Outdoor energy storage cabinet

By designing the heat dissipation and mobile frame structure of the outdoor energy storage cabinet, using fan heat discharge and water resource barriers, the problems of spontaneous combustion and fire risks of the energy storage cabinet battery pack are solved, and the safe transfer of the battery pack and the safe operation of the equipment are achieved.

CN120280642APending Publication Date: 2025-07-08XUZHOU OUYASI ENERGY TECH CO LTD
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Patent Information

Application Number
CN202510412460.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-03
Publication Date
2025-07-08

AI Technical Summary

Technical Problem

Existing energy storage cabinets are prone to failure of power components under the influence of external ambient temperature and internal temperature, and the battery pack is prone to spontaneous combustion, which poses a fire risk, affecting the safety of use.

Method used

An outdoor energy storage cabinet is designed, including the first and second storage mechanisms, and the movable frame structure uses the heat dissipation component and the mobile frame structure to achieve safe transfer of the battery pack and fire control through the synergistic effect of fan heat discharge, water resource barrier and mobile components.

Benefits of technology

Effectively prevent battery packs from spontaneous combustion, ensure the safety of power components, reduce the risk of fire expansion, improve the safety of equipment use, and operate at normal temperatures.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of energy storage cabinet equipment, in particular to an outdoor energy storage cabinet which comprises a first storage mechanism, the first storage mechanism comprises a bottom frame, a top frame, a side frame and a heat dissipation part, the top frame is fixedly connected to the top of the bottom frame, the side frame is arranged on the outer surface of one side of the top frame in a communicating mode, and the heat dissipation part is arranged on the top frame. During use, when a fire occurs to an electric power part in the top frame, the temperature of the top frame is gradually increased, then the temperature can be transmitted to the baffle through the side frame, the stability of the adhered baffle is loosened, and meanwhile the temperature in the top frame is continuously transmitted to the interior of the liquid storage frame; and therefore, water resources in the liquid storage frame can temporarily prevent the temperature in the top frame from being transmitted to the interior of the movable frame too fast, the water resources in the liquid storage frame are continuously evaporated under the influence of heat, and under the blocking of the sealing plate, the pressure in the liquid storage frame below the sealing plate is continuously increased until the sealing plate is jacked to form a gap with the inner wall of the liquid storage frame.
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Description

Technical Field

[0001] The present invention belongs to the technical field of energy storage cabinet equipment, and specifically relates to an outdoor energy storage cabinet. Background Art

[0002] An energy storage cabinet is a device specifically designed to store electrical energy.

[0003] However, in the prior art, since the existing energy storage cabinet needs to store electrical energy, a certain number of battery packs need to be stored. Affected by the external environmental temperature and the internal temperature of the existing energy storage cabinet, it is easy to cause failures in the internal electrical components of the energy storage cabinet. During long-term use, the faulty electrical components are likely to cause a fire, and the battery packs are relatively easy to catch fire due to the influence of the fire, which then leads to the expansion of the fire situation and affects the use safety of the existing energy storage cabinet. Summary of the Invention

[0004] The purpose of the present invention is to provide an outdoor energy storage cabinet that can timely transfer battery packs, prevent the battery packs from spontaneous combustion or being affected by fire, and improve the actual use safety of the device.

[0005] The technical solution adopted by the present invention is as follows: An outdoor energy storage cabinet, comprising: a first storage mechanism, the first storage mechanism includes a bottom frame, a top frame, side frames and a heat dissipation component, the top frame is fixedly connected to the top of the bottom frame, the side frames are communicatively arranged on the outer surface of one side of the top frame, and the heat dissipation component is arranged on the top frame; and

[0006] a second storage mechanism, the second storage mechanism includes a moving frame, two groups of heat insulation plates, three abutting blocks and a moving component, the moving frame is slidably inserted between the inside of the top frame and the side frames, the two groups of heat insulation plates are fixedly connected to the inner bottom surface of the moving frame, the three abutting blocks are fixedly connected to the inner bottom surface of the moving frame, and the moving component is arranged on the three abutting blocks.

[0007] Wherein, a partition board is fixedly connected between the opposite inner side walls of the two sides of the bottom frame, and a guide plate is fixedly connected between the opposite inner side walls of the two sides of the bottom frame.

[0008] Wherein, a bottom groove is formed on the inner bottom surface of the top frame, and a plurality of support rollers are rotatably connected at equal intervals between the opposite inner side walls of the two sides of the bottom groove.

[0009] Wherein, a plurality of exhaust ports are equidistantly formed on the inner side wall of one side of the side frame, a fan is arranged inside each exhaust port, and three baffles are adhesively attached to the outer surface of one side of the side frame at equal intervals.

[0010] Among them, the heat dissipation component includes a liquid storage frame, a plurality of heat conducting fins, three guiding frames, and two groups of L-shaped heat insulation sheets. The liquid storage frame is fixedly connected between the inside of the top frame and the side frame. A plurality of the heat conducting fins penetrate through the outer surface of one side of the liquid storage frame at equal intervals. The two groups of L-shaped heat insulation sheets are both fixedly connected to the inside of the liquid storage frame. The three guiding frames are embedded in the outer surface of one side of the liquid storage frame. A sliding rod is fixedly connected to the inner bottom surface of each guiding frame. A moving block is slidably sleeved on the outer surface of each sliding rod. A moving rod is fixedly connected to the top of each moving block. One end of each moving rod is fixedly connected with a sealing plate.

[0011] Among them, three liquid injection holes are equidistantly arranged on the outer surface of the other side of the liquid storage frame. A sealing bolt is threadedly connected to the inside of each liquid injection port.

[0012] Among them, one end of each moving rod slidably penetrates through the corresponding guiding frame, one end of each moving rod slidably extends into the inside of the liquid storage frame, the outer surface of each sealing plate fits with the inner wall of the corresponding liquid storage frame, and the outer surface of each sealing plate fits with the outer surface of the corresponding L-shaped heat insulation sheet.

[0013] Among them, three groups of moving components are provided. Each group of moving components includes a sliding plate and a placing plate. The sliding plate is placed on the corresponding abutting block. The placing plate is fixedly connected to the top of the sliding plate. A first card slot is arranged on the outer surface of one side of the sliding plate. A card block is slidably inserted into the outer surface of one side of the sliding plate. A second card slot is arranged on the outer surface of one side of the card block. A blocking strip is fixedly connected to the bottom of the sliding plate.

[0014] Among them, one end of each moving block extends into the corresponding first card slot. A third card slot is arranged on the outer surface of one side of each heat insulation plate. Each third card slot communicates with the corresponding second card slot and the inside of the first card slot. A moving groove is arranged on the top of each abutting block. A guiding rod is fixedly connected to the inside of each moving groove. A pushing block is slidably sleeved on the outer surface of each guiding rod. A card strip is fixedly connected to the outer surface of one side of each pushing block. Each card strip is clamped with the corresponding card block. A supporting spring is slidably sleeved on the outer surface of each guiding rod.

[0015] A usage method of an outdoor energy storage cabinet includes the following steps:

[0016] S1. Heat dissipation adjustment: The required power components can be conveniently installed through the top frame. The existing battery pack is fixedly arranged on the top of the placing plate. At the same time, under the blockage of the partition plate and the guiding plate, the bottom frame can store water resources. At the same time, water resources can be injected into the liquid storage frame below the sealing plate through the liquid injection holes, so that the liquid storage frame can divide the internal spaces of the top frame and the moving frame. At the same time, under the action of the fan, the heat in the top frame and the moving frame transmitted through the liquid storage frame can be discharged in time;

[0017] S2. Safety protection: When a fire breaks out in the power components inside the top frame, the temperature of the top frame gradually rises. As a result, the temperature can be transmitted through the side frame to the baffle, which loosens the stability of the adhered baffle. At the same time, the temperature inside the top frame continuously transfers to the inside of the liquid storage frame, enabling the water resources inside the liquid storage frame to temporarily block the rapid transfer of the temperature inside the top frame to the inside of the moving frame. As the water resources inside the liquid storage frame continuously evaporate under the influence of heat, and under the blockage of the sealing plate, as the pressure inside the liquid storage frame below the sealing plate continuously increases, until the sealing plate is pushed to have a gap with the inner wall of the liquid storage frame, the evaporated water resources can be normally released. At this time, during the upward movement of the sealing plate, the sealing plate cooperates with the moving rod to drive the moving block upward. As a result, the upward moving block can move the block upward through the first card slot, and then the block can be separated from the blockage of the card strip. Then, under the support of the support spring, after the card strip is released from the position restriction of the block, the push block can drive the card strip to quickly impact the stop bar, causing the stop bar to drive the slide plate to move towards the baffle side. One end of the slide plate impacts the loose baffle, causing the baffle to separate from the side frame. At the same time, one end of the slide plate moves out of the moving frame. Then, under the support of the abutting block, the inclination of the slide plate continuously increases, enabling the battery pack on the top of the placement plate to slide out of the moving frame along with the slide plate, thus preventing the fire from igniting the battery pack and increasing the dangerous situation. When a fire breaks out in the existing battery pack inside the moving frame, under the blockage of the water resources inside the liquid storage frame, the rapid transfer of the temperature inside the moving frame to the inside of the top frame can be blocked for a period of time, thus ensuring the safety of the power components inside the top frame. At the same time, the battery pack on fire is blocked by the L-shaped heat insulation sheet and the heat insulation plate, making the temperature of the battery pack on fire not easily transfer to affect the adjacent battery packs. At the same time, the temperature of the water resources inside the liquid storage frame on one side of the battery pack on fire will rise fastest. As a result, the corresponding sealing plate will first cooperate with the moving rod to drive the moving block to move to a certain height, causing the moving block to drive the block to separate from the card strip. Then, the slide plate at the corresponding position can cooperate with the placement plate to discharge the battery pack on fire. At the same time, under the guidance of the guiding plate, the battery pack on fire can slide into the water resources inside the bottom frame, causing the water resources inside the bottom frame to evaporate to generate a large amount of water vapor under the influence of high temperature, which is convenient for the monitoring personnel to detect.

[0018] In summary, due to the adoption of the above technical solutions, the beneficial effects of the present invention are:

[0019] (1)In the present invention, during use, when a fire breaks out in the electrical components inside the top frame, the temperature of the top frame gradually rises. As a result, the temperature can be transmitted through the side frame to the baffle, thereby loosening the stability of the adhered baffle. At the same time, the temperature inside the top frame is continuously transmitted to the inside of the liquid storage frame, so that the water resources inside the liquid storage frame can temporarily block the rapid transmission of the temperature inside the top frame to the inside of the moving frame. As the water resources inside the liquid storage frame are continuously evaporated under the influence of heat, and under the blockage of the sealing plate, as the pressure inside the liquid storage frame below the sealing plate continuously increases, until the sealing plate is pushed to have a gap with the inner wall of the liquid storage frame, so that the evaporated water resources can be normally released. At this time, during the upward movement of the sealing plate, the sealing plate cooperates with the moving rod to drive the moving block upward, so that the upward moving block can move the clamping block upward through the first clamping groove, and then the clamping block can be separated from the blockage of the clamping strip. Then, under the support of the supporting spring, after the clamping strip is released from the position restriction of the clamping block, the pushing block can drive the clamping strip to quickly impact the blocking strip, so that the blocking strip drives the sliding plate to move towards the baffle side. One end of the sliding plate impacts the loose baffle, so that the baffle can be separated from the side frame. At the same time, one end of the sliding plate moves out of the moving frame. Then, under the support of the abutting block, the inclination of the sliding plate continuously increases, so that the battery pack on the top of the placement plate can slide out of the moving frame along with the sliding plate, thereby preventing the fire from igniting the battery pack and increasing the dangerous situation. When a fire breaks out in the existing battery pack inside the moving frame, under the blockage of the water resources inside the liquid storage frame, it can block the rapid transmission of the temperature inside the moving frame to the inside of the top frame for a period of time, thereby ensuring the safety of the electrical components inside the top frame. At the same time, the battery pack on fire is blocked by the L-shaped heat insulation sheet and the heat insulation board, so that the temperature of the battery pack on fire is not easily transmitted to affect the adjacent battery packs. At the same time, the temperature of the water resources inside the liquid storage frame on one side of the battery pack on fire will rise fastest, so that the corresponding sealing plate will first cooperate with the moving rod to drive the moving block to move to a certain height, so that the moving block drives the clamping block to separate from the clamping strip, and then the sliding plate at the corresponding position can cooperate with the placement plate to discharge the battery pack on fire, thereby ensuring the safety of other functional components of the equipment. At the same time, under the guidance of the guiding plate, the battery pack on fire can slide into the water resources inside the bottom frame, so that the water resources inside the bottom frame are affected by the high temperature and can evaporate to generate a large amount of water vapor, which is convenient for the monitoring personnel to detect and improves the safety of the actual use of the equipment.

[0020] (2) In the present invention, during use, the bottom frame is embedded in a designated position so that the bottom of the top frame can be flush with the ground. Through the top frame, the installation and setting of the required electrical components can be conveniently carried out. The existing battery pack is fixedly arranged on the top of the placement plate. At the same time, under the blockage of the partition plate and the guide plate, the bottom frame can store water resources. Meanwhile, water resources can be injected into the liquid storage frame below the sealing plate through the liquid injection hole. Thus, the liquid storage frame can partition the internal spaces of the top frame and the moving frame. At the same time, under the action of the fan, the heat inside the top frame and the moving frame transmitted through the liquid storage frame can be discharged in time. Thereby, it is ensured that the electrical components inside the top frame and the existing battery pack inside the moving frame can operate at a normal operating temperature, enabling the device to efficiently realize its due functions. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 is the first perspective three-dimensional view of the present invention;

[0022] Figure 2 is the second perspective three-dimensional view of the present invention;

[0023] Figure 3 is the first perspective sectional expanded three-dimensional view of the present invention;

[0024] Figure 4 is the first perspective expanded three-dimensional view of the first storage mechanism of the present invention;

[0025] Figure 5 is the second perspective sectional expanded three-dimensional view of the first storage mechanism of the present invention;

[0026] Figure 6 is of the present invention Figure 5 enlarged view of part A;

[0027] Figure 7 is of the present invention Figure 5 enlarged view of part B;

[0028] Figure 8 is of the present invention Figure 5 enlarged view of part C;

[0029] Figure 9 is the second perspective sectional expanded three-dimensional view of the second storage mechanism of the present invention;

[0030] Figure 10 is of the present invention Figure 9 enlarged view of part D;

[0031] Figure 11 is of the present invention Figure 9 enlarged view of part E.

[0032] Markings in the figure: 1. First storage mechanism; 101. Bottom frame; 102. Partition board; 103. Guide plate; 104. Top frame; 105. Support roller; 106. Side frame; 107. Fan; 108. Baffle; 109. Liquid storage frame; 110. L-shaped heat insulation sheet; 111. Heat conducting sheet; 112. Guide frame; 113. Moving block; 114. Moving rod; 115. Sealing plate; 2. Second storage mechanism; 201. Moving frame; 202. Heat insulation board; 203. Blocking block; 204. Guide rod; 205. Pushing block; 206. Card strip; 207. Support spring; 208. Slide plate; 209. Placing plate; 210. Blocking strip; 211. Clamping block. Detailed implementation

[0033] In order to make the objectives, technical solutions and advantages of the present invention clearer and more understandable, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.

[0034] Embodiment. Please refer to Figures 1 - 3 , an outdoor energy storage cabinet, which is composed of a first storage mechanism 1 and a second storage mechanism 2.

[0035] Specifically described as follows:

[0036] Please refer to Figures 4 - 8, the first storage mechanism 1 includes a bottom frame 101, a top frame 104, side frames 106 and a heat dissipation component. The top frame 104 is fixedly connected to the top of the bottom frame 101. The side frames 106 are communicatively arranged on the outer surface of one side of the top frame 104. The heat dissipation component is arranged on the top frame 104. A partition 102 is fixedly connected between the opposite inner sidewalls of both sides of the bottom frame 101. A guide plate 103 is fixedly connected between the opposite inner sidewalls of both sides of the bottom frame 101. A bottom groove is formed on the inner bottom surface of the top frame 104. A plurality of support rollers 105 are rotatably connected at equal intervals between the opposite inner sidewalls of both sides of the bottom groove. A plurality of exhaust ports are equidistantly formed on the inner sidewall of one side of the side frame 106. A fan 107 is arranged inside each exhaust port. Three baffles 108 are adhesively attached to the outer surface of one side of the side frame 106 at equal intervals. The heat dissipation component includes a liquid storage frame 109, a plurality of heat conduction fins 111, three guide frames 112 and two groups of L-shaped heat insulation sheets 110. The liquid storage frame 109 is fixedly connected between the inside of the top frame 104 and the side frames 106. A plurality of heat conduction fins 111 penetrate through the outer surface of one side of the liquid storage frame 109 at equal intervals. Two groups of L-shaped heat insulation sheets 110 are fixedly connected inside the liquid storage frame 109. Three guide frames 112 are embedded in the outer surface of one side of the liquid storage frame 109. A sliding rod is fixedly connected to the inner bottom surface of each guide frame 112. A moving block 113 is slidably sleeved on the outer surface of each sliding rod. A moving rod 114 is fixedly connected to the top of each moving block 113. A sealing plate 115 is fixedly connected to one end of each moving rod 114. Three liquid injection holes are equidistantly formed on the outer surface of the other side of the liquid storage frame 109. A sealing bolt is threadedly connected inside each liquid injection port. One end of each moving rod 114 slidably penetrates through the corresponding guide frame 112. One end of each moving rod 114 slidably extends into the liquid storage frame 109. The outer surface of each sealing plate 115 fits with the inner sidewall of the corresponding liquid storage frame 109, and the outer surface of each sealing plate 115 fits with the outer surface of the corresponding L-shaped heat insulation sheet 110. Through the top frame 104, the installation of the required electrical components can be conveniently carried out. The existing battery pack is fixedly arranged on the top of the placement plate 209. At the same time, under the blockage of the partition 102 and the guide plate 103, the bottom frame 101 can store water resources. At the same time, water resources can be injected into the liquid storage frame 109 below the sealing plate 115 through the liquid injection holes. Thus, the liquid storage frame 109 can divide the internal spaces of the top frame 104 and the moving frame 201. At the same time, under the action of the fan 107, the heat inside the top frame 104 and the moving frame 201 transferred through the liquid storage frame 109 can be discharged in time. Thus, it is ensured that the electrical components inside the top frame 104 and the existing battery pack inside the moving frame 201 can operate at the normal operating temperature, enabling the device to efficiently realize its due functions. When a fire breaks out in the electrical components inside the top frame 104, the temperature of the top frame 104 gradually rises. Thus, the temperature can be transferred to the baffle 108 through the side frame 106. Thus, the stability of the adhered baffle 108 becomes loose. At the same time, the temperature inside the top frame 104 is continuously transferred to the inside of the liquid storage frame 109.Furthermore, the water resources inside the liquid storage frame 109 can temporarily block the rapid transfer of the temperature inside the top frame 104 to the inside of the moving frame 201. As the water resources inside the liquid storage frame 109 are continuously evaporated under the influence of heat, and under the blockage of the sealing plate 115, as the pressure inside the liquid storage frame 109 below the sealing plate 115 continuously increases, until the sealing plate 115 is pushed to have a gap with the inner wall of the liquid storage frame 109, thus enabling the evaporated water resources to be normally released. At this time, during the upward movement of the sealing plate 115, the sealing plate 115 cooperates with the moving rod 114 to drive the moving block 113 to move upward, so that the upward moving block 113 can move the clamping block 211 upward through the first card slot, and then enable the clamping block 211 to break away from the blockage of the card strip 206;

[0037] Please refer to Figures 9 - 11, the second storage mechanism 2 includes a movable frame 201, two groups of heat insulation plates 202, three abutting blocks 203 and a moving component. The movable frame 201 is slidably inserted between the inner parts of the top frame 104 and the side frame 106. The two groups of heat insulation plates 202 are fixedly connected to the inner bottom surface of the movable frame 201. The three abutting blocks 203 are fixedly connected to the inner bottom surface of the movable frame 201. The moving component is arranged on the three abutting blocks 203. There are three groups of moving components in total. Each group of moving components includes a sliding plate 208 and a placing plate 209. The sliding plate 208 is placed on the corresponding abutting block 203. The placing plate 209 is fixedly connected to the top of the sliding plate 208. A first clamping groove is formed on the outer surface of one side of the sliding plate 208. A clamping block 211 is slidably inserted into the outer surface of one side of the sliding plate 208. A second clamping groove is formed on the outer surface of one side of the clamping block 211. A blocking strip 210 is fixedly connected to the bottom of the sliding plate 208. One end of each moving block 113 extends into the corresponding first clamping groove. A third clamping groove is formed on the outer surface of one side of each heat insulation plate 202. Each third clamping groove communicates with the corresponding second clamping groove and the inside of the first clamping groove. A moving groove is formed on the top of each abutting block 203. A guiding rod 204 is fixedly connected to the inside of each moving groove. A pushing block 205 is slidably sleeved on the outer surface of each guiding rod 204. A clamping strip 206 is fixedly connected to the outer surface of one side of each pushing block 205. Each clamping strip 206 is clamped with the corresponding clamping block 211. A supporting spring 207 is slidably sleeved on the outer surface of each guiding rod 204. Under the support of the supporting spring 207, after the clamping strip 206 is released from the position limitation of the clamping block 211, the pushing block 205 can drive the clamping strip 206 to quickly impact the blocking strip 210, so that the blocking strip 210 drives the sliding plate 208 to move towards the baffle 108. One end of the sliding plate 208 impacts and loosens the baffle 108, so that the baffle 108 can be separated from the side frame 106. At the same time, one end of the sliding plate 208 moves out of the movable frame 201. Then, under the support of the abutting block 203, the inclination of the sliding plate 208 is continuously increased, so that the battery pack on the top of the placing plate 209 can slide out of the movable frame 201 along with the sliding plate 208, thereby preventing the fire from igniting the battery pack and increasing the dangerous situation. When a fire occurs in the existing battery pack inside the movable frame 201, under the blockage of the water resource in the liquid storage frame 109, the temperature inside the movable frame 201 can be blocked from quickly transferring to the inside of the top frame 104 for a period of time, thereby ensuring the safety of the power components inside the top frame 104. At the same time, the battery pack on fire is blocked by the L-shaped heat insulation sheet 110 and the heat insulation plate 202, so that the temperature of the battery pack on fire is not easily transferred to affect the adjacent battery packs. At the same time, the temperature of the water resource inside the liquid storage frame 109 on one side of the battery pack on fire will rise fastest. Then, the corresponding sealing plate 115 will first cooperate with the moving rod 114 to drive the moving block 113 to move to a certain height, so that the moving block 113 drives the clamping block 211 to separate from the clamping strip 206. Then, the sliding plate 208 at the corresponding position can cooperate with the placing plate 209 to discharge the battery pack on fire, thereby ensuring the safety of other functional components of the equipment. At the same time, under the guidance of the guiding plate 103,Enable the battery pack with a fire to slide into the water resource inside the bottom frame 101, so that the water resource inside the bottom frame 101 is affected by high temperature and can evaporate to generate a large amount of water vapor, which is convenient for the monitoring personnel to detect and improves the safety of the actual use of the equipment.

[0038] The following is a detailed description of a usage method of an outdoor energy storage cabinet provided by an embodiment of the present invention. The usage method includes the following steps:

[0039] Step 1, heat dissipation adjustment: Through the top frame 104, the installation and setting of the required power components can be conveniently carried out. The existing battery pack is fixedly arranged on the top of the placement plate 209. At the same time, under the blockage of the partition plate 102 and the guide plate 103, the bottom frame 101 can store water resources. At the same time, water resources can be injected into the liquid storage frame 109 below the sealing plate 115 through the liquid injection hole. Then, the liquid storage frame 109 can divide the internal spaces of the top frame 104 and the moving frame 201. At the same time, under the action of the fan 107, the heat inside the top frame 104 and the moving frame 201 transmitted through the liquid storage frame 109 can be discharged in time, so as to ensure that the power components inside the top frame 104 and the existing battery pack inside the moving frame 201 can operate at a normal operating temperature, and the equipment can efficiently realize its due functions;

[0040] Step 2. Safety protection: When a fire breaks out in the internal electrical components of the top frame 104, the temperature of the top frame 104 gradually rises. As a result, the temperature can be transmitted through the side frame 106 to the baffle 108, which loosens the stability of the adhered baffle 108. At the same time, the temperature inside the top frame 104 is continuously transmitted to the inside of the liquid storage frame 109, so that the water resources inside the liquid storage frame 109 can temporarily block the rapid transmission of the temperature inside the top frame 104 to the inside of the moving frame 201. As the water resources inside the liquid storage frame 109 are continuously evaporated under the influence of heat, and under the blockage of the sealing plate 115, as the pressure inside the liquid storage frame 109 below the sealing plate 115 continuously increases, until the sealing plate 115 is pushed to have a gap with the inner wall of the liquid storage frame 109, so that the evaporated water resources can be normally released. At this time, during the upward movement of the sealing plate 115, the sealing plate 115 cooperates with the moving rod 114 to drive the moving block 113 to move upward, so that the upward moving block 113 can move the clamping block 211 upward through the first card slot, and then the clamping block 211 can be separated from the blockage of the card strip 206. Then, under the support of the support spring 207, after the card strip 206 is released from the position restriction of the clamping block 211, the push block 205 can drive the card strip 206 to quickly impact the stop strip 210, so that the stop strip 210 drives the sliding plate 208 to move towards the baffle 108 side. One end of the sliding plate 208 impacts the loose baffle 108, so that the baffle 108 can be separated from the side frame 106. At the same time, one end of the sliding plate 208 moves out of the moving frame 201. Then, under the support of the abutting block 203, the inclination of the sliding plate 208 continuously increases, so that the battery pack on the top of the placing plate 209 can slide out of the moving frame 201 along with the sliding plate 208, thus preventing the fire from igniting the battery pack and increasing the dangerous situation. When a fire breaks out in the existing battery pack inside the moving frame 201, under the blockage of the water resources inside the liquid storage frame 109, the rapid transmission of the temperature inside the moving frame 201 to the inside of the top frame 104 can be blocked for a period of time, thus ensuring the safety of the internal electrical components of the top frame 104. At the same time, the battery pack on fire is blocked by the L-shaped heat insulation sheet 110 and the heat insulation plate 202, so that the temperature of the battery pack on fire is not easily transmitted to affect the adjacent battery packs. At the same time, the temperature of the water resources inside the liquid storage frame 109 on one side of the battery pack on fire will rise fastest, so that the corresponding sealing plate 115 will first cooperate with the moving rod 114 to drive the moving block 113 to move to a certain height, so that the moving block 113 drives the clamping block 211 to separate from the card strip 206, and then the corresponding sliding plate 208 can cooperate with the placing plate 209 to discharge the battery pack on fire, thus ensuring the safety of other functional components of the equipment. At the same time, under the guidance of the guiding plate 103, the battery pack on fire can slide into the water resources inside the bottom frame 101, so that the water resources inside the bottom frame 101 are affected by the high temperature and can evaporate to generate a large amount of water vapor, which is convenient for the monitoring personnel to detect and improves the safety of the actual use of the equipment.

[0041] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. An outdoor energy storage cabinet, characterized in that, Comprising: A first storage mechanism (1), the first storage mechanism (1) includes a bottom frame (101), a top frame (104), side frames (106) and a heat dissipation component, the top frame (104) is fixedly connected to the top of the bottom frame (101), the side frames (106) are communicatively arranged on the outer surface of one side of the top frame (104), and the heat dissipation component is arranged on the top frame (104); and A second storage mechanism (2), the second storage mechanism (2) includes a moving frame (201), two groups of heat insulation plates (202), three abutting blocks (203) and a moving component, the moving frame (201) is slidably inserted between the inside of the top frame (104) and the side frames (106), the two groups of heat insulation plates (202) are fixedly connected to the inner bottom surface of the moving frame (201), the three abutting blocks (203) are fixedly connected to the inner bottom surface of the moving frame (201), and the moving component is arranged on the three abutting blocks (203).

2. The outdoor energy storage cabinet according to claim 1, characterized in that: A partition plate (102) is fixedly connected between the opposite inner surfaces of the two sides of the bottom frame (101), and a guide plate (103) is fixedly connected between the opposite inner surfaces of the two sides of the bottom frame (101).

3. An outdoor energy storage cabinet according to claim 2, characterized in that: A bottom groove is formed on the inner bottom surface of the top frame (104), and a plurality of support rollers (105) are rotatably connected at equal intervals between the opposite inner surfaces of the two sides of the bottom groove.

4. The outdoor energy storage cabinet according to claim 3, characterized in that: A plurality of exhaust ports are equidistantly formed on the inner surface of one side of the side frame (106), a blower (107) is arranged inside each exhaust port, and three baffles (108) are adhesively attached to the outer surface of one side of the side frame (106) at equal intervals.

5. An outdoor energy storage cabinet according to claim 4, characterized in that: The heat dissipation component includes a liquid storage frame (109), a plurality of heat conduction fins (111), three guide frames (112) and two groups of L-shaped heat insulation sheets (110), the liquid storage frame (109) is fixedly connected between the inside of the top frame (104) and the side frames (106), the plurality of heat conduction fins (111) penetrate through the outer surface of one side of the liquid storage frame (109) at equal intervals, the two groups of L-shaped heat insulation sheets (110) are fixedly connected to the inside of the liquid storage frame (109), the three guide frames (112) are embedded in the outer surface of one side of the liquid storage frame (109), a sliding rod is fixedly connected to the inner bottom surface of each guide frame (112), a moving block (113) is slidably sleeved on the outer surface of each sliding rod, a moving rod (114) is fixedly connected to the top of each moving block (113), and a sealing plate (115) is fixedly connected to one end of each moving rod (114).

6. The outdoor energy storage cabinet according to claim 5, characterized in that: Three liquid injection holes are equidistantly formed on the outer surface of the other side of the liquid storage frame (109), and a sealing bolt is threadedly connected inside each liquid injection port.

7. The outdoor energy storage cabinet according to claim 6, characterized in that: One end of each moving rod (114) slidably penetrates through the corresponding guide frame (112), one end of each moving rod (114) slidably extends into the inside of the liquid storage frame (109), the outer surface of each sealing plate (115) is attached to the inner surface of the corresponding liquid storage frame (109), and the outer surface of each sealing plate (115) is attached to the outer surface of the corresponding L-shaped heat insulation sheet (110).

8. The outdoor energy storage cabinet according to claim 7, characterized in that: There are three groups of the moving components in total. Each group of the moving components includes a sliding plate (208) and a placing plate (209). The sliding plate (208) is placed on the corresponding abutting block (203). The placing plate (209) is fixedly connected to the top of the sliding plate (208). A first card slot is formed on the outer surface of one side of the sliding plate (208). A card block (211) is slidably inserted into the outer surface of one side of the sliding plate (208). A second card slot is formed on the outer surface of one side of the card block (211). A stop bar (210) is fixedly connected to the bottom of the sliding plate (208).

9. The outdoor energy storage cabinet according to claim 8, wherein: One end of each moving block (113) extends into the corresponding first card slot. A third card slot is formed on the outer surface of one side of each heat insulation plate (202). Each third card slot communicates with the corresponding second card slot and the inside of the first card slot. A moving groove is formed on the top of each abutting block (203). A guide rod (204) is fixedly connected to the inside of each moving groove. A push block (205) is slidably sleeved on the outer surface of each guide rod (204). A card strip (206) is fixedly connected to the outer surface of one side of each push block (205). Each card strip (206) is clamped with the corresponding card block (211). A support spring (207) is slidably sleeved on the outer surface of each guide rod (204).

10. A method for using an outdoor energy storage cabinet, characterized in that, When applied to an outdoor energy storage cabinet described in claim 9, it includes the following steps: S1. Heat dissipation adjustment: The installation of the required power components can be conveniently carried out through the top frame (104). The existing battery pack is fixedly arranged on the top of the placing plate (209). At the same time, under the blocking of the partition plate (102) and the guide plate (103), the bottom frame (101) can store water resources. At the same time, water resources can be injected into the liquid storage frame (109) below the sealing plate (115) through the liquid injection hole. Thus, the liquid storage frame (109) can divide the internal spaces of the top frame (104) and the moving frame (201). At the same time, under the action of the fan (107), the heat in the top frame (104) and the moving frame (201) transmitted through the liquid storage frame (109) can be discharged in time; S2. Safety protection: When a fire breaks out in the internal electrical components of the top frame (104), the temperature of the top frame (104) gradually rises, and then the temperature can be transmitted through the side frame (106) to the baffle (108), thereby loosening the stability of the adhered baffle (108). At the same time, the temperature inside the top frame (104) is continuously transmitted to the inside of the liquid storage frame (109), so that the water resources inside the liquid storage frame (109) can temporarily block the rapid transmission of the temperature inside the top frame (104) to the inside of the moving frame (201). As the water resources inside the liquid storage frame (109) are continuously evaporated under the influence of heat, and under the blockage of the sealing plate (115), as the pressure inside the liquid storage frame (109) below the sealing plate (115) continuously increases, until the sealing plate (115) is pushed to have a gap with the inner wall of the liquid storage frame (109), so that the evaporated water resources can be normally released. At this time, during the upward movement of the sealing plate (115), the sealing plate (115) cooperates with the moving rod (114) to drive the moving block (113) upward, so that the upward moving block (113) can move the block (211) upward through the first card slot, and then the block (211) can be separated from the blockage of the card strip (206). Then, under the support of the support spring (207), after the card strip (206) is released from the position restriction of the block (211), the push block (205) can drive the card strip (206) to quickly impact the stop bar (210), so that the stop bar (210) drives the sliding plate (208) to move towards the baffle (108) side. One end of the sliding plate (208) impacts the loose baffle (108), so that the baffle (108) can be separated from the side frame (106). At the same time, one end of the sliding plate (208) moves out of the moving frame (201). Then, under the support of the abutting block (203), the inclination of the sliding plate (208) continuously increases, so that the battery pack on the top of the placement plate (209) can slide out of the moving frame (201) along with the sliding plate (208), thereby preventing the fire from igniting the battery pack and increasing the dangerous situation. When a fire breaks out in the existing battery pack inside the moving frame (201), under the blockage of the water resources inside the liquid storage frame (109), the rapid transmission of the temperature inside the moving frame (201) to the inside of the top frame (104) can be blocked for a period of time, thereby ensuring the safety of the electrical components inside the top frame (104). At the same time, the battery pack on fire is blocked by the L-shaped heat insulation sheet (110) and the heat insulation plate (202), so that the temperature of the battery pack on fire is not easily transmitted to affect the adjacent battery packs. At the same time, the temperature of the water resources inside the liquid storage frame (109) on one side of the battery pack on fire will rise fastest, so that the corresponding sealing plate (115) will first cooperate with the moving rod (114) to drive the moving block (113) to move to a certain height, so that the moving block (113) drives the block (211) to separate from the card strip (206). Then, the corresponding sliding plate (208) can cooperate with the placement plate (209) to discharge the battery pack on fire. At the same time, under the guidance of the guide plate (103),Enable the battery pack with a fire to slide into the internal water resource of the bottom frame (101), so that the internal water resource of the bottom frame (101) is affected by high temperature and can evaporate to generate a large amount of water vapor, which is convenient for the monitoring personnel to detect.

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