Energy storage container with liquid cooling system
By introducing a liquid cooling system and precise heat dissipation design into the energy storage container, the problem of high heat dissipation energy consumption of air conditioners is solved, and the maintenance process is simplified by connecting the mother nozzle and the male nozzle, which improves the safety of the device.
Patent Information
- Application Number
- CN202510528639.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-25
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2045-04-25
AI Technical Summary
Existing energy storage containers are heat dissipated through air conditioners, resulting in high energy consumption and inconvenient maintenance.
An energy storage container with a liquid cooling system is designed to accurately dissipate the battery pack through a cold plate, and the maintenance process is simplified by the design connecting the mother nozzle and the male nozzle, while a fire protection system is equipped to ensure safety.
It greatly reduces heat dissipation energy consumption, simplifies maintenance processes, and improves device safety.
Smart Images

Figure CN120073148A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of energy storage devices, and particularly relates to an energy storage container with a liquid cooling system. Background Art
[0002] An energy storage container is an integrated energy storage system developed for the needs of the mobile energy storage market. It integrates a battery cabinet, a lithium battery management system, and a container dynamic environment monitoring system inside. The container energy storage system has the characteristics of simplifying infrastructure construction costs, short construction periods, high modularity, easy transportation and installation, etc., and can be applied to power stations such as thermal power, wind energy, and solar energy, or islands, communities, schools, research institutions, factories, large load centers and other application scenarios. Existing energy storage containers usually use air conditioners to dissipate heat from the interior of the container, so that the interior space of the container is always within a relatively low temperature range, thereby preventing internal electrical components from being damaged due to high temperature. However, the size of the container is generally large, and its internal space is also large. Cooling the internal space with an air conditioner will consume a large amount of energy. Therefore, we propose an energy storage container with a liquid cooling system. Summary of the Invention
[0003] The purpose of the present invention is to provide an energy storage container with a liquid cooling system to solve the problems raised in the above background art.
[0004] To achieve the above purpose, the present invention provides the following technical solution: An energy storage container with a liquid cooling system, including a box body. A fire protection system is fixedly installed on the outer wall of the top of the box body through bolts, and a liquid cooling system is fixedly installed on the outer wall of one side of the box body through bolts. A control room and an energy storage room are preset inside the box body. A heat insulation layer is bonded to the inner wall of the energy storage room, and a lining layer is riveted to the inner wall of the heat insulation layer. A number of fireproof walls are welded inside the energy storage room. A fireproof door is rotatably connected to the inside of the fireproof wall through a hinge, and a vacuum glass door is rotatably connected between two adjacent fireproof walls through a hinge. A battery rack is installed between the fireproof wall, the vacuum glass door and the lining layer through bolts. A number of bearing racks are fixedly installed on the inner wall of the side of the battery rack through bolts. A battery pack is inserted between two adjacent bearing racks, and a cold plate is inserted between two opposite bearing racks. The cold plate is in contact with the adjacent battery pack. A number of cold branch pipes and a number of hot branch pipes are fixedly installed on the outer wall of the back of the battery rack through pipe clamps, and both the cold branch pipes and the hot branch pipes communicate with the cold plate. The battery pack and the hot branch pipe communicate with the liquid cooling system respectively.
[0005] Further, equidistantly distributed sliding grooves are formed in the outer wall of one side of the carrier frame, and a temperature sensor is fixedly installed on the outer wall of one side of the carrier frame through bolts. Insert bars are integrally formed on the outer walls of both sides of the cold plate, and the insert bars are inserted into the interior of the sliding grooves.
[0006] Further, refrigerant grooves are formed in the cold plate at equal distances. Two connecting male nozzles are threadedly connected to the outer wall of one side of the cold plate, and the connecting male nozzles communicate with the refrigerant grooves. A cover plate is fixedly installed on the top outer wall of the cold plate through bolts, and a convex strip is integrally formed on the top outer wall of the cover plate. Equidistantly distributed connecting female nozzles are threadedly connected to the outer walls of one side of the cold branch pipe and the hot branch pipe, and the connecting male nozzles are inserted into the interior of the connecting female nozzles.
[0007] Further, a fixing frame is threadedly connected to one end of the connecting male nozzle, and a ejector rod is welded inside the fixing frame. A inserting pipe and a conduit are integrally formed at the end of the connecting male nozzle away from the fixing frame, and a inserting pipe is integrally formed on the side outer wall of the inserting pipe.
[0008] Further, a top frame is threadedly connected to one end of the connecting female nozzle, and a spring is installed on the outer wall of one side of the top frame through screws. A piston is inserted into one end of the spring. A throat is integrally formed inside the connecting female nozzle, and the piston is in contact with the throat. A slot is formed in the outer wall of one side of the connecting female nozzle, and a clamping groove is formed in the side inner wall of the slot. The inserting pipe is inserted into the interior of the slot, and a snap ring is clamped in the interior of the clamping groove. The conduit is inserted into the interior of the throat, and the ejector rod is in contact with the piston.
[0009] Further, the liquid cooling system includes a housing. A heat dissipation fin is installed inside the housing through screws, and a condensation pipe is clamped inside the heat dissipation fin. A compressor is fixedly installed on the bottom inner wall of the housing through bolts. A hot main pipe is inserted into the input end of the compressor, and the hot main pipe communicates with the hot branch pipe. One end of the condensation pipe is threadedly connected to an expansion valve, and the other end of the condensation pipe is inserted into the output end of the compressor. One end of the expansion valve is threadedly connected to a cold main pipe, and the cold main pipe communicates with the cold branch pipe.
[0010] Further, an air inlet groove is formed in the outer wall of one side of the housing, and a dust-proof net is installed inside the air inlet groove through screws. Heat dissipation fans are fixedly installed on the outer wall of one side of the housing at equal distances through bolts.
[0011] Further, a transformer bank and a PSC complete set of equipment are fixedly installed on the bottom inner wall of the control room through bolts, and a lighting lamp and a camera are fixedly installed on the top inner wall of the control room through bolts.
[0012] Furthermore, the fire protection system includes a protective shell, and a plurality of carbon dioxide fire extinguishers are fixedly installed inside the protective shell through bolts, and the output ends of the carbon dioxide fire extinguishers penetrate into the control room and the energy storage room.
[0013] Furthermore, a controller is fixedly installed inside the protective shell through bolts, and a plurality of smoke sensors are fixedly installed on the top inner walls of the control room and the energy storage room through bolts, and the smoke sensors are electrically connected to the controller.
[0014] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. In the present invention, by setting up an energy storage room, a fireproof wall and a liquid cooling system, the liquid cooling system can accurately dissipate heat from the battery pack inside the battery rack through the cold plate, instead of using an air conditioner to dissipate heat from the entire energy storage room, thereby greatly reducing the energy consumption required for heat dissipation.
[0015] 2. In the present invention, by setting up a connecting female nozzle and a connecting male nozzle to connect the cold branch pipe, the hot branch pipe and the cold plate, when a certain cold plate fails, the maintenance personnel only need to directly pull out the cold plate. At this time, the piston in the connecting female nozzle will block the throat, preventing the coolant from leaking, and then the maintenance personnel can perform maintenance and replacement, making the maintenance more convenient and fast.
[0016] 3. In the present invention, through the fire protection system provided, when a fire occurs due to a failure inside the device, the smoke sensor of the fire protection system can quickly detect it, and then the controller controls the carbon dioxide fire extinguisher to start, directly extinguishing the fire in the area where the fire occurs, without the need for operators to take risks to enter the inside of the device to extinguish the fire, which is safer and more convenient. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 is a schematic structural diagram of the present invention; Figure 2 is a structural sectional view of the present invention; Figure 3 is a schematic structural diagram of the battery rack of the present invention; Figure 4 is a schematic structural diagram of the carrier of the present invention; Figure 5 is an exploded schematic structural diagram of the cold plate of the present invention; Figure 6 is a structural sectional view of the connecting female nozzle of the present invention; Figure 7 is a structural sectional view of the connecting male nozzle of the present invention; Figure 8 is a schematic structural diagram of the connection between the connecting female nozzle and the connecting male nozzle of the present invention; Figure 9 is a schematic structural diagram of the fire protection system of the present invention; Figure 10 Schematic structural diagram of the hydraulic cooling system of the present invention; Figure 11 Schematic structural diagram of the heat dissipation fin of the present invention; In the figure: 1. Box body; 11. Control room; 111. Lighting lamp; 112. Camera; 113. Transformer bank; 114. PSC complete set of equipment; 12. Energy storage room; 121. Heat insulation layer; 122. Inner lining layer; 123. Fireproof wall; 124. Fireproof door; 126. Battery rack; 1261. Bearing rack; 12611. Slide groove; 12612. Temperature sensor; 1262. Battery pack; 1263. Cold plate; 12631. Refrigerant tank; 12632. Insert bar; 12633. Cover plate; 12634. Rib; 1264. Cold branch pipe; 1265. Hot branch pipe; 1266. Connecting female nozzle; 12661. Top rack; 12662. Spring; 12663. Piston; 12664. Throat; 12665. Slot; 12666. Card slot; 1267. Connecting male nozzle; 12671. Fixed rack; 12672. Thumb rod; 12673. Insert pipe; 12674. Snap ring; 12675. Conduit; 127. Vacuum glass door; 2. Fire protection system; 21. Protective shell; 22. Carbon dioxide fire extinguisher; 23. Controller; 24. Smoke sensor; 3. Liquid cooling system; 31. Shell; 32. Compressor; 33. Hot main pipe; 34. Cold main pipe; 35. Expansion valve; 36. Intake air slot; 37. Cooling fan; 38. Heat dissipation fin; 39. Condensing pipe. Specific embodiments
[0018] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0019] Embodiment 1: Please refer to Figures 1 to 11, the present invention provides a technical solution: an energy storage container with a liquid cooling system, including a box body 1. A fire protection system 2 is fixedly installed on the outer wall of the top of the box body 1 through bolts, and a liquid cooling system 3 is fixedly installed on the outer wall of one side of the box body 1 through bolts. A control room 11 and an energy storage room 12 are preset inside the box body 1. A heat insulation layer 121 is bonded to the inner wall of the energy storage room 12. The heat insulation layer 121 isolates the internal and external temperatures, preventing the energy consumption of the device from increasing when the external weather is too hot. And a lining layer 122 is riveted to the inner wall of the heat insulation layer 121. A number of flame retardant walls 123 are welded inside the energy storage room 12. A flame retardant door 124 is rotatably connected to the inside of the flame retardant wall 123 through a hinge. The flame retardant wall 123 and the flame retardant door 124 can divide the energy storage room 12 into several small chambers. When a device in one chamber fails, it will not have too much impact on other chambers. And a vacuum glass door 127 is rotatably connected to the adjacent two flame retardant walls 123 through a hinge. The vacuum glass door 127 is used to block the transfer of temperature. A battery rack 126 is installed between the flame retardant wall 123, the vacuum glass door 127 and the lining layer 122 through bolts. And a number of bearing racks 1261 are fixedly installed on the inner wall of the side of the battery rack 126 through bolts. A battery pack 1262 is inserted between two adjacent bearing racks 1261, and a cold plate 1263 is inserted between two opposite bearing racks 1261. The cold plate 1263 is in contact with the adjacent battery pack 1262. A number of cold branch pipes 1264 and a number of hot branch pipes 1265 are fixedly installed on the outer wall of the back of the battery rack 126 through pipe clamps. And both the cold branch pipe 1264 and the hot branch pipe 1265 are in communication with the cold plate 1263. The battery pack 1262 and the hot branch pipe 1265 are respectively in communication with the liquid cooling system 3.
[0020] From the above description, it can be seen that the present invention has the following beneficial effects: In the present invention, by setting the energy storage room 12, the flame retardant wall 123 and the liquid cooling system 3, the liquid cooling system 3 can accurately dissipate heat from the battery pack 1262 inside the battery rack 126 through the cold plate 1263, rather than dissipating heat from the entire inside of the energy storage room 12 through an air conditioner, thereby greatly reducing the energy consumption required for heat dissipation.
[0021] Further, refer to Figure 4 , a number of chutes 12611 are arranged at equal distances on the outer wall of one side of the bearing rack 1261, and a temperature sensor 12612 is fixedly installed on the outer wall of one side of the bearing rack 1261 through bolts. Insert bars 12632 are integrally formed on both outer walls of the cold plate 1263, and the insert bars 12632 are inserted into the inside of the chutes 12611.
[0022] Embodiment Two: Please refer to Figures 1 to 11As shown in the figure, on the basis of the first embodiment, the present invention provides a technical solution: refrigerant grooves 12631 are arranged at equal intervals inside the cold plate 1263. Two male connectors 1267 are threadedly connected to one outer wall of the cold plate 1263, and the male connectors 1267 communicate with the refrigerant grooves 12631. A cover plate 12633 is fixedly installed on the top outer wall of the cold plate 1263 through bolts, and a rib 12634 is integrally formed on the top outer wall of the cover plate 12633. After the cold plates 1263 are installed, the ribs 12634 of the upper and lower cold plates 1263 are in contact with and press against each other, so that the cold plate 1263 can fit more closely with the battery pack 1262, thereby making the heat conduction effect better. Connecting female connectors 1266 are threadedly connected to one outer wall of the cold branch pipe 1264 and the hot branch pipe 1265 at equal intervals, and the male connectors 1267 are inserted into the inside of the connecting female connectors 1266. One end of the male connector 1267 is threadedly connected to a fixing bracket 12671, and a push rod 12672 is welded inside the fixing bracket 12671. One end of the male connector 1267 away from the fixing bracket 12671 is integrally formed with an insertion tube 12673 and a conduit 12675, and an insertion tube 12673 is integrally formed on the side outer wall of the insertion tube 12673. One end of the connecting female connector 1266 is threadedly connected to a top bracket 12661, and a spring 12662 is installed on one outer wall of the top bracket 12661 through screws. One end of the spring 12662 is inserted with a piston 12663. A throat 12664 is integrally formed inside the connecting female connector 1266, and the piston 12663 is in contact with the throat 12664. A slot 12665 is opened on one outer wall of the connecting female connector 1266, and a card slot 12666 is opened on the side inner wall of the slot 12665. The insertion tube 12673 is inserted into the inside of the slot 12665, and a snap ring 12674 is clamped in the card slot 12666. The conduit 12675 is inserted into the inside of the throat 12664, and the push rod 12672 is in contact with the piston 12663.
[0023] The connecting female connector 1266 and the male connector 1267 adopting the above technical solution are used to connect the cold branch pipe 1264, the hot branch pipe 1265 and the cold plate 1263. When a certain cold plate 1263 fails, the maintenance personnel only need to directly pull out the cold plate 1263. At this time, the piston 12663 in the connecting female connector 1266 will block the throat 12664, and the coolant will not leak. Then, maintenance, inspection and replacement can be carried out, making the maintenance more convenient and fast.
[0024] Further, reference can be made to Figure 10, the liquid cooling system 3 includes a housing 31. Inside the housing 31, heat dissipation fins 38 are installed by screws, and a condensing pipe 39 is snap-fitted inside the heat dissipation fins 38. A compressor 32 is fixedly installed on the bottom inner wall of the housing 31 by bolts. A hot main pipe 33 is inserted into the input end of the compressor 32, and the hot main pipe 33 communicates with the hot branch pipe 1265. One end of the condensing pipe 39 is threadedly connected to an expansion valve 35, and the other end of the condensing pipe 39 is inserted into the output end of the compressor 32. One end of the expansion valve 35 is threadedly connected to a cold main pipe 34, and the cold main pipe 34 communicates with the cold branch pipe 1264. An air intake groove 36 is formed on one outer wall of the housing 31, and a dust-proof net is installed inside the air intake groove 36 by screws to prevent external dust from entering the interior. A plurality of heat dissipation fans 37 are fixedly installed on one outer wall of the housing 31 by bolts at equal intervals.
[0025] Embodiment 3: Please refer to Figures 1 to 11 As shown, on the basis of Embodiment 2, the present invention provides a technical solution: The fire protection system 2 includes a protective shell 21. Inside the protective shell 21, a plurality of carbon dioxide fire extinguishers 22 are fixedly installed by bolts for extinguishing fires in the battery pack 1262, and the output ends of the carbon dioxide fire extinguishers 22 penetrate into the interiors of the control room 11 and the energy storage room 12. A controller 23 is fixedly installed inside the protective shell 21 by bolts. A plurality of smoke sensors 24 are fixedly installed on the top inner walls of the control room 11 and the energy storage room 12 by bolts for monitoring fire conditions, and the smoke sensors 24 are electrically connected to the controller 23.
[0026] With the above technical solution, in the fire protection system 2, when a fire occurs due to a malfunction inside the device, the smoke sensor 24 of the fire protection system 2 can quickly detect it, and then the controller 23 controls the carbon dioxide fire extinguisher 22 to start, directly performing fire extinguishing operations on the area where the fire occurs, without the need for operators to take risks and enter the interior of the device for fire extinguishing, which is safer and more convenient.
[0027] Furthermore, please refer to Figure 2 , a transformer bank 113 and a PSC complete set of equipment 114 are fixedly installed on the bottom inner wall of the control room 11 by bolts, and a lighting lamp 111 and a camera 112 are fixedly installed on the top inner wall of the control room 11 by bolts. The lighting lamp 111 can provide a certain amount of lighting for the interior of the device, and the camera 112 can be used to monitor the devices inside.
[0028] Working principle and usage process of the present invention: When the device is working, each battery rack 126 is separated by a fireproof wall 123, a fireproof door 124 and a vacuum glass door 127, and is located inside a separate space area. The compressor 32 sends the coolant at low temperature and low pressure into the refrigerant tank 12631 of the cold plate 1263 through the cold main pipe 34, the cold branch pipe 1264, the connecting female nozzle 1266 and the connecting male nozzle 1267. The cold plate 1263 is in close contact with the battery pack 1262, and the heat inside the battery pack 1262 with a higher temperature will flow towards the coolant inside the cold plate 1263, thus causing the temperature of the coolant to rise. Then the coolant enters the inside of the compressor 32 through the heat branch pipe 1265 and the heat main pipe 33, is compressed into a state of high temperature and high pressure, and is sent into the inside of the condenser pipe 39. When the coolant at high temperature and high pressure moves inside the condenser pipe 39, the heat inside the coolant will flow towards the heat dissipation fins 38 with a lower temperature. Then the heat dissipation fan 37 will drive the air flow to take away the temperature inside the heat dissipation fins 38, so that the coolant inside the condenser pipe 39 becomes a low temperature state again. Finally, the coolant will enter the inside of the cold main pipe 34 through the expansion valve 35 to complete the cycle; When a certain cold plate 1263 fails, the operator directly pulls out the cold plate 1263 for maintenance. At this time, the connecting male nozzle 1267 of this cold plate 1263 leaves the corresponding connecting female nozzle 1266, and the piston 12663 of the connecting female nozzle 1266 will seal the throat 12664 under the push of the spring 12662. At this time, the coolant will not enter the inside of the throat 12664 and then spray out. After the maintenance and replacement are completed, the operator inserts the cold plate 1263 into the battery rack 126 again for reset. At this time, the ejector rod 12672 of the connecting male nozzle 1267 will push the piston 12663 inside the connecting female nozzle 1266 away from the throat 12664. Then the catheter 12675 is inserted into the throat 12664, and the insertion tube 12673 is inserted into the slot 12665, so as to reliably connect the connecting female nozzle 1266 and the connecting male nozzle 1267, and the coolant enters the inside of the cold plate 1263 through the throat 12664 again.
[0029] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variant thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "including a..." does not exclude the existence of additional identical elements in the process, method, article or device including the said element.
[0030] As described above, it is only used to illustrate the technical solution of the present invention rather than to limit it. Any other modifications or equivalent replacements made by those of ordinary skill in the art to the technical solution of the present invention shall be covered within the scope of the claims of the present invention as long as they do not depart from the spirit and scope of the technical solution of the present invention.
Claims
1. An energy storage container with a liquid cooling system, comprising a container body (1), characterized in that: A fire protection system (2) is fixedly installed on the top outer wall of the box (1) by bolts, and a liquid cooling system (3) is fixedly installed on one side outer wall of the box (1) by bolts. A control room (11) and an energy storage room (12) are preset inside the box (1). A thermal insulation layer (121) is bonded to the inner wall of the energy storage room (12), and an inner lining layer (122) is riveted to the inner wall of the thermal insulation layer (121). A plurality of flame retardant walls (123) are welded inside the energy storage room (12). A flame retardant door (124) is rotatably connected to the inside of the flame retardant wall (123) by hinges, and a vacuum glass door (127) is rotatably connected between two adjacent flame retardant walls (123). The flame retardant wall (123), the vacuum glass door (127) and the inner lining layer (122) are connected to each other by hinges. A battery rack (126) is installed between the two battery racks (126) by bolts, and a plurality of support racks (1261) are fixedly installed on the side inner wall of the battery rack (126) by bolts, a battery pack (1262) is inserted between two adjacent support racks (1261), and a cold plate (1263) is inserted between two opposing support racks (1261), the cold plate (1263) and the adjacent battery packs (1262) are in contact with each other, a plurality of cold branch pipes (1264) and a plurality of hot branch pipes (1265) are fixedly installed on the back outer wall of the battery rack (126) by pipe clamps, and the cold branch pipes (1264) and the hot branch pipes (1265) are mutually connected with the cold plate (1263), and the battery packs (1262) and the hot branch pipes (1265) are mutually connected with the liquid cooling system (3).
2. The energy storage container with a liquid cooling system according to claim 1, characterized in that: The outer wall of one side of the support frame (1261) is provided with slide grooves (12611) distributed at equal distances, and a temperature sensor (12612) is fixedly installed on the outer wall of one side of the support frame (1261) by bolts, and the outer walls of both sides of the cold plate (1263) are integrally formed with insertion strips (12632), and the insertion strips (12632) are inserted into the interior of the slide grooves (12611).
3. The energy storage container with a liquid cooling system according to claim 1, characterized in that: The cold plate (1263) has refrigerant grooves (12631) distributed at equal distances inside, and two connecting male nozzles (1267) are threadedly connected on the outer wall of one side of the cold plate (1263), and the connecting male nozzles (1267) and the refrigerant grooves (12631) are interconnected, and a cover plate (12633) is fixedly installed on the top outer wall of the cold plate (1263) by bolts, and a convex strip (12634) is integrally formed on the top outer wall of the cover plate (12633), and the outer walls of one side of the cold branch pipe (1264) and the hot branch pipe (1265) are both threadedly connected with connecting female nozzles (1266) distributed at equal distances, and the connecting male nozzles (1267) are inserted into the inside of the connecting female nozzles (1266).
4. The energy storage container with a liquid cooling system according to claim 3, characterized in that: One end of the connecting male nozzle (1267) is threadedly connected to a fixing frame (12671), and a push rod (12672) is welded inside the fixing frame (12671); an insert tube (12673) and a catheter (12675) are integrally formed at one end of the connecting male nozzle (1267) away from the fixing frame (12671), and the insert tube (12673) is integrally formed on the side outer wall of the insert tube (12673).
5. The energy storage container with a liquid cooling system according to claim 4, characterized in that: One end of the connecting female nozzle (1266) is threadedly connected to a top frame (12661), and a spring (12662) is installed on an outer wall of one side of the top frame (12661) by means of screws, and a piston (12663) is inserted into one end of the spring (12662). A throat (12664) is integrally formed inside the connecting female nozzle (1266), and the piston (12663) and the throat (12664) are in contact with each other. A slot (12665) is formed on one side outer wall of the slot (12665), and a clamping groove (12666) is formed on the side inner wall of the slot (12665), the insert tube (12673) is inserted into the slot (12665), and the clamping ring (12674) is clamped into the inside of the clamping groove (12666), the guide tube (12675) is inserted into the inside of the throat (12664), and the push rod (12672) and the piston (12663) are in contact with each other.
6. The energy storage container with a liquid cooling system according to claim 1, characterized in that: The liquid cooling system (3) comprises a shell (31), a heat dissipation fin (38) is installed inside the shell (31) by means of screws, and a condenser (39) is clamped inside the heat dissipation fin (38), a compressor (32) is fixedly installed on the bottom inner wall of the shell (31) by means of bolts, a heat main pipe (33) is plugged into the input end of the compressor (32), and the heat main pipe (33) and the heat branch pipe (1265) are interconnected, one end of the condenser pipe (39) is threadedly connected to an expansion valve (35), and the other end of the condenser pipe (39) is plugged into the output end of the compressor (32), one end of the expansion valve (35) is threadedly connected to a cold main pipe (34), and the cold main pipe (34) and the cold branch pipe (1264) are interconnected.
7. The energy storage container with a liquid cooling system according to claim 6, characterized in that: An air inlet groove (36) is formed on an outer wall of one side of the housing (31), and a dust screen is installed inside the air inlet groove (36) by means of screws. Heat dissipation fans (37) distributed at equal distances are fixedly installed on an outer wall of one side of the housing (31) by means of bolts.
8. The energy storage container with a liquid cooling system according to claim 1, characterized in that: A transformer group (113) and a PSC complete set of equipment (114) are fixedly mounted on the bottom inner wall of the control room (11) by means of bolts, and a lighting lamp (111) and a camera (112) are fixedly mounted on the top inner wall of the control room (11) by means of bolts.
9. The energy storage container with a liquid cooling system according to claim 1, characterized in that: The fire protection system (2) comprises a protective shell (21), a plurality of carbon dioxide fire extinguishers (22) are fixedly installed inside the protective shell (21) by means of bolts, and the output ends of the carbon dioxide fire extinguishers (22) penetrate into the interior of the control room (11) and the energy storage room (12).
10. The energy storage container with a liquid cooling system according to claim 9, characterized in that: A controller (23) is fixedly mounted inside the protective shell (21) by means of bolts, and a plurality of smoke sensors (24) are fixedly mounted on the top inner walls of the control chamber (11) and the energy storage chamber (12) by means of bolts, and the smoke sensors (24) are electrically connected to the controller (23).
Citation Information
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