Uniformly distributed dehumidification type energy storage battery cabin

CN224817320UActive Publication Date: 2026-09-29ANHUI LEOCH PENEWABLE ENERGY DEV CO LTD
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Patent Information

Application Number
CN202522162081.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-13
Publication Date
2026-09-29
Estimated Expiration
2035-10-13

AI Technical Summary

Technical Problem

[0003]为维持舱内温度在电池最佳工作范围,避免高温导致热失控,控制舱内湿度,防止电池受潮腐蚀或短路,通常在内部设置环境控制系统对集装箱箱体内部进行除湿降温处理,而现有的储能电池舱降温除湿主要采用一台壁挂式除湿空调,由于空调体积较大,所以其安装后会凸出在集装箱外面,由此影响集装箱的多式联运条件,且空调受集装箱内空间及密布的电池簇影响,不便设计除湿风道,因此空调很难做的对集装箱内全区域、无死角的除湿,因此除湿效果欠佳

Benefits of technology

1、每个电池簇间的两侧门板均设置除湿器,通过均布方式使除湿作用覆盖每个电池簇间,确保舱内各区域湿度均匀,直接提升了除湿效率和电池运行环境的稳定,并且除湿器被设置在门板内侧的承载腔体内,将除湿设备与门板结构结合,避免了除湿器外露占用舱内空间,配合预埋的排水管使用时,减少外露管线的碰撞损坏风险,也防止冷凝水在舱内积聚,使得储能电池舱使用更为安全;

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Abstract

The utility model discloses an even distribution dehumidification type energy storage battery cabin, including the container box, the container box inside equidistance is provided with a plurality of battery cluster holds interval, other battery cluster holds interval both sides all are provided with the door plant, the door plant inboard surface is equipped with a plurality of bearing cavity, bearing cavity inside is provided with the dehumidifier who is connected with environmental control equipment, the door plant inside is provided with the drain pipe, the drain pipe one end is connected with the dehumidifier water outlet, the drain pipe other end extends to the container box outside. The both sides door plant of every battery cluster interval all are provided with the dehumidifier, make dehumidification effect cover every battery cluster interval through even distribution mode, ensure that the humidity of each area in cabin is even, combine dehumidification equipment with the door plant structure, cooperate the use when pre -buried drain pipe, reduce the collision damage risk of exposed pipeline, also prevent condensate water from accumulating in cabin, make energy storage battery cabin use more safe.
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Description

Technical Field

[0001] This utility model belongs to the field of energy storage battery compartment technology, and particularly relates to a uniformly distributed dehumidified energy storage battery compartment. Background Technology

[0002] An energy storage battery compartment is an integrated and modular energy storage device carrier with a container-like outer shell. It is mainly used to house and protect energy storage battery clusters and, through supporting systems, enables the safe operation, status monitoring, environmental regulation, and energy management of the batteries. It is widely used in new energy storage, industrial and commercial energy storage, grid peak shaving, emergency power supply, and other scenarios.

[0003] To maintain the internal temperature within the optimal operating range of the batteries and prevent thermal runaway caused by high temperatures, as well as to control the internal humidity and prevent batteries from becoming damp, corroding, or short-circuiting, an internal environmental control system is typically installed to dehumidify and cool the interior of the container. However, existing energy storage battery compartments mainly use a wall-mounted dehumidifier. Due to the large size of the dehumidifier, it protrudes outside the container after installation, thus affecting the multimodal transport conditions of the container. Furthermore, the dehumidifier is limited by the space inside the container and the densely packed battery clusters, making it difficult to design dehumidification ducts. Therefore, it is difficult for the dehumidifier to dehumidify the entire area inside the container without dead corners, resulting in poor dehumidification performance. Utility Model Content

[0004] This utility model addresses the problems in the prior art by proposing the following technical solution: A uniformly distributed dehumidified energy storage battery compartment includes: a container body, wherein several battery cluster holding chambers are equidistantly arranged inside the container body, one of the battery cluster holding chambers is equipped with environmental control equipment and electrical equipment connected to the environmental control equipment, the environmental control equipment includes temperature control equipment, dehumidification equipment and ventilation equipment, and the other battery cluster holding chambers are provided with doors on both sides, and multiple bearing cavities are opened on the inner surface of the door panels, and dehumidifiers connected to the environmental control equipment are installed inside the bearing cavities; A drain pipe is installed inside the door panel. One end of the drain pipe is connected to the outlet of the dehumidifier, and the other end of the drain pipe extends to the outside of the container body. The condensate generated by the dehumidifier is discharged outside the container through the drain pipe embedded in the door panel.

[0005] As a preferred embodiment of the above technical solution, one side of the door panel is hinged to the container body, and a rotating shaft located at the hinge center and rotatably inserted into the container body is fixedly provided on the surface of the door panel. A fixed lock is provided between the other side of the door panel and the container body.

[0006] As a preferred embodiment of the above technical solution, one side of the dehumidifier is flush with the inner surface of the door panel, and the other side of the dehumidifier is provided with a mounting plate, which is fixedly connected to the door panel by a positioning component.

[0007] As a preferred embodiment of the above technical solution, the surfaces of the rotating shaft and the fixed lock are flush with the container body, and the door panel corresponding to the rotating shaft and the fixed lock is embedded in the container body.

[0008] As a preferred embodiment of the above technical solution, the bottom of the container body is provided with multiple drainage drains, which are located at the bottom of the dehumidifier. Condensate inside the container body is discharged out of the container body through the drainage drains.

[0009] The beneficial effects of this utility model are as follows: 1. Dehumidifiers are installed on both sides of the door panels between each battery cluster. The dehumidification effect is covered between each battery cluster in a uniform manner, ensuring uniform humidity in all areas of the compartment. This directly improves the dehumidification efficiency and the stability of the battery operating environment. Furthermore, the dehumidifiers are installed in the bearing cavity inside the door panel, which integrates the dehumidification equipment with the door panel structure. This avoids the dehumidifiers being exposed and occupying space in the compartment. When used with the pre-embedded drainage pipes, it reduces the risk of collision damage to the exposed pipes and also prevents condensation from accumulating in the compartment, making the use of the energy storage battery compartment safer. 2. The door panel, which is hinged to the container body, is fixed with a lock. With the assistance of the rotating shaft, it is easy to open the door panel for maintenance of the dehumidifier or battery pack. At the same time, the rotating shaft and the surface of the lock are flush with the container body, and the door panel is embedded, avoiding the problems of traditional door panels that protrude and are prone to collision and dust accumulation, thus balancing maintenance convenience and structural safety. Attached Figure Description

[0010] Figure 1 The diagram shown is a schematic representation of the overall structure of the embodiment; Figure 2 The diagram shown is a top sectional view of the container body in the embodiment; Figure 3 The examples shown are from the embodiments. Figure 2 Enlarged view of part A; Figure 4 The image shown is a right-side sectional view of the container body in the embodiment; Figure 5 The examples shown are from the embodiments. Figure 4 Enlarged view of part B; Figure 6 The examples shown are from the embodiments. Figure 4 Enlarged view of part C.

[0011] In the diagram: 10. Container body; 11. Battery cluster storage room; 20. Environmental control equipment; 30. Electrical equipment; 40. Dehumidifier; 50. Door panel; 51. Load-bearing cavity; 52. Drain pipe; 53. Rotating shaft; 54. Fixed lock; 55. Mounting plate; 60. Drainage floor drain. Detailed Implementation

[0012] To make the objectives, technical solutions, and advantages of the present invention clearer, the technical solutions of the present invention will be clearly and completely described below in conjunction with the embodiments and the accompanying drawings.

[0013] Figures 1-6 The uniformly distributed dehumidified energy storage battery compartment includes: a container body, in which several battery cluster holding chambers are equidistantly arranged, one of which is equipped with environmental control equipment and electrical equipment connected to the environmental control equipment; the other battery cluster holding chambers are provided with doors on both sides, and multiple bearing cavities are opened on the inner surface of the door panels. Each bearing cavity is equipped with a dehumidifier connected to the environmental control equipment, and the dehumidifier is a semiconductor dehumidification device (SDCS-2F60). A drain pipe is installed inside the door panel. One end of the drain pipe is connected to the outlet of the dehumidifier, and the other end of the drain pipe extends to the outside of the container body. The condensate generated by the dehumidifier is discharged outside the container through the drain pipe embedded in the door panel.

[0014] One side of the dehumidifier is flush with the inner surface of the door panel, and the other side of the dehumidifier is provided with a mounting plate, which is fixedly connected to the door panel by a positioning component.

[0015] Each battery cluster is equipped with dehumidifiers on both sides of the door panels. By evenly distributing the dehumidifiers, the dehumidification effect covers each battery cluster, ensuring uniform humidity in all areas of the compartment. This directly improves dehumidification efficiency and the stability of the battery operating environment. Furthermore, the dehumidifiers are housed in the load-bearing cavity inside the door panels, integrating the dehumidification equipment with the door panel structure. This avoids the dehumidifiers being exposed and occupying space inside the compartment. When used in conjunction with the pre-embedded drainage pipes, it reduces the risk of collision damage to exposed pipelines and prevents condensation from accumulating inside the compartment, making the use of the energy storage battery compartment safer.

[0016] Figure 1 , Figure 4 and Figure 5 In this container, one side of the door panel is hinged to the container body, and a rotating shaft located at the hinge center and rotatably inserted into the container body is fixedly provided on the surface of the door panel. A fixed lock is provided between the other side of the door panel and the container body.

[0017] The surfaces of the rotating shaft and the fixed lock are flush with the container body, and the door panel corresponding to the rotating shaft and the fixed lock is embedded in the container body.

[0018] The door panel, which is hinged to the container body, is fixed with a lock. With the assistance of the rotating shaft, it is easy to open the door panel for maintenance of the dehumidifier or battery pack. At the same time, the rotating shaft and the surface of the lock are flush with the container body, and the door panel is embedded, avoiding the problems of traditional door panels that are prone to collision and dust accumulation, thus balancing maintenance convenience and structural safety.

[0019] Figure 2 and Figure 3 In this container, multiple drains are installed at the bottom of the container body. The drains are located at the bottom of the dehumidifier, and condensate inside the container body is discharged to the outside of the container body through the drains.

[0020] The floor drain, in conjunction with the drain pipe, achieves a dual drainage effect. If the dehumidifier drain pipe leaks due to blockage or other reasons, the bottom floor drain can promptly drain the condensate, preventing water accumulation in the compartment, further ensuring the safety of battery operation, and resolving the reliability issues of a single drainage system.

[0021] Working principle: Turning on the electrical equipment switch continuously supplies power to the environmental control equipment and multiple dehumidifiers. After the temperature is set by the environmental control equipment, multiple dehumidifiers start working to dehumidify each battery cluster storage compartment. The condensate generated during the dehumidification process is discharged out of the container through the drain pipe inside the door panel, while the condensate inside the container is discharged through the drain drain at the bottom of the container. When it is necessary to maintain the dehumidifiers or remove or place the battery clusters, the locking mechanism is opened, and the doors on both sides can be rotated and opened by rotating the shaft.

[0022] The above embodiments are only used to illustrate the technical solution of this utility model, and are not intended to limit it.

Claims

1. A uniformly distributed dehumidifying energy storage battery compartment, characterized in that, include: The container body has several battery cluster storage compartments arranged at equal intervals inside the container body. One of the battery cluster storage compartments is equipped with an environmental control device and electrical equipment connected to the environmental control device. The other battery cluster storage compartments are equipped with doors on both sides. Multiple load-bearing cavities are opened on the inner surface of the door panels. Dehumidifiers connected to the environmental control device are installed inside the load-bearing cavities. A drain pipe is installed inside the door panel. One end of the drain pipe is connected to the outlet of the dehumidifier, and the other end of the drain pipe extends to the outside of the container body. The condensate generated by the dehumidifier is discharged outside the container through the drain pipe embedded in the door panel.

2. The uniformly distributed dehumidifying energy storage battery compartment according to claim 1, characterized in that, One side of the door panel is hinged to the container body, and a rotating shaft located at the hinge center and rotatably inserted into the container body is fixedly provided on the surface of the door panel. A fixed lock is provided between the other side of the door panel and the container body.

3. The uniformly distributed dehumidifying energy storage battery compartment according to claim 1, characterized in that, One side of the dehumidifier is flush with the inner surface of the door panel, and the other side of the dehumidifier is provided with a mounting plate, which is fixedly connected to the door panel by a positioning component.

4. The uniformly distributed dehumidified energy storage battery compartment according to claim 2, characterized in that, The surfaces of the rotating shaft and the fixed lock are flush with the container body, and the door panel corresponding to the rotating shaft and the fixed lock is embedded in the container body.

5. The uniformly distributed dehumidifying energy storage battery compartment according to claim 1, characterized in that, The container body is equipped with multiple drainage drains at the bottom, which are located at the bottom of the dehumidifier. Condensate inside the container body is discharged to the outside of the container body through the drainage drains.