device normal use is equipped between slide rail and energy storage device, the counter -thrust part, including setting up the counter -thrust board of the fender outside, the power component is equipped between counter -thrust board and fender. The utility model discloses a protection part, utilizes buffer assembly and fender cooperation, can when energy storage device before and after receiving the collision, to energy storage device play the protection effect, prevented the energy storage device surface part because of the collision and appeared the damage condition, facilitated the portable use of energy storage device in the open air, and improved the life.
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Claims

1. The external protective structure of an energy storage device, characterized in that: include, The protective component includes an energy storage device (10), with two slide rails (11) fixedly connected to both sides of the energy storage device (10). A sliding frame (12) is slidably connected to the inner wall of each of the two slide rails (11). A protective plate (13) is slidably connected to the inner wall of the sliding frame (12). A buffer assembly (14) to reduce impact damage is provided between the sliding frame (12) and the protective plate (13). A limiting assembly (15) to assist the normal use of the energy storage device (10) is provided between the slide rail (11) and the energy storage device (10). The thrust reverser includes a thrust reverser plate (20) disposed on the outside of the protective plate (13), and a power assembly (21) is provided between the thrust reverser plate (20) and the protective plate (13). The power assembly (21) is used to help the thrust reverser plate (20) achieve thrust reverser.

2. The external protective structure of the energy storage device according to claim 1, characterized in that: The buffer assembly (14) includes two round rods (141) fixedly connected to the inner wall of the sliding frame (12). Both round rods (141) are slidably connected to the protective plate (13). The surfaces of the two round rods (141) are fitted with a first spring (142). The two ends of the first spring (142) are fixedly connected to the sliding frame (12) and the protective plate (13) respectively. Two rubber blocks (143) are slidably connected to both sides of the protective plate (13). Six arc-shaped grooves (144) are opened on both sides of the sliding frame (12), and the six arc-shaped grooves (144) are divided into two groups.

3. The external protective structure of the energy storage device according to claim 1, characterized in that: The limiting assembly (15) includes two base plates (151) fixedly connected to the upper side of the energy storage device (10). The surfaces of the two base plates (151) are threaded with screws (152). The surfaces of the screws (152) are fixedly connected with two pull ropes (153). The surfaces of the two slide rails (11) are fixedly connected with inclined plates (154). The surfaces of the inclined plates (154) are slidably connected with rings (155). The pull ropes (153) pass through the inclined plates (154) and are fixedly connected to the rings (155). The inner wall of the rings (155) is rotatably connected with a limiting rod (156). The limiting rod (156) is slidably connected to the slide rails (11).

4. The external protective structure of the energy storage device according to claim 2, characterized in that: The upper sides of the two rubber blocks (143) are "T" shaped, and the arc surfaces of the two rubber blocks (143) are adapted to the arc surfaces of the arc groove (144).

5. The external protective structure of the energy storage device according to claim 3, characterized in that: The width of the pull rope (153) is adapted to the width of the groove on the surface of the inclined plate (154), and the width of the limiting rod (156) is adapted to the width of the slide rail (11).

6. The external protective structure of the energy storage device according to claim 1, characterized in that: The power assembly (21) includes a first inclined block (211) fixedly connected to the inner wall of the sliding frame (12), a second inclined block (212) slidably connected to both sides of the protective plate (13), a square plate (213) slidably connected to both sides of the protective plate (13), a push rod (214) fixedly connected to both sides of the protective plate (13), one end of the push rod (214) fixedly connected to the square plate (213), a second spring (215) sleeved on the surface of the push rod (214), the two ends of the second spring (215) fixedly connected to the square plate (213) and the protective plate (13) respectively, and the reverse push plate (20) fixedly connected to the end of the push rod (214) away from the square plate (213).

7. The external protective structure of the energy storage device according to claim 6, characterized in that: The inclined surfaces of the first inclined block (211) and the second inclined block (212) are adapted to each other, and after the second inclined block (212) slides up to the limit position, the lower groove of the second inclined block (212) fits into the groove of the first inclined block (211).