Wind and light storage temporary building device

By introducing a heat exchange system and temperature monitoring into the temporary wind, solar and storage device, the problem of heat dissipation difficulty in the battery storage system was solved, and efficient heat dissipation and stable operation of the battery were achieved.

CN223414150UActive Publication Date: 2025-10-03CHINA CONSTRUCTION EIGHTH ENGINEERING GROUP (SICHUAN) NEW ENERGY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422568588.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-23
Publication Date
2025-10-03
Estimated Expiration
2034-10-23

AI Technical Summary

Technical Problem

When the battery storage system is installed, heat is not easily dissipated, causing damage and affecting the storage effect.

Method used

A temporary wind-solar-storage device was designed, including a base plate, a supporting frame, a heat exchange plate, a tray, a heat conduction frame, heat exchange fins and a fan. The battery temperature is monitored in real time through a temperature sensor and a controller, and the heat is dissipated by a fan and a heat exchange system to ensure rapid heat dispersion.

Benefits of technology

It improves the heat dissipation efficiency, avoids the battery from being damaged by heat, and ensures the stability and efficiency of the storage system.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of energy storage devices, and provides a wind and light storage temporary construction device which comprises a bottom plate and a supporting protection frame fixed to the bottom plate. A heat exchange plate is arranged at the bottom in the bottom plate through a groove, a supporting plate located above the heat exchange plate is installed in the supporting protection frame, a plurality of storage batteries are arranged at the top of the supporting plate, temperature sensors are installed on the storage batteries, a heat conduction frame is detachably connected between the supporting plate and the heat exchange plate, a concave frame is fixed to the bottom of the bottom plate, and a plurality of heat exchange fins are arranged on the concave frame. The top of each heat exchange fin extends to the bottom of the bottom plate and the bottom of the heat exchange plate, a vertical plate is arranged on one side of the concave frame, a plurality of fans are arranged on one side of the vertical plate and face the heat exchange fins, and a controller is installed on the bottom plate. The battery storage system has the beneficial effects that the problems that the battery storage system is damaged and the storage effect is influenced due to the fact that the battery storage system is relatively precise in installation and heat is not easy to discharge are solved.
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Description

Technical Field

[0001] The utility model relates to the technical field of energy storage devices, in particular to a wind-solar energy storage temporary device. Background Art

[0002] A temporary wind-solar-storage system typically refers to a hybrid energy system that combines wind power generation, solar power generation, and energy storage technologies. It uses wind turbines and solar photovoltaic panels to capture renewable energy, capable of generating electricity in varying weather conditions, and uses energy storage devices (such as battery storage systems) to store excess electricity for use when needed.

[0003] Temporary wind, solar, and storage systems are typically designed to improve the stability, reliability, and efficiency of power systems to meet electricity demand. By combining wind and solar power generation, they reduce reliance on traditional coal-fired power plants, reduce carbon emissions, and promote the use of renewable energy.

[0004] Currently, renewable energy captured by wind turbines and solar photovoltaic panels is usually stored in a single battery storage system. However, the battery storage system is installed more delicately, which makes it difficult to dissipate heat, causing damage to the battery storage system and affecting the storage effect. Utility Model Content

[0005] In response to the above-mentioned technical problems existing in the prior art, a temporary wind-solar-storage device is provided to solve the problem that the battery storage system is installed very precisely, which makes it difficult to discharge heat, causing damage to the battery storage system and affecting the storage effect.

[0006] The purpose and effect of this utility model are achieved by the following specific technical means:

[0007] A wind-solar storage temporary construction device comprises a base plate and a supporting frame, wherein the supporting frame is fixed to the base plate;

[0008] A heat exchange plate is provided at the bottom of the base plate through a slot, and a support plate located above the heat exchange plate is installed in the support frame, a plurality of batteries are provided on the top of the support plate, and temperature sensors are installed on the batteries. A heat conduction frame is detachably connected between the support plate and the heat exchange plate, a concave frame is fixed to the bottom of the base plate, a plurality of heat exchange fins are provided on the concave frame, and the top of each heat exchange fin extends to the bottom of the base plate and the heat exchange plate, a vertical plate is provided on one side of the concave frame, a plurality of fans are provided on one side of the vertical plate, and the fans face the heat exchange fins, and a controller is installed on the base plate.

[0009] Optionally, the batteries are all equipped with connectors electrically connected thereto, and the upper ends of the connectors pass through the top of the supporting frame.

[0010] Optionally, a support rod is fixed on the bottom plate, and a copper busbar is installed at the bottom of each battery, and the copper busbar is installed on the support rod.

[0011] Optionally, the support rod is provided with a plurality of slots, and the copper busbar is clipped into the slots.

[0012] Optionally, the support plate is a metal plate.

[0013] Compared with the prior art, the beneficial effects of the present invention are:

[0014] This type of wind-solar-storage temporary device has a simple overall design and a reasonable structure. Heat is generated during the input and output of battery energy. The temperature sensor on the battery can detect the battery temperature in real time. The data measured by the temperature sensor will be transmitted to the controller. When the temperature data obtained by the controller is less than the preset value, the fan will not work; on the contrary, the controller will start the fan, and the fan will convey the external airflow to the heat exchange fins. The heat generated by the battery during operation is transferred to the heat exchange plate through the support plate and the heat conduction frame, and then transferred from the heat exchange plate to the heat exchange fins, which facilitates the rapid dispersion and transfer of heat, improves the heat dissipation efficiency and effect of the device during use, and avoids damage to the battery due to large heat loss; the setting of the support rod and the slot thereon facilitates the installation of the copper busbar in an embedded form on the support rod, ensuring the stability of the copper busbar installation. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is a schematic diagram of the overall three-dimensional structure of the utility model;

[0016] Figure 2 This is a schematic diagram of the overall side structure of the utility model;

[0017] Figure 3 This is a schematic diagram of the three-dimensional structure of the support plate, battery, copper busbar, support rod and controller of the utility model;

[0018] Figure 4 It is a schematic diagram of the three-dimensional structure of the bottom plate, concave frame, heat exchange fins and heat exchange plate of the utility model.

[0019] Markings in the figure: base plate 1, support frame 2, heat exchange plate 3, support plate 4, battery 5, copper busbar 6, support rod 7, controller 8, connector 9, temperature sensor 10, concave frame 11, heat exchange fin 12, vertical plate 13, fan 14, heat conduction frame 15. DETAILED DESCRIPTION

[0020] See also Figure 1-4 , further illustrate the embodiments of the present utility model;

[0021] A wind-solar storage temporary construction device includes a base plate 1 and a support frame 2, wherein the support frame 2 is fixed on the base plate 1;

[0022] A heat exchange plate 3 is provided at the bottom of the bottom plate 1 through a slot, and a support plate 4 located above the heat exchange plate 3 is installed in the support frame 2. The support plate 4 is a metal plate, such as a steel plate or an aluminum alloy plate, which is convenient for heat conduction. A plurality of batteries 5 are provided on the top of the support plate 4. The batteries 5 are arranged side by side. A temperature sensor 10 is installed on each battery 5. A heat conduction frame 15 is detachably connected (for example, by bolt connection, clamping, or embedding) to the support plate 4 and the heat exchange plate 3. The presence of the heat conduction frame 15 can not only transfer the heat on the heat support plate 4, but also make a large gap between the support plate 4 and the bottom plate 1. A gap is formed so that the heat on the battery 5 and the support plate 4 can be quickly dissipated through the gap. A concave frame 11 is fixed to the bottom of the bottom plate 1. A plurality of heat exchange fins 12 are provided on the concave frame 11, and the top of each heat exchange fin 12 extends to the bottom of the bottom plate 1 and the heat exchange plate 3. The heat exchange fins 12 can transfer the heat on the heat exchange plate 3 to the outside. A vertical plate 13 is provided on one side of the concave frame 11. A plurality of fans 14 are provided on one side of the vertical plate 13. The fans 14 face the heat exchange fins 12. A controller 8 is installed on the bottom plate 1, and the controller 8 is electrically connected to the temperature sensor 10 and the fan 14.

[0023] Each battery 5 is equipped with a connector 9 electrically connected to it, and the upper end of the connector 9 passes through the top of the support frame 2; a support rod 7 is fixed on the bottom plate 1, and a copper bus 6 is installed at the bottom of each battery 5. The copper bus 6 is installed on the support rod 7. The support rod 7 has several slots, and the copper bus 6 is snapped into the slots.

[0024] Before using the device, the operator needs to install the device in the designated location and use the controller 8 to preset the maximum temperature value of the temperature sensor 10. When storing renewable energy captured by wind turbines and solar photovoltaic panels, it is connected to the connector 9 via a wire, and the connector 9 transmits it to the battery 5 for storage. During this process, the battery 5 generates heat when storing energy. This heat is transferred to the heat transfer frame 15 through the support plate 4. The heat transfer frame 15 then transfers the heat to the plurality of heat exchange fins 12, thereby dissipating the heat to the outside world.

[0025] At the same time, when the device is in use, the battery 5 can be connected to the copper bus 6 through the setting of each copper bus 6 (conductive component) through a wire to transmit the energy stored in the battery 5. The setting of the support rod 7 and the slot thereon facilitates the copper bus 6 to be installed on the support rod 7 in an embedded form, ensuring the stability of the installation of the copper bus 6.

[0026] Heat is generated during the input and output of energy from the battery 5. The temperature sensor 10 on the battery 5 can detect the temperature of the battery 5 in real time. The data measured by the temperature sensor 10 will be transmitted to the controller 8. When the temperature data obtained by the controller 8 is less than the preset value, the fan 14 will not work; on the contrary, the controller 8 will start the fan 14, and the fan 14 will convey the external airflow to the heat exchange fins 12. The heat generated by the battery 5 during operation is transferred to the heat exchange plate 3 through the support plate 4 and the heat conduction frame 15, and then transferred from the heat exchange plate 3 to the heat exchange fins 12, so as to facilitate the rapid dispersion and transfer of heat, improve the heat dissipation efficiency and effect of the device during use, and avoid damage to the battery 5 caused by large heat loss.

Claims

1. A wind-solar storage temporary device, comprising a base plate (1) and a supporting frame (2), wherein the supporting frame (2) is fixed on the base plate (1), and is characterized in that: The bottom of the base plate (1) is provided with a heat exchange plate (3) through a slot, and a support plate (4) located above the heat exchange plate (3) is installed in the support frame (2), a plurality of storage batteries (5) are arranged on the top of the support plate (4), and a temperature sensor (10) is installed on each of the storage batteries (5). A heat conduction frame (15) is detachably connected between the support plate (4) and the heat exchange plate (3). A concave frame (11) is fixed to the bottom of the base plate (1), and a plurality of heat exchange fins (12) are arranged on the concave frame (11), and the top of each heat exchange fin (12) extends to the bottom of the base plate (1) and the heat exchange plate (3). A vertical plate (13) is arranged on one side of the vertical plate (13), and a plurality of fans (14) are arranged on one side of the vertical plate (13). The fans (14) face the heat exchange fins (12). A controller (8) is installed on the base plate (1).

2. The wind-solar-storage-temporary-power-storage device according to claim 1, characterized in that: The batteries (5) are all equipped with connectors (9) electrically connected thereto, and the upper ends of the connectors (9) pass through the top of the supporting frame (2).

3. The wind-solar-storage-temporary-power-storage device according to claim 1, characterized in that: A supporting rod (7) is fixed on the bottom plate (1), and a copper busbar (6) is installed at the bottom of each storage battery (5), and the copper busbar (6) is installed on the supporting rod (7).

4. The wind-solar-storage-temporary-power-storage device according to claim 3, characterized in that: The support rod (7) is provided with a plurality of slots, and the copper busbar (6) is snap-connected in the slots.

5. The wind-solar-storage-temporary-power-storage device according to claim 1, characterized in that: The supporting plate (4) is a metal plate.