An ultra-long-time power supply device for backup power in a computer room

Through the separate electrolyte storage and temperature adjustment structure, the life and performance problems caused by the corrosion and temperature changes of the aluminum plate in the computer room are solved, and the stability and adaptability of power supply for ultra-long periods are achieved.

CN118712586BActive Publication Date: 2025-09-02JIANGSU YUANWEI NEW ENERGY CO LTD
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Patent Information

Application Number
CN202410707113.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-06-03
Publication Date
2025-09-02
Estimated Expiration
2044-06-03

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Abstract

The present invention discloses an ultra-long-time power supply device for backup power in a computer room, comprising a backup power installation cabinet for a computer room and a plurality of air batteries connected in series, wherein the air batteries are provided with air electrode sheets, and the air batteries are movably connected with movable covers. In the present invention, the air batteries and the electrolyte in the electrolyte storage box are designed to be separated, which can avoid the aluminum plate in the air battery from being in long-term contact with the electrolyte and being corroded during long-term storage. When in use, the electrolyte can be added to the electrolyte storage box, and the electrolyte in the electrolyte storage box can be extracted and transported to the air battery for power supply by turning on the rechargeable electric pump. During the process, the valve can be opened, and the electrolyte can be circulated in the air battery and the electrolyte storage box under the continuous transportation of the rechargeable electric pump to perform heat exchange and reduce the temperature generated when the air battery is in use. In addition, the electrolyte can filter out the generated impurities when flowing through the filter plate to avoid the impurities affecting the performance of the air battery.
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Description

Technical Field

[0001] The present invention relates to the technical field of methyl-air batteries, in particular to an ultra-long-time power supply device for backup power in a machine room. Background Art

[0002] In computer room backup applications, air batteries can serve as a reliable backup power source. When the main power supply fails or there is a power outage, the air battery can quickly take over the power supply, ensuring the continuous operation of the equipment in the computer room.

[0003] Air batteries can generate electricity through the chemical reaction between aluminum and oxygen in the air. This reaction makes air batteries theoretically have higher energy density and longer service life than traditional batteries, meeting ultra-long power supply needs. They output electricity by consuming aluminum alloy negative electrodes and oxygen in the air without charging. During battery operation, the consumed aluminum alloy negative electrode material can be replenished to maintain continuous operation of the battery.

[0004] In the existing technology, the electrolyte used in the air battery used to provide backup power for the computer room is usually inside the battery, and the aluminum plate is immersed in the electrolyte. During long-term storage, self-discharge will occur, which will easily corrode the aluminum plate and thus reduce the service life of the battery. In addition, the air battery will generate heat during the discharge process. If used in a high temperature environment, the excessively high temperature will accelerate the chemical reaction inside the battery, thereby accelerating the self-discharge of the battery. If the ambient temperature is too low, it will affect the discharge performance of the battery. Therefore, a long-term power supply device for computer room backup power is needed to meet people's needs. Summary of the Invention

[0005] The purpose of the present invention is to provide an ultra-long-time power supply device for backup power in a computer room, so as to solve the problems raised in the above-mentioned background technology.

[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: an ultra-long-time power supply device for backup power in a computer room, comprising a backup power installation cabinet for a computer room and a plurality of air batteries connected in series, wherein the air batteries are provided with air electrode sheets, a movable cover plate movably connected to the air batteries, an aluminum plate movably connected to the movable cover plate, the aluminum plate being located inside the air batteries, an electrolyte storage box being fixedly mounted on the inner wall of the backup power installation cabinet for the computer room, an electrolyte conveying structure being mounted on the electrolyte storage box, two support plates being symmetrically fixedly mounted on the inner wall of the backup power installation cabinet for the computer room, a same mounting frame being fixedly mounted on the bottom sides of the two support plates, the air batteries being fixedly mounted on the inner wall of the mounting frame, a drain pipe being fixedly mounted on the air batteries, the drain pipe being connected to the air batteries, a discharge and filtering structure being mounted on the drain pipe, an air guide box being fixedly mounted on one side of the electrolyte storage box, a ventilation structure being mounted on the air guide box, a drive motor being fixedly mounted on one side of the backup power installation cabinet for the computer room, and a lifting structure being mounted on the drive motor;

[0007] The electrolyte delivery structure includes a discharge pipe and an addition pipe, which are both fixedly mounted on the electrolyte storage box and are communicated with the electrolyte storage box. Sealing covers are threadedly mounted on the discharge pipe and the addition pipe. A plurality of delivery pipes are fixedly mounted on one side of the electrolyte storage box and are communicated with the electrolyte storage box. A rechargeable electric pump is fixedly mounted on the delivery pipe, a liquid diverter is fixedly mounted on the rechargeable electric pump, a plurality of liquid adding pipes are fixedly mounted on the liquid diverter, the liquid adding pipes are fixedly mounted on one side of a corresponding air battery, and the liquid adding pipes are communicated with the air battery.

[0008] Preferably, the discharge and filtering structure includes a liquid collector, which is fixedly mounted on the drain pipe, which is connected to the liquid collector, a valve is fixedly mounted on one end of the liquid collector, a connecting pipe is fixedly mounted on the valve, a guide inclined tube is fixedly mounted on the connecting tube, the guide inclined tube is connected to the connecting tube, the guide inclined tube is fixedly mounted on the electrolyte storage box, the guide inclined tube is connected to the electrolyte storage box, a filter plate is slidably mounted on the inner wall of the guide inclined tube, a mounting plate is fixedly mounted on one side of the filter plate, the mounting plate is in contact with one side of the guide inclined tube, and a handle is fixedly mounted on one side of the mounting plate.

[0009] Preferably, two mounting bolts are movably mounted on the mounting plate, and both mounting bolts are threadedly mounted on the guide inclined tube.

[0010] Preferably, the ventilation structure includes a fan, which is electrically connected to the air battery, and is fixedly mounted on one side of the air guide box. The output end of the fan is connected to the air guide box. A plurality of temperature-conducting fins are fixedly mounted on the inner wall of the air guide box. A plurality of temperature-conducting tubes are fixedly mounted on the temperature-conducting fins. The temperature-conducting tubes are fixedly mounted on the electrolyte storage box. The temperature-conducting tubes are located inside the electrolyte storage box. One end of a telescopic bellows is fixedly mounted on one side of the air guide box, and the telescopic bellows is connected to the air guide box. An exhaust scoop is fixedly mounted on the other end of the telescopic bellows, and the exhaust scoop is connected to the telescopic bellows. The exhaust scoop is located on one side of the mounting frame.

[0011] Preferably, an electric heating tube is fixedly mounted on the inner wall of the air guide box, the electric heating tube is located on one side of the temperature conducting fins, and the electric heating tube is electrically connected to the air battery.

[0012] Preferably, the lifting structure includes a bidirectional screw rod, which is fixedly mounted on the output end of the driving motor and rotatably mounted on the backup power installation cabinet in the machine room. Two linkage slide bars are threadedly mounted on the bidirectional screw rod, and the two linkage slide bars are both slidably mounted on the inner wall of the backup power installation cabinet in the machine room. The same lifting plate is slidably mounted on the side where the two support plates are close to each other, and multiple connecting seats are fixedly mounted on the lifting plate and the two connecting slide bars. The same connecting rod is rotatably mounted on the two connecting seats on the same side. The exhaust scoop is fixedly mounted on the bottom side of the lifting plate, and two mounting columns are fixedly mounted on the movable cover plate, and the two mounting columns are both fixedly mounted on the bottom side of the lifting plate.

[0013] Preferably, a T-shaped limiting slot is provided on the inner wall of the linkage slide bar, a T-shaped guide bar is slidably installed in the T-shaped limiting slot, and the T-shaped guide bar is fixedly installed on the inner wall of the backup power installation cabinet in the machine room.

[0014] Preferably, a first ventilation opening and a second ventilation opening are provided on the backup power installation cabinet in the machine room, the first ventilation opening is located on one side of the installation frame, and the second ventilation opening is located on one side of the fan.

[0015] Preferably, third vents are provided on both sides of the mounting frame, the exhaust scoops correspond to the third vents, and the third vents are located on one side of the first vents.

[0016] Preferably, the rechargeable electric pump, fan, electric heating pipe and drive motor can all be powered by an external power supply.

[0017] Compared with the prior art, the present invention has the following beneficial effects:

[0018] (1) In the present invention, the air battery and the electrolyte in the electrolyte storage box are designed to be separated, which can prevent the aluminum plate in the air battery from being corroded due to long-term contact with the electrolyte during long-term storage. When in use, the electrolyte can be added to the electrolyte storage box, and the electrolyte in the electrolyte storage box can be extracted and transported to the air battery for power supply by turning on the rechargeable electric pump. During the process, the valve can be opened, and the electrolyte can be circulated in the air battery and the electrolyte storage box under the continuous transportation of the rechargeable electric pump to perform heat exchange and reduce the temperature generated when the air battery is in use. In addition, the electrolyte can filter out impurities when flowing through the filter plate to prevent the impurities from affecting the performance of the air battery.

[0019] (2) During the circulation of the electrolyte, its temperature will be transferred to the heat conducting tube and the heat conducting fins. By turning on the fan, it can blow the airflow and take away the heat of the heat conducting fins, thereby cooling the electrolyte in the electrolyte storage box. Under the guidance of the telescopic bellows, the airflow can pass through the installation frame, thereby improving the heat dissipation effect on the air battery. If the electric heating tube is turned on at the same time, the blown airflow can be heated, and its temperature can act on the air battery and the electrolyte, so that the air battery can meet the use requirements in different environments. At the same time, it can promote the circulation of oxygen in the air in the installation frame, ensuring that there is sufficient oxygen supply on the surface of the air electrode sheet, thereby improving its power supply effect.

[0020] (3) After using the air battery, the lifting plate can be driven by the driving motor to pull the aluminum plate out of the air battery. At this time, the aluminum plate will correspond to the exhaust hopper. By cooperating with the opening of the fan, air can be blown toward the aluminum plate to dry the aluminum plate, thereby preventing the electrolyte from remaining on the aluminum plate and causing corrosion, thereby increasing the service life of the aluminum plate. The electrolyte in the air battery can be discharged into the electrolyte storage box by opening a valve separately, thereby achieving complete separation of the aluminum plate and the electrolyte for subsequent use. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 This is a schematic diagram of the three-dimensional structure of an ultra-long-duration power supply device for backup power in a computer room proposed by the present invention;

[0022] Figure 2 This is a partial structural diagram of an ultra-long-duration power supply device for backup power in a computer room proposed by the present invention;

[0023] Figure 3 This is a schematic diagram of the connection structure of the guiding inclined pipe part of the ultra-long-time power supply equipment for backup power in a machine room proposed by the present invention;

[0024] Figure 4 This is a schematic diagram of the internal structure of the installation frame of an ultra-long-duration power supply device for backup power in a computer room proposed by the present invention;

[0025] Figure 5 This is a schematic diagram of the installation column structure of an ultra-long-duration power supply device for backup power in a computer room proposed by the present invention;

[0026] Figure 6 This is a schematic diagram of the aluminum plate structure of an ultra-long-duration power supply device for backup power in a computer room proposed by the present invention;

[0027] Figure 7 This is a structural diagram of a drain pipe and a rechargeable electric pump for an ultra-long-duration power supply device for backup power in a machine room proposed by the present invention;

[0028] Figure 8This is a schematic cross-sectional view of the guiding inclined pipe portion of an ultra-long-duration power supply device for backup power in a machine room proposed by the present invention;

[0029] Figure 9 This is a schematic diagram of the internal structure of an air duct box of an ultra-long-duration power supply device for backup power in a computer room proposed by the present invention.

[0030] Figure: 1. Power supply cabinet for computer room; 101. First vent; 102. Second vent; 2. Air battery; 3. Air electrode sheet; 4. Removable cover; 5. Aluminum plate; 6. Electrolyte storage box; 601. Drain pipe; 602. Adding pipe; 603. Delivery pipe; 604. Rechargeable electric pump; 605. Liquid diverter; 606. Adding pipe; 7. Support plate; 8. Mounting frame; 801. Third vent; 9. Drain pipe; 901. Liquid collector; 902. Valve; 903. Connecting pipe; 904. Guide inclined pipe ;905, filter plate;906, mounting plate;907, handle;908, mounting bolt;10, air guide box;1001, fan;1002, temperature conducting fins;1003, temperature conducting tube;1004, telescopic bellows;1005, exhaust hopper;1006, electric heating tube;11, drive motor;1101, bidirectional screw rod;1102, linkage slide bar;1103, lifting plate;1104, connecting seat;1105, connecting rod;1106, mounting column;1107, T-type limit slide;1108, T-type guide strip. DETAILED DESCRIPTION

[0031] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0032] Example 1: Please refer to Figure 1-9The present invention provides a technical solution: an ultra-long-time power supply device for a computer room backup power supply, comprising a computer room backup power supply installation cabinet 1 and a plurality of air batteries 2 connected in series, the air battery 2 is provided with an air electrode sheet 3, the air battery 2 is movably connected with a movable cover 4, the movable cover 4 is movably connected with an aluminum plate 5, the aluminum plate 5 is located inside the air battery 2, the inner wall of the computer room backup power supply installation cabinet 1 is fixedly installed with an electrolyte storage box 6, the electrolyte storage box 6 is installed with an electrolyte delivery structure, and the inner wall of the computer room backup power supply installation cabinet 1 is symmetrically fixedly installed with an electrolyte storage box 6. There are two support plates 7, and the same mounting frame 8 is fixedly installed on the bottom side of the two support plates 7. The air battery 2 is fixedly mounted on the inner wall of the mounting frame 8. A drain pipe 9 is fixedly mounted on the air battery 2, and the drain pipe 9 is connected to the air battery 2. A discharge and filtering structure is installed on the drain pipe 9. An air guide box 10 is fixedly mounted on one side of the electrolyte storage box 6, and a ventilation structure is installed on the air guide box 10. A drive motor 11 is fixedly mounted on one side of the machine room backup power installation cabinet 1, and a lifting structure is installed on the drive motor 11;

[0033] The electrolyte delivery structure includes a discharge pipe 601 and an addition pipe 602, which are both fixedly mounted on the electrolyte storage box 6. The discharge pipe 601 and the addition pipe 602 are both connected to the electrolyte storage box 6. A sealing cap is threadedly mounted on the discharge pipe 601 and the addition pipe 602. A plurality of delivery pipes 603 are fixedly mounted on one side of the electrolyte storage box 6. The delivery pipes 603 are connected to the electrolyte storage box 6. A rechargeable electric pump 604 is fixedly mounted on the delivery pipe 603. A liquid diverter 605 is fixedly mounted on the rechargeable electric pump 604. A liquid diverter 605 is fixedly mounted on the liquid diverter 605. Multiple liquid adding pipes 606 are fixedly installed on one side of a corresponding air battery 2. The liquid adding pipe 606 is connected to the air battery 2. The rechargeable electric pump 604 adopts a built-in battery design. It can be connected to the power supply on a daily basis to charge the internal power supply. When the power supply in the computer room fails, the rechargeable electric pump 604 can be turned on. The rechargeable electric pump 604 can use the delivery pipe 603 to extract the electrolyte stored in the electrolyte storage box 6 and deliver it to the corresponding air battery 2 through the liquid diverter 605 and the multiple liquid adding pipes 606, so that the electrolyte contacts the aluminum plate 5 in the air battery 2, thereby generating electricity.

[0034] The discharge and filtration structure includes a liquid collector 901, which is fixedly mounted on the drain pipe 9. The drain pipe 9 is connected to the liquid collector 901. A valve 902 is fixedly mounted on one end of the liquid collector 901. A connecting pipe 903 is fixedly mounted on the valve 902. A guide inclined pipe 904 is fixedly mounted on the connecting pipe 903. The guide inclined pipe 904 is connected to the connecting pipe 903. The guide inclined pipe 904 is fixedly mounted on the electrolyte storage box 6. The guide inclined pipe 904 is connected to the electrolyte storage box 6. A filter plate 905 is slidably mounted on the inner wall of the guide inclined tube 904, a mounting plate 906 is fixedly mounted on one side of the filter plate 905, the mounting plate 906 is in contact with one side of the guide inclined tube 904, a handle 907 is fixedly mounted on one side of the mounting plate 906, and the valve 902 is opened separately to allow the electrolyte in the air battery 2 to flow into the guide inclined tube 904 through the liquid collector 901, the valve 902, and the connecting tube 903, and then return to the electrolyte storage box 6 after filtration for subsequent use.

[0035] In order to ensure the stability of the filter plate 905, two mounting bolts 908 are movably installed on the mounting plate 906. The two mounting bolts 908 are threadedly installed on the guide inclined tube 904. The mounting bolts 908 are used to fix the position of the mounting plate 906, thereby preventing the filter plate 905 from loosening from the guide inclined tube 904.

[0036] Example 2: Figure 2-9In order to improve the performance of the air battery 2 in a high or low temperature environment, a ventilation structure is arranged on the air guide box 10. The ventilation structure includes a fan 1001, which is electrically connected to the air battery 2. The fan 1001 is fixedly installed on one side of the air guide box 10. The output end of the fan 1001 is connected to the air guide box 10. A plurality of temperature conducting fins 1002 are fixedly installed on the inner wall of the air guide box 10. A plurality of temperature conducting pipes 1003 are fixedly installed on the temperature conducting fins 1002. The temperature conducting pipes 1003 are fixedly installed on the electrical On the electrolyte storage box 6, the temperature conducting pipe 1003 is located in the electrolyte storage box 6, one end of the telescopic bellows 1004 is fixedly installed on one side of the air guide box 10, and the telescopic bellows 1004 is connected to the air guide box 10, and the other end of the telescopic bellows 1004 is fixedly installed with an exhaust scoop 1005, and the exhaust scoop 1005 is connected to the telescopic bellows 1004. The exhaust scoop 1005 is located on one side of the mounting frame 8, and the inner wall of the air guide box 10 is fixedly installed with an electric heating pipe 1006, and the electric heating pipe 1006 is located at the temperature conducting fin 1002. On one side, the electric heating pipe 1006 is electrically connected to the air battery 2. A first vent 101 and a second vent 102 are provided on the backup power installation cabinet 1 of the machine room. The first vent 101 is located on one side of the installation frame 8, and the second vent 102 is located on one side of the fan 1001. A third vent 801 is provided on both sides of the installation frame 8. The exhaust scoop 1005 corresponds to the third vent 801. The third vent 801 is located on one side of the first vent 101. When the fan 1001 is turned on, the output end of the fan 1001 will be directed toward the guide. Air is blown in the bellows 10, so that the air passes quickly through the thermal fins 1002 and takes away the heat of the thermal fins 1002, thereby cooling the electrolyte in the electrolyte storage box 6, so that it can reduce the temperature of the air battery 2 during circulation. At the same time, the blown air will quickly pass through the telescopic bellows 1004, the exhaust scoop 1005 and the third vent 801 to circulate in the installation frame 8, thereby improving the heat dissipation effect on the air battery 2 and promoting the circulation of oxygen in the air in the installation frame 8. The remaining features are the same as those in Example 1.

[0037] Example 3: Figure 1-6After using the air battery 2, in order to reduce the corrosion of the aluminum plate 5 caused by the electrolyte, a lifting structure is arranged on the driving motor 11, and the lifting structure includes a bidirectional screw rod 1101, which is fixedly installed on the output end of the driving motor 11, and the bidirectional screw rod 1101 is rotatably installed on the backup power installation cabinet 1 of the machine room. Two linkage slide bars 1102 are threadedly installed on the bidirectional screw rod 1101, and the two linkage slide bars 1102 are both slidably installed on the inner wall of the backup power installation cabinet 1 of the machine room. The same lifting plate 1103 is slidably installed on the side where the two support plates 7 are close to each other. The lifting plate 1103 and the two linkage slide bars 1102 are slidably installed on the side where the two support plates 7 are close to each other. There are multiple connection seats 1104 fixedly installed, and the same connecting rod 1105 is rotatably installed on the two connection seats 1104 on the same side. The exhaust bucket 1005 is fixedly installed on the bottom side of the lifting plate 1103, and two mounting columns 1106 are fixedly installed on the movable cover 4. The two mounting columns 1106 are fixedly installed on the bottom side of the lifting plate 1103. A T-shaped limiting groove 1107 is provided on the inner wall of the linkage slide 1102, and a T-shaped guide strip 1108 is slidably installed in the T-shaped limiting groove 1107. The T-shaped guide strip 1108 is fixedly installed on the inner wall of the backup power installation cabinet 1 in the machine room. The rechargeable electric pump 604, the fan 1001, and the electric The heat pipe 1006 and the drive motor 11 can both be powered by an external power supply. When the drive motor 11 is turned on, the output end of the drive motor 11 will drive the bidirectional screw rod 1101 to rotate. The rotating bidirectional screw rod 1101 will respectively drive the two linkage slide bars 1102 to move away from each other through the thread cooperation with the two linkage slide bars 1102. The moving linkage slide bar 1102 will slide on the T-shaped guide bar 1108 through the T-shaped limit slot 1107, thereby limiting the moving direction of the linkage slide bar 1102. The continuously sliding linkage slide bar 1102 will pull one end of the connecting rod 1105 through the connecting seat 1104 to flip and move. The connecting rod 1105 pulls the lifting plate 1103 upward by cooperating with another connecting seat 1104. The rising lifting plate 1103 will drive the movable cover plate 4 to rise through the mounting column 1106, so that the rising movable cover plate 4 will pull the aluminum plate 5 out of the air battery 2, so that it will be separated from the electrolyte in the air battery 2. At the same time, the exhaust scoop 1005 will rise with the lifting plate 1103. At this time, the exhaust scoop 1005 will be located on one side of the multiple aluminum plates 5. The fan 1001 will be turned on to allow air to blow toward the aluminum plate 5 under the guidance of the two support plates 7 to dry the aluminum plate 5 and prevent the electrolyte from remaining on the aluminum plate 5. The remaining features are the same as those in Example 1.

[0038] The working principle is: by using multiple air batteries 2 in series to power the computer room, it can provide backup power for the computer room when the power supply in the computer room fails. The rechargeable electric pump 604 adopts a built-in battery design. It can be connected to the power supply on a daily basis to charge the internal power supply. When the power supply in the computer room fails, the rechargeable electric pump 604 can be turned on. The rechargeable electric pump 604 can use the delivery pipe 603 to extract the electrolyte stored in the electrolyte storage box 6 and deliver it to the corresponding air battery 2 through the liquid diverter 605 and multiple liquid adding pipes 606, so that the electrolyte contacts the aluminum plate 5 in the air battery 2, thereby generating electricity to power the computer room. The electricity generated by the air battery 2 can also power the fan 1001 and the electric heating pipe 1006. If the ambient temperature is high, the air When the battery 2 is in use, a certain amount of heat will be generated. The valve 902 and the rechargeable electric pump 604 can be opened. At this time, under the continuous delivery of the electrolyte by the rechargeable electric pump 604, the excess electrolyte can flow into the guide inclined tube 904 through the liquid collector 901, the valve 902 and the connecting pipe 903. The electrolyte will pass through the filter plate 905 in the guide inclined tube 904, and the impurities generated when the electrolyte is used will remain on the filter plate 905 to filter the electrolyte. Finally, the electrolyte will return to the electrolyte storage box 6, so that the electrolyte in the air battery 2 can circulate and exchange heat with the remaining electrolyte in the electrolyte storage box 6. During the process, the temperature of the electrolyte in the electrolyte storage box 6 will rise due to heat exchange, and the temperature will be transmitted through the temperature conducting pipe 1003. The air is directed to the thermal fins 1002. At this time, the fan 1001 can be turned on, and the output end of the fan 1001 will blow air into the air guide box 10, so that the air quickly passes through the thermal fins 1002 and takes away the heat of the thermal fins 1002, thereby cooling the electrolyte in the electrolyte storage box 6, so that it can reduce the temperature of the air battery 2 during circulation. At the same time, the blown air will quickly pass through the telescopic bellows 1004, the exhaust scoop 1005 and the third vent 801 to circulate in the installation frame 8, thereby improving the heat dissipation effect of the air battery 2. If used in a low temperature and cold area, the thermal tube 1003 can be turned on to heat the air flow blown out by the fan 1001, and its heat will be conducted to the electrolyte in the electrolyte storage box 6 through the thermal tube 1003. At the same time, hot air will circulate from the installation frame 8 and increase the temperature of the air battery 2 to prevent the discharge efficiency of the air battery 2 from being affected by too low a temperature. After the power supply in the machine room is restored, the rechargeable electric pump 604, the fan 1001, the electric heating pipe 1006 and the drive motor 11 can be powered by an external power supply. At this time, the drive motor 11 can be turned on, and the output end of the drive motor 11 will drive the bidirectional screw rod 1101 to rotate. The rotating bidirectional screw rod 1101 will drive the two linkage slide bars 1102 to move away from each other through the thread cooperation with the two linkage slide bars 1102. The moving linkage slide bar 1102 will slide on the T-shaped guide bar 1108 through the T-shaped limit slide groove 1107, thereby limiting the moving direction of the linkage slide bar 1102.The continuously sliding linkage slide bar 1102 will pull one end of the connecting rod 1105 to flip and move through the connecting seat 1104, and the connecting rod 1105 will pull the lifting plate 1103 up by cooperating with the other connecting seat 1104. The rising lifting plate 1103 will drive the movable cover plate 4 to rise through the mounting column 1106, so that the rising movable cover plate 4 will pull the aluminum plate 5 out of the air battery 2, so that it will be separated from the electrolyte in the air battery 2. At the same time, the exhaust scoop 1005 will rise with the lifting plate 1103. At this time, the exhaust scoop 1005 will be located on one side of the multiple aluminum plates 5, and the fan 1001 will be turned on to allow air to blow toward the aluminum plate 5 under the guidance of the two support plates 7, so as to dry the aluminum plate 5 and prevent the electrolyte from remaining on the aluminum plate 5. The electrolyte can further reduce the corrosion of the aluminum plate 5 by the electrolyte, thereby increasing the service life of the aluminum plate 5. At the same time, the valve 902 can be opened separately to allow the electrolyte in the air battery 2 to flow back into the guide inclined tube 904 through the liquid collector 901, valve 902, and connecting tube 903. After being filtered, it returns to the electrolyte storage box 6 for subsequent use. The electrolyte in the electrolyte storage box 6 can also be replaced by opening the discharge pipe 601 and the addition pipe 602 respectively. By unscrewing the mounting bolt 908 from the guide inclined tube 904, the installation of the mounting plate 906 can be released. At this time, the filter plate 905 can be pulled out of the guide inclined tube 904 by pulling the handle 907 to clean the impurities remaining on the filter plate 905.

[0039] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. An ultra-long-duration power supply device for a machine room backup power supply, comprising a machine room backup power supply installation cabinet (1) and a plurality of air batteries (2) connected in series, characterized in that: The air battery (2) is provided with an air electrode sheet (3), the air battery (2) is movably connected to a movable cover plate (4), the movable cover plate (4) is movably connected to an aluminum plate (5), the aluminum plate (5) is located inside the air battery (2), an electrolyte storage box (6) is fixedly installed on the inner wall of the machine room standby power installation cabinet (1), an electrolyte conveying structure is installed on the electrolyte storage box (6), and two support plates (7) are symmetrically fixedly installed on the inner wall of the machine room standby power installation cabinet (1), and the bottom sides of the two support plates (7) are fixedly installed with the same A mounting frame (8), an air battery (2) is fixedly mounted on the inner wall of the mounting frame (8), a drain pipe (9) is fixedly mounted on the air battery (2), the drain pipe (9) is connected to the air battery (2), a discharge filter structure is mounted on the drain pipe (9), an air guide box (10) is fixedly mounted on one side of the electrolyte storage box (6), a ventilation structure is mounted on the air guide box (10), a drive motor (11) is fixedly mounted on one side of the machine room backup power installation cabinet (1), and a lifting structure is mounted on the drive motor (11); The electrolyte delivery structure comprises a discharge pipe (601) and a feeding pipe (602), the discharge pipe (601) and the feeding pipe (602) are both fixedly mounted on the electrolyte storage box (6), the discharge pipe (601) and the feeding pipe (602) are both connected to the electrolyte storage box (6), and sealing covers are threadedly mounted on the discharge pipe (601) and the feeding pipe (602), a plurality of delivery pipes (603) are fixedly mounted on one side of the electrolyte storage box (6), the delivery pipes (603) are connected to the electrolyte storage box (6), a rechargeable electric pump (604) is fixedly mounted on the delivery pipe (603), a liquid diverter (605) is fixedly mounted on the rechargeable electric pump (604), a plurality of liquid adding pipes (606) are fixedly mounted on the liquid diverter (605), the liquid adding pipes (606) are fixedly mounted on one side of a corresponding air battery (2), and the liquid adding pipes (606) are connected to the air battery (2); The ventilation structure comprises a fan (1001), the fan (1001) is electrically connected to the air battery (2), the fan (1001) is fixedly mounted on one side of the air guide box (10), the output end of the fan (1001) is connected to the air guide box (10), a plurality of heat conducting fins (1002) are fixedly mounted on the inner wall of the air guide box (10), a plurality of heat conducting pipes (1003) are fixedly mounted on the heat conducting fins (1002), and the heat conducting pipes (1003) are fixedly mounted on the electrolyte. On the storage box (6), the temperature conducting tube (1003) is located inside the electrolyte storage box (6), one end of a telescopic bellows (1004) is fixedly mounted on one side of the air guide box (10), the telescopic bellows (1004) is connected to the air guide box (10), and an exhaust scoop (1005) is fixedly mounted on the other end of the telescopic bellows (1004), the exhaust scoop (1005) is connected to the telescopic bellows (1004), and the exhaust scoop (1005) is located on one side of the mounting frame (8).

2. The ultra-long-duration power supply equipment for backup power in a computer room according to claim 1, characterized in that: The discharge and filtering structure comprises a liquid collector (901), the liquid collector (901) being fixedly mounted on a liquid discharge pipe (9), the liquid discharge pipe (9) being in communication with the liquid collector (901), a valve (902) being fixedly mounted on one end of the liquid collector (901), a connecting pipe (903) being fixedly mounted on the valve (902), a guide inclined pipe (904) being fixedly mounted on the connecting pipe (903), the guide inclined pipe (904) being in communication with the connecting pipe (903), the guide inclined pipe (904) being fixedly mounted on an electrolyte storage box (6), the guide inclined pipe (904) being in communication with the electrolyte storage box (6), a filter plate (905) being slidably mounted on the inner wall of the guide inclined pipe (904), a mounting plate (906) being fixedly mounted on one side of the filter plate (905), the mounting plate (906) being in contact with one side of the guide inclined pipe (904), and a handle (907) being fixedly mounted on one side of the mounting plate (906).

3. The ultra-long-duration power supply equipment for backup power in a computer room according to claim 2, characterized in that: Two mounting bolts (908) are movably mounted on the mounting plate (906), and both mounting bolts (908) are threadedly mounted on the guide inclined tube (904).

4. The ultra-long-duration power supply equipment for backup power in a computer room according to claim 1, characterized in that: An electric heating pipe (1006) is fixedly mounted on the inner wall of the air guide box (10), the electric heating pipe (1006) is located on one side of the temperature conducting fin (1002), and the electric heating pipe (1006) is electrically connected to the air battery (2).

5. The ultra-long-duration power supply equipment for backup power in a computer room according to claim 1, characterized in that: The lifting structure comprises a bidirectional screw rod (1101), the bidirectional screw rod (1101) is fixedly mounted on the output end of the driving motor (11), the bidirectional screw rod (1101) is rotatably mounted on the backup power installation cabinet (1) of the machine room, two linkage slide bars (1102) are threadedly mounted on the bidirectional screw rod (1101), and the two linkage slide bars (1102) are both slidably mounted on the inner wall of the backup power installation cabinet (1) of the machine room, and the same lifting plate (1102) is slidably mounted on the side of the two support plates (7) close to each other. 1103), a plurality of connecting seats (1104) are fixedly mounted on the lifting plate (1103) and the two linkage slides (1102), a same connecting rod (1105) is rotatably mounted on the two connecting seats (1104) on the same side, the exhaust scoop (1005) is fixedly mounted on the bottom side of the lifting plate (1103), and two mounting posts (1106) are fixedly mounted on the movable cover (4), and both mounting posts (1106) are fixedly mounted on the bottom side of the lifting plate (1103).

6. The ultra-long-duration power supply equipment for backup power in a computer room according to claim 5, characterized in that: The inner wall of the linkage slide bar (1102) is provided with a T-shaped limiting slide groove (1107), a T-shaped guide bar (1108) is slidably installed in the T-shaped limiting slide groove (1107), and the T-shaped guide bar (1108) is fixedly installed on the inner wall of the backup power installation cabinet (1) in the machine room.

7. The ultra-long-duration power supply equipment for backup power in a computer room according to claim 1, characterized in that: The machine room backup power installation cabinet (1) is provided with a first vent (101) and a second vent (102), the first vent (101) being located on one side of the installation frame (8), and the second vent (102) being located on one side of the fan (1001).

8. The ultra-long-duration power supply equipment for backup power in a computer room according to claim 1, characterized in that: A third vent (801) is provided on both sides of the mounting frame (8), the exhaust scoop (1005) corresponds to the third vent (801), and the third vent (801) is located on one side of the first vent (101).

9. The ultra-long-duration power supply equipment for backup power in a computer room according to claim 1, characterized in that: The rechargeable electric pump (604), the fan (1001), the electric heating pipe (1006) and the drive motor (11) can all be powered by an external power supply.

Citation Information

Patent Citations

  • Separable aluminum air battery device

    CN109768353A

  • Metal-air battery reserve power supply

    CN117748030A