A constant-temperature uninterruptible power supply cabinet

By introducing storage boxes, liquid storage tanks and fan circulation systems into the uninterruptible power cabinet, using saltpeter to absorb heat in water, the problem of heat accumulation in the cabinet is solved, effective temperature control and resource recovery are achieved, and the service life of electrical appliances is improved.

CN115241968BActive Publication Date: 2025-07-18QINGDAO ADDISON TECH CO LTD
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Patent Information

Application Number
CN202210834799.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-07-16
Publication Date
2025-07-18
Estimated Expiration
2042-07-16

AI Technical Summary

Technical Problem

The existing uninterruptible power cabinets are prone to damage to electrical appliances due to heat accumulation during operation, reducing their service life.

Method used

A cooling mechanism combining a storage box and a liquid storage box is used to absorb heat through saltpeter dissolved in water, and cool down with the fan circulating gas, and recover saltpeter crystals through the evaporation box to achieve temperature control in the cabinet.

Benefits of technology

Effectively reduce overheating damage to electrical appliances, improve the service life of electrical appliances, and save resources through resource recycling.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application relates to a constant-temperature uninterruptible power supply cabinet, belonging to the technical field of power supply equipment. It includes a cabinet body, and a cooling mechanism for reducing the temperature inside the cabinet is provided on the outer side of the cabinet body. The cooling mechanism includes a storage box for storing potassium nitrate, a liquid storage box for storing water, and an opening and closing member for opening or closing the storage box. The storage box is connected to the upper end of the liquid storage box, the opening and closing member is located between the storage box and the liquid storage box, and the liquid storage box is connected to the cabinet body. This application has the effect of improving the service life of electrical appliances.
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Description

Technical Field

[0001] The present application relates to the technical field of power supply equipment, and particularly relates to a constant-temperature uninterruptible power supply cabinet. Background Art

[0002] At present, in large factories, it is necessary to supply power to the production line uninterruptedly to ensure timely supply of production, and thus it is necessary to use an uninterruptible power supply cabinet to supply power continuously.

[0003] The related technology can refer to the Chinese patent with the publication number CN212210198U, which discloses a portable uninterruptible power supply cabinet, including a screw rod and a bottom plate. A filling block is arranged inside the bottom plate, and two clamping blocks are welded and fixed above the bottom plate. A power supply cabinet is fixedly connected between the two clamping blocks through the screw rod. Vibration damping pads are arranged on the inner walls of the two clamping blocks. The bottom of the bottom plate is fixedly connected with universal self-locking wheels through bolts. The front wall of the power supply cabinet is rotatably connected with a movable door through a rotating shaft, and a handle is fixedly connected to the front wall of the movable door through bolts.

[0004] Regarding the above related technology, the inventor believes that when the workpieces in the cabinet work, heat is generated, and the heat easily leads to damage to the electrical appliances inside the cabinet, reducing the service life of the electrical appliances. Summary of the Invention

[0005] In order to improve the service life of electrical appliances, the present application provides a constant-temperature uninterruptible power supply cabinet.

[0006] The present application provides a constant-temperature uninterruptible power supply cabinet, adopting the following technical solutions:

[0007] A constant-temperature uninterruptible power supply cabinet includes a cabinet body. A cooling mechanism for reducing the temperature inside the cabinet is arranged outside the cabinet body. The cooling mechanism includes a storage box for storing potassium nitrate, a liquid storage box for storing water, and an opening and closing member for opening or closing the storage box. The storage box is connected to the upper end of the liquid storage box. The opening and closing member is located between the storage box and the liquid storage box. The liquid storage box is connected to the cabinet body.

[0008] By adopting the above technical solutions, when the opening and closing member opens the storage box, the potassium nitrate in the storage box falls into the liquid storage box, and the potassium nitrate dissolves in water to absorb heat, thereby cooling the cabinet body, which is beneficial to reducing the phenomenon of overheating and damage of the electrical appliances inside the cabinet, and thus beneficial to improving the service life of the electrical appliances.

[0009] Optionally, the opening and closing member includes a baffle and a driving member for driving the baffle to rotate along its central axis. An elastic member is arranged circumferentially on the baffle, and the side of the elastic member away from the baffle is movably connected to the storage box.

[0010] By adopting the above technical solution, when the baffle stops, the baffle blocks the saltpeter, making it difficult for the saltpeter to fall into the liquid storage tank. When the cabinet needs to be cooled, the driving member drives the baffle to rotate. When the baffle rotates, the storage box is communicated with the liquid storage tank, so that it is convenient for the saltpeter to enter the liquid storage tank. The elastic member is connected to the storage box. When the baffle rotates, the elastic member deforms, which is convenient for the baffle to rotate and helps to reduce the phenomenon of the baffle getting stuck.

[0011] Optionally, the cabinet is provided with a circulation mechanism, and the circulation mechanism includes a fan for promoting the gas flow in the cabinet, a driving motor for driving the fan to rotate, and a temperature sensor for triggering the driving motor to control the rotation of the fan. The driving motor is connected to the cabinet, the output shaft of the driving motor is coaxially connected to the fan, and the driving motor is electrically connected to the temperature sensor.

[0012] By adopting the above technical solution, when the temperature sensor senses that the temperature in the cabinet is relatively high, it triggers the fan to rotate. The fan makes the gas in the cabinet circulate, which helps to reduce the phenomenon of local overheating in the cabinet, facilitates the cooling mechanism to cool the cabinet, and is beneficial to improving the cooling efficiency.

[0013] Optionally, the driving motor is located below the fan. One side of the fan away from the driving motor is coaxially connected with a driving rod. The end of the driving rod passing through the cabinet is connected with a transmission rod through a bevel gear pair. The transmission rod is coaxially connected with a transmission sprocket. The transmission sprocket meshes with a transmission chain. The transmission chain meshes with a driven sprocket. The driving member includes two driven rods. The two driven rods are respectively fixedly connected to both ends of the baffle. The driven rod is rotatably connected to the storage box. The end of the driven rod passing through the storage box is coaxially connected to the driven sprocket.

[0014] By adopting the above technical solution, when the fan rotates, it drives the driving rod to rotate. The driving rod drives the transmission rod to rotate through the bevel gear pair. The transmission rod drives the transmission sprocket to rotate. The transmission sprocket drives the transmission chain to rotate. The transmission chain drives the driven sprocket to rotate. The driven sprocket drives the driven rod to rotate. The driven rod drives the baffle to rotate, making the process of dissolving the saltpeter in water more convenient. When the fan starts, the baffle starts to rotate, which is convenient for controlling the temperature in the cabinet and is beneficial to improving the cooling efficiency.

[0015] Optionally, the lower end of the liquid storage tank is communicated with a drain pipe for discharging the mixed liquid. The end of the drain pipe away from the liquid storage tank is communicated with an evaporation tank for evaporating the water in the mixed liquid. The upper end of the evaporation tank is communicated with a steam pipe for discharging the steam.

[0016] By adopting the above technical solution, the drain pipe discharges the mixed solution of saltpeter and water into the evaporation tank. The evaporation tank evaporates the mixed solution. The water in the mixed solution is heated and evaporated into water vapor, and the water vapor is discharged through the steam pipe. The remaining solid is saltpeter crystals, and the saltpeter crystals can be recycled, which is beneficial to saving resources.

[0017] Optionally, a collection assembly is provided on one side of the evaporation tank. The collection assembly includes a push plate for pushing the saltpeter crystals to the outside of the evaporation tank and a power member for driving the linear movement of the push plate. The push plate is slidably connected to the inner side wall of the evaporation tank. An elevator door for opening or closing the evaporation tank is provided on the side of the evaporation tank away from the push plate, and an elevator member for driving the up and down movement of the elevator door is provided at the upper end of the elevator door.

[0018] By adopting the above technical solution, the elevator member is started, and the elevator member drives the elevator door to open the evaporation tank. The power member is started, and the power member drives the push plate to linearly move. The push plate pushes the saltpeter crystals out of the evaporation tank, which is convenient for taking out the saltpeter crystals and is beneficial to reducing the phenomenon of manually collecting saltpeter crystals.

[0019] Optionally, the power member includes a push rod and a transmission lead screw. One end of the push rod is connected to the push plate, and the end of the push rod away from the push plate is in threaded cooperation with the transmission lead screw. The transmission lead screw is horizontally arranged and is located above the evaporation tank. The transmission lead screw rotates, and the push rod linearly moves along the transmission lead screw. The elevator member includes an elevator gear, an elevator rack and a linkage rod. One end of the linkage rod is coaxially connected to the transmission lead screw, and the end of the linkage rod away from the transmission lead screw is coaxially connected to the elevator gear. The lower end of the elevator rack is connected to the elevator door, and the elevator gear meshes with the elevator rack.

[0020] By adopting the above technical solution, the transmission lead screw rotates, driving the push rod to move horizontally, and the push rod drives the push plate to move horizontally, making the process of pushing the saltpeter crystals more convenient. At the same time, the rotation of the transmission lead screw drives the linkage rod to rotate, the linkage rod drives the elevator gear to rotate, the elevator gear drives the elevator rack to rise, and the elevator rack drives the elevator door to rise, which is convenient for pushing the saltpeter crystals out of the evaporation tank.

[0021] Optionally, a conveying assembly is connected to the side of the evaporation tank away from the push plate. The conveying assembly includes a conveying pipe for conveying saltpeter crystals, a temporary storage tank for temporarily storing saltpeter crystals, a tray for dragging the saltpeter crystals to rise, and a reciprocating member for driving the tray to rise. The temporary storage tank is located below the evaporation tank. The tray is slidably connected to the inner side wall of the conveying pipe. The tray is inclined towards the evaporation tank. One end of the conveying pipe away from the temporary storage tank is fixedly connected to a storage box. The reciprocating member is connected to the side of the conveying pipe away from the liquid storage tank.

[0022] By adopting the above technical solution, the push plate pushes the saltpeter crystals into the temporary storage box for collection. The reciprocating member drives the tray to rise, the tray drives the saltpeter crystals to rise, and the saltpeter crystals are transported into the storage box through the conveying pipeline, thus facilitating the recycling of the saltpeter crystals and being conducive to saving resources.

[0023] In summary, the present application includes at least one of the following beneficial technical effects of the constant temperature uninterruptible power supply cabinet:

[0024] 1. By providing a storage box, a liquid storage box and an opening and closing member, the opening and closing member opens the storage box, and the saltpeter in the storage box falls into the liquid storage box. The saltpeter dissolves in water to absorb heat, thus facilitating the cooling of the cabinet body, being conducive to reducing the phenomenon of electrical appliances being damaged due to overheating, and further being conducive to improving the service life of the electrical appliances;

[0025] 2. By providing a fan, the fan rotates to drive the gas in the cabinet to circulate, being conducive to making the heat distribution in the cabinet uniform, and further being conducive to reducing the phenomenon of local overheating in the cabinet. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 is an overall structural schematic diagram of a constant temperature uninterruptible power supply cabinet.

[0027] Figure 2 is a structural schematic diagram highlighting the fan in the embodiment of the present application;

[0028] Figure 3 is a structural schematic diagram highlighting the lifting lead screw in the embodiment of the present application;

[0029] Figure 4 is Figure 3 an enlarged schematic diagram of part A in

[0030] Figure 5 is Figure 2 an enlarged schematic diagram of part B in

[0031] In the figure, 1 is the cabinet body; 11 is the double-door; 12 is the bracket; 2 is the circulation mechanism; 21 is the fan; 22 is the driving motor; 23 is the temperature sensor; 24 is the driving rod; 25 is the transmission rod; 26 is the driving sprocket; 27 is the transmission chain; 28 is the driven sprocket; 3 is the cooling mechanism; 31 is the storage box; 32 is the liquid storage tank; 33 is the opening and closing member; 331 is the baffle; 332 is the driving member; 333 is the elastic member; 3321 is the driven rod; 4 is the collection mechanism; 41 is the evaporation box; 42 is the collection assembly; 43 is the conveying assembly; 411 is the drain pipe; 412 is the valve; 413 is the electric heating plate; 414 is the steam pipe; 415 is the air extraction pump; 421 is the push plate; 422 is the power member; 423 is the lifting door; 424 is the lifting member; 4221 is the pushing rod; 4222 is the transmission lead screw; 4223 is the power motor; 4241 is the lifting gear; 4242 is the lifting rack; 4243 is the linkage rod; 431 is the temporary storage box; 432 is the reciprocating member; 433 is the tray; 434 is the conveying pipeline; 4321 is the lifting lead screw; 4322 is the lifting motor. Specific embodiments

[0032] The following further elaborates on this application in conjunction with all the attached drawings.

[0033] The embodiment of this application discloses a constant-temperature uninterruptible power supply cabinet.

[0034] Referring to Figure 1 and Figure 2 , a constant-temperature uninterruptible power supply cabinet includes a cabinet body 1, a cooling mechanism 3, a circulation mechanism 2, and a collection mechanism 4. The cabinet body 1 is rectangular. A double-door 11 is provided on one side of the cabinet body 1. A bracket 12 is fixedly connected to the lower end of the cabinet body 1. One end of the cabinet body 1 is connected to the cooling mechanism 3. The circulation mechanism 2 is connected to the cooling mechanism 3. Part of the circulation mechanism 2 is located inside the cabinet body 1. The collection mechanism 4 is connected to the cooling mechanism 3. When the temperature inside the cabinet body 1 is relatively high, the circulation mechanism 2 is started. The circulation mechanism 2 drives the gas inside the cabinet body 1 to circulate, making the heat distribution inside the cabinet body 1 uniform. The cooling mechanism 3 is started. The cooling mechanism 3 cools the cabinet body 1, thereby preventing the electrical appliances inside the cabinet body 1 from overheating and being damaged easily.

[0035] Referring to Figure 1 and Figure 2 , the circulation mechanism 2 includes two fans 21, two driving motors 22, and a temperature sensor 23. The temperature sensor 23 is fixedly connected to the upper end of the cabinet body 1. The fans 21 are fixedly connected inside the cabinet body 1. The two fans 21 are located in the middle of the cabinet body 1. The two fans 21 are arranged in parallel and are on the same horizontal plane. The air inlets of the two fans 21 are set in opposite directions. The driving motor 22 is located below the fan 21. The output shaft of the driving motor 22 is fixedly connected to the fan 21. The temperature sensor 23 is electrically connected to the driving motor 22.

[0036] Reference Figure 1 and Figure 2 When the temperature inside the cabinet body 1 is relatively high, the temperature sensor 23 triggers the drive motor 22, and the drive motor 22 drives the fan 21 to rotate. The fan 21 makes the gas inside the cabinet body 1 circulate, which is conducive to reducing the phenomenon of local overheating inside the cabinet body 1, and is further conducive to reducing the risk of electrical appliance damage inside the cabinet body 1, and improving the service life of the electrical appliances.

[0037] Reference Figure 1 and Figure 2 The cooling mechanism 3 includes a storage box 31, a liquid storage box 32 and an opening and closing member 33. The liquid storage box 32 is fixedly connected to one end of the cabinet body 1. The vertical cross-section of the liquid storage box 32 is the same as that of the cabinet body 1. The storage box 31 is fixedly connected to the upper end of the liquid storage box 32. The storage box 31 is communicated with the liquid storage box 32. The opening and closing member 33 is located between the storage box 31 and the liquid storage box 32.

[0038] Reference Figure 2 and Figure 3 The opening and closing member 33 includes a baffle 331 and a driving member 332. The baffle 331 is provided with an elastic member 333. The elastic member 333 is fixedly connected to the baffle 331. The elastic members 333 are circumferentially arranged evenly. The side of the elastic member 333 away from the baffle 331 is movably connected to the inner side wall of the storage box 31. The driving member 332 includes two driven rods 3321. The two driven rods 3321 are fixedly connected to both ends of the baffle 331. The driven rods 3321 are rotatably connected to the storage box 31.

[0039] Reference Figure 2 and Figure 4 The circulation mechanism 2 further includes a driving rod 24, a transmission rod 25, a transmission sprocket 26, a transmission chain 27 and a driven sprocket 28. The driven sprocket 28 is coaxially connected to one of the driven rods 3321. The driven sprocket 28 is engaged with the transmission chain 27. The transmission chain 27 is engaged with the transmission sprocket 26. The transmission sprocket 26 is coaxially connected to the transmission rod 25. The transmission rod 25 is connected to the driving rod 24 through a bevel gear pair. The driving rod 24 is coaxially connected to the side of one of the fans 21 away from the drive motor 22.

[0040] Reference Figure 2 and Figure 4, saltpeter is stored in the storage box 31, and water is stored in the liquid storage box 32. When the fan 21 rotates, the fan 21 drives the driving rod 24 to rotate. The driving rod 24 drives the transmission rod 25 to rotate through the bevel gear pair. The transmission rod 25 drives the transmission sprocket 26 to rotate. The transmission sprocket 26 drives the transmission chain 27 to rotate. The transmission chain 27 drives the driven sprocket 28 to rotate. The driven sprocket 28 drives the driven rod 3321 to rotate. The driven rod 3321 drives the baffle 331 to rotate. The saltpeter falls into the liquid storage box 32 and dissolves in water. The saltpeter dissolves in water and absorbs heat, thereby facilitating the cooling of the cabinet body 1, and further reducing the phenomenon of electrical appliances being damaged due to overheating, which is beneficial to improving the service life of electrical appliances. While the fan 21 rotates, the baffle 331 rotates, thereby facilitating the control of the temperature inside the cabinet body 1 and improving the cooling efficiency at the same time. When the baffle 331 rotates, the elastic member 333 is squeezed and deformed, thereby facilitating the rotation of the baffle 331 and reducing the phenomenon of the baffle 331 getting stuck.

[0041] Refer to Figure 1 and Figure 5 , the collection mechanism 4 includes an evaporation box 41, a collection component 42 and a conveying component 43. The evaporation box 41 is fixedly connected to the bracket 12. The evaporation box 41 is in the shape of a cuboid. The collection component 42 is located on one side of the evaporation box 41. A drain pipe 411 is connected to the lower end of the liquid storage box 32. A valve 412 is provided on the drain pipe 411. The end of the drain pipe 411 away from the liquid storage box 32 is connected to the upper end of the evaporation box 41. The saltpeter dissolves in water to form a mixed solution. The valve 412 is opened, and the mixed solution flows into the evaporation box 41 through the drain pipe 411. A cavity is opened at the lower end of the evaporation box 41. The evaporation box 41 is provided with an electric heating plate 413. The electric heating plate 413 is fixedly connected to the cavity of the evaporation box 41. The electric heating plate 413 is started, and the electric heating plate 413 heats the mixed solution. The mixed solution evaporates and crystallizes, thereby separating the saltpeter from the water, and facilitating the recycling of the saltpeter. A steam pipe 414 is connected to the upper end of the evaporation box 41. A suction pump 415 is provided on the steam pipe 414. The suction pump 415 extracts the water vapor, further facilitating the collection of the saltpeter crystals.

[0042] Refer to Figure 5 , the collection component 42 includes a push plate 421, a power component 422, a lifting door 423 and a lifting component 424. The push plate 421 is located inside the evaporation box 41. The push plate 421 is slidably connected to the inner side wall of the evaporation box 41. The power component 422 includes a pushing rod 4221 and a transmission lead screw 4222. The push plate 421 is fixedly connected to one end of the pushing rod 4221. The end of the pushing rod 4221 away from the push plate 421 is matched with the transmission lead screw 4222. The length of the pushing rod 4221 is equal to the length of the evaporation box 41. One end of the transmission lead screw 4222 is provided with a power motor 4223. The power motor 4223 is fixedly connected to the bracket 12. The output shaft of the power motor 4223 is fixedly connected to the transmission lead screw 4222.

[0043] Referring to Figure 5 , on one side of the evaporator 41 away from the power motor 4223, it is slidably connected to the lifting door 423. The lifting door 423 is used to open or close the evaporator 41. The lifting member 424 includes a lifting gear 4241, a lifting rack 4242 and a linkage rod 4243. One end of the linkage rod 4243 is coaxially connected to the transmission lead screw 4222, and the end of the linkage rod 4243 away from the transmission lead screw 4222 is coaxially connected to the lifting gear 4241. The lifting gear 4241 meshes with the lifting rack 4242, and the lower end of the lifting rack 4242 is fixedly connected to the upper end of the lifting door 423.

[0044] Referring to Figure 5 , start the power motor 4223. The output shaft of the power motor 4223 drives the transmission lead screw 4222 to rotate. The transmission lead screw 4222 drives the push rod 4221 to move horizontally. The push rod 4221 drives the push plate 421 to move horizontally. While the push plate 421 is moving horizontally, the transmission lead screw 4222 drives the linkage rod 4243 to rotate. The linkage rod 4243 drives the lifting rack 4242 to rise. The lifting rack 4242 drives the lifting door 423 to rise. When the push plate 421 pushes the saltpeter crystals to the lifting door 423, the lifting door 423 opens, which facilitates the push plate 421 to push the saltpeter crystals out of the evaporator 41, and thus facilitates the collection of the saltpeter crystals.

[0045] Referring to Figure 2 and Figure 3 , the conveying assembly 43 includes a temporary storage box 431, a reciprocating member 432, a tray 433 and a conveying pipeline 434. The conveying pipeline 434 is in the shape of a cuboid. The conveying pipeline 434 is fixedly connected to one side of the liquid storage tank 32 away from the cabinet body 1. The upper end of the conveying pipeline 434 is fixedly connected to one side of the storage box 31. The conveying pipeline 434 communicates with the upper end of the storage box 31. The lower end of the conveying pipeline 434 is slidably connected to the lifting door 423. When the lifting door 423 opens the evaporator 41, the conveying pipeline 434 is connected to the evaporator 41. The temporary storage box 431 is fixedly connected to the lower end of the conveying pipeline 434. The conveying pipeline 434 is connected to the temporary storage box 431. The periphery of the tray 433 is slidably connected to the temporary storage box 431. The tray 433 is inclined towards the evaporator 41. The reciprocating member 432 includes a lifting lead screw 4321 and a lifting motor 4322. The lifting lead screw 4321 is arranged vertically. The lifting lead screw 4321 is rotatably connected to the side of the conveying pipeline 434 away from the evaporator 41. The lifting motor 4322 is fixedly connected to the upper end of the conveying pipeline 434. The output shaft of the lifting motor 4322 is coaxially connected to the lifting lead screw 4321.

[0046] Referring to Figure 2 and Figure 3, the pushing plate 421 pushes the saltpeter crystals onto the tray 433 of the temporary storage box 431. Then, the lifting motor 4322 is started. The output shaft of the lifting motor 4322 drives the lifting lead screw 4321 to rotate. The lifting lead screw 4321 drives the tray 433 to rise. The tray 433 drives the saltpeter crystals to rise. When the tray 433 rises to the storage box 31, the saltpeter crystals slide into the storage box 31, thus facilitating the recycling of the saltpeter crystals and being beneficial to resource conservation.

[0047] The implementation principle of the constant-temperature uninterruptible power supply cabinet in the embodiment of the present application is as follows: When the temperature inside the cabinet body 1 is relatively high, the temperature sensor 23 controls the driving motor 22 to start. The output shaft of the driving motor 22 drives the fan 21 to rotate. The fan 21 circulates the gas inside the cabinet body 1. At the same time, the rotation of the fan 21 drives the driving rod 24 to rotate. The driving rod 24 drives the transmission rod 25 to rotate through the bevel gear pair. The transmission rod 25 drives the transmission sprocket 26 to rotate. The transmission sprocket 26 drives the transmission chain 27 to rotate. The transmission chain 27 drives the driven sprocket 28 to rotate. The driven sprocket 28 drives the driven rod 3321 to rotate. The driven rod 3321 drives the baffle 331 to rotate. The saltpeter falls into the liquid storage tank 32 and dissolves in water. The dissolution of the saltpeter in water absorbs heat to cool the cabinet body 1.

[0048] The embodiments of the present specific implementation manners are all preferred embodiments of the present application, and do not limit the protection scope of the present application accordingly. The same components are denoted by the same reference numerals. Therefore, all equivalent changes made according to the structure, shape, and principle of the present application should be covered within the protection scope of the present application.

Claims

1. A constant-temperature uninterruptible power supply cabinet, comprising a cabinet body (1), characterized in that: A cooling mechanism (3) for reducing the temperature inside the cabinet body (1) is provided on the outer side of the cabinet body (1). The cooling mechanism (3) includes a storage box (31) for storing potassium nitrate, a liquid storage box (32) for storing water, and an opening and closing member (33) for opening or closing the storage box (31). The storage box (31) is connected to the upper end of the liquid storage box (32). The opening and closing member (33) is located between the storage box (31) and the liquid storage box (32). The liquid storage box (32) is connected to the cabinet body (1). The opening and closing member (33) includes a baffle plate (331) and a driving member (332) for driving the baffle plate (331) to rotate along its central axis. An elastic member (333) is circumferentially arranged on the baffle plate (331). The side of the elastic member (333) away from the baffle plate (331) is movably connected to the storage box (31). The cabinet body (1) is provided with a circulation mechanism (2). The circulation mechanism (2) includes a blower (21) for promoting the flow of gas inside the cabinet body (1), a driving motor (22) for driving the blower (21) to rotate, and a temperature sensor (23) for triggering the driving motor (22) to control the rotation of the blower (21). The driving motor (22) is connected to the cabinet body (1). The output shaft of the driving motor (22) is coaxially connected to the blower (21). The driving motor (22) is electrically connected to the temperature sensor (23). The driving motor (22) is located below the blower (21). One side of the blower (21) away from the driving motor (22) is coaxially connected with a driving rod (24). One end of the driving rod (24) passing through the cabinet body (1) is connected to a transmission rod (25) through a bevel gear pair. The transmission rod (25) is coaxially connected with a transmission sprocket (26). The transmission sprocket (26) is engaged with a transmission chain (27). The transmission chain (27) is engaged with a driven sprocket (28). The driving member (332) includes two driven rods (3321). The two driven rods (3321) are respectively fixedly connected to both ends of the baffle plate (331). The driven rod (3321) is rotatably connected to the storage box (31). One end of the driven rod (3321) passing through the storage box (31) is coaxially connected to the driven sprocket (28).

2. The constant-temperature uninterruptible power supply cabinet according to claim 1, characterized in that: A drain pipe (411) for discharging the mixed liquid is communicated with the lower end of the liquid storage box (32). One end of the drain pipe (411) away from the liquid storage box (32) is communicated with an evaporation box (41) for evaporating the water in the mixed liquid. A steam pipe (414) for discharging steam is communicated with the upper end of the evaporation box (41).

3. The constant temperature type uninterruptible power supply cabinet according to claim 2, characterized in that: On one side of the evaporation box (41), there is a collection component (42). The collection component (42) includes a push plate (421) for pushing the saltpeter crystals to the outside of the evaporation box (41) and a power component (422) for driving the linear movement of the push plate (421). The push plate (421) is slidably connected to the inner side wall of the evaporation box (41). On the side of the evaporation box (41) away from the push plate (421), there is a lifting door (423) for opening or closing the evaporation box (41). At the upper end of the lifting door (423), there is a lifting component (424) for driving the lifting of the lifting door (423).

4. The constant-temperature uninterruptible power supply cabinet according to claim 3, characterized in that: The power component (422) includes a push rod (4221) and a transmission lead screw (4222). One end of the push rod (4221) is connected to the push plate (421). The end of the push rod (4221) away from the push plate (421) is in threaded cooperation with the transmission lead screw (4222). The transmission lead screw (4222) is horizontally arranged and is located above the evaporation box (41). When the transmission lead screw (4222) rotates, the push rod (4221) moves linearly along the transmission lead screw (4222). The lifting component (424) includes a lifting gear (4241), a lifting rack (4242), and a linkage rod (4243). One end of the linkage rod (4243) is coaxially connected to the transmission lead screw (4222). The end of the linkage rod (4243) away from the transmission lead screw (4222) is coaxially connected to the lifting gear (4241). The lower end of the lifting rack (4242) is connected to the lifting door (423). The lifting gear (4241) meshes with the lifting rack (4242).

5. The constant-temperature uninterruptible power supply cabinet according to claim 2, characterized in that: On the side of the evaporation box (41) away from the push plate (421), a conveying component (43) is connected. The conveying component (43) includes a conveying pipeline (434) for conveying saltpeter crystals, a temporary storage box (431) for temporarily storing saltpeter crystals, a tray (433) for dragging the saltpeter crystals to rise, and a reciprocating component (432) for driving the tray (433) to rise. The temporary storage box (431) is located below the evaporation box (41). The tray (433) is slidably connected to the inner side wall of the conveying pipeline (434). The tray (433) is inclined towards the evaporation box (41). The end of the conveying pipeline (434) away from the temporary storage box (431) is fixedly connected to the storage box (31). The reciprocating component (432) is connected to the side of the conveying pipeline (434) away from the liquid storage tank (32).

Citation Information

Patent Citations

  • Portable uninterrupted power source cabinet

    CN212210198U

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    CN110783839A

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