Intelligent temperature control type power distribution cabinet
By utilizing rainwater resources and mechanical extrusion circulation systems, the complex problems of high energy consumption and maintenance of existing intelligent temperature-controlled distribution cabinets are solved, and efficient and energy-saving temperature control adjustment and equipment reliability are achieved.
Patent Information
- Application Number
- CN202510730180.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-03
- Publication Date
- 2025-08-26
AI Technical Summary
The cooling system of existing intelligent temperature-controlled distribution cabinets is complex and requires regular maintenance, which increases maintenance difficulty and cost, consumes water resources and electricity, resulting in an increase in overall power consumption.
The rainwater resources in nature are used to drive the heat dissipation fan to rotate through the conveying pipeline and the rotating wheel to form an efficient cooling circulation system, combined with the fan to accelerate the air flow, and use the heating parts to adjust the rainwater temperature to achieve intelligent temperature control and control, reducing dependence on additional power sources.
It reduces water resources and electricity consumption, improves heat dissipation efficiency and equipment adaptability and reliability, reduces manual cleaning and maintenance workload, and extends the service life of the equipment.
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Figure CN120545839A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field related to power distribution cabinets, and specifically to an intelligent temperature-controlled power distribution cabinet. Background Art
[0002] During the use of smart grids, distribution cabinets are required for power transmission. Distribution cabinets are power distribution devices that assemble switchgear, measuring instruments, protective electrical appliances and auxiliary equipment in a closed or semi-closed metal cabinet according to electrical wiring requirements. However, existing distribution cabinets have certain defects during use. Due to the compact structure of the internal circuit boards of the distribution cabinets, the internal electronic components will generate a lot of heat. Long-term high-temperature operation can easily accelerate the aging of these components, thereby reducing the safety of the equipment.
[0003] The heat dissipation fan of described outer shell and the heat dissipation device is connected with the outer shell and the heat dissipation device is connected with the outer shell and the heat dissipation device is connected with the heat dissipation devicedry. (Chinese patent with announcement number CN214506130U and announcement date of October 26, 2021) An intelligent temperature-controlled distribution cabinet, comprising a distribution cabinet, a cooling cabinet, an isolation column and a door bolt. The cooling cabinet is fixedly connected to the bottom of the distribution cabinet, the isolation column is fixedly connected to the bottom of the cooling cabinet, the door bolt is fixedly connected to the front of the distribution cabinet, and a cover is fixedly connected to the top of the distribution cabinet. A cooling mechanism is provided inside the cooling cabinet. The cooling water pump is powered by electronic components inside the distribution cabinet. After starting the cooling water pump, the cooling water pump pumps out cooling water and sends it into the heat absorption pipe through the water supply pipe. Since the heat absorption plate is made of brass, it can absorb heat inside the distribution cabinet, thereby lowering the temperature inside the distribution cabinet. After the cooling water enters the heat absorption pipe, it can absorb heat inside the heat absorption plate, causing the temperature of the heat absorption plate to drop, thereby continuously absorbing heat inside the distribution cabinet, so that the temperature inside the distribution cabinet is maintained at a low value.
[0004] Although the existing technology can effectively reduce the internal temperature of the distribution cabinet, its cooling system is relatively complex. Heat absorption is usually carried out through the cooperation of cooling water pumps, water supply pipes and heat absorption pipes. It not only requires regular maintenance, which increases the difficulty and cost of maintenance, but also brings about water resource consumption and corresponding maintenance needs. In addition, the dual-axis motor and water pump in the cooling system need to consume a certain amount of electricity, which leads to an increase in overall electricity consumption.
[0005] In response to the above problems, it is urgent to carry out innovative design based on the original intelligent temperature-controlled distribution cabinet. Therefore, we proposed an intelligent temperature-controlled distribution cabinet that can solve the above problems well. Summary of the Invention
[0006] The purpose of the present invention is to provide an intelligent temperature-controlled distribution cabinet to solve the problem raised in the above background technology that the heat absorption treatment in the current market is carried out through the cooperation of cooling water pumps, water supply pipes and heat absorption pipes, which not only requires regular maintenance, increases the difficulty and cost of maintenance, but also brings about water resource consumption and corresponding maintenance needs, and the dual-axis motor and water pump in the cooling system need to consume a certain amount of electrical energy, thereby leading to an increase in overall power consumption.
[0007] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: an intelligent temperature-controlled power distribution cabinet, comprising a cabinet body, a receiving bucket is provided at the side end of the cabinet body, a conveying pipe is installed at the bottom of the receiving bucket, the conveying pipe is connected to the interior of the cabinet body, a water storage tank is installed inside the cabinet body, the conveying pipe is bent and surrounded and arranged on the inner wall of the cabinet, a rotating wheel is installed inside the conveying pipe, a bearing on the rotating wheel passes through a rotating shaft coaxial with it, the rotating shaft sealed bearing passes through the outside of the conveying pipe, a heat dissipation fan is installed on the outside of the rotating shaft, a heat dissipation hole is opened on the inner wall of the cabinet body, a support rod is provided on the inner wall of the cabinet body, the output end of the support rod is connected to a lifting plate, and the lifting plate is connected to the bottom of the conveying pipe that passes through the inner wall of the cabinet body, by utilizing natural rainwater resources, the water resource cost during the operation of the equipment is reduced, the conveying pipe is bent and surrounded and arranged on the inner wall of the cabinet body, thereby improving the heat exchange efficiency, the rotating wheel drives the heat dissipation fan to rotate through the rotating shaft, and the whole does not require an additional power source to drive the heat dissipation fan, thereby improving the overall heat dissipation efficiency.
[0008] Preferably, a processing box is provided at the side end of the cabinet, the bottom of the receiving bucket is connected to the inside of the processing box through a conveying pipe, a filter plate is installed inside the processing box, the filter plate is arranged at an angle, and a through groove is opened at the side end of the processing box.
[0009] Preferably, a transmission component is installed inside the cabinet, and the transmission component includes a dual-axis motor installed inside the cabinet, a first output end of the dual-axis motor is connected to a rotating shaft, and a fan is installed outside the rotating shaft.
[0010] Preferably, an extrusion wheel is provided on the outside of the rotating shaft, and the extrusion wheel is located inside the storage seat, and the storage seat is provided inside the cabinet. A delivery pipe is connected to the storage seat, and the delivery pipe is in contact with the extrusion wheel. A heating element is installed on the side end of the water storage tank. The rotation of the rotating shaft drives the extrusion wheel to rotate, so that the rainwater stored in the water storage tank flows back through the delivery pipe, and the rainwater circulation is achieved through mechanical extrusion. The fan is used to accelerate the air flow to form an efficient cooling circulation system. The heating element heats the rainwater inside the water storage tank, so that the temperature of the rainwater flowing back through the delivery pipe increases, and the heating operation is performed with the cooperation of the fan, thereby realizing intelligent temperature control and adjustment of the distribution cabinet, and improving the adaptability and reliability of the equipment.
[0011] Preferably, a rotating rod is connected through the receiving bucket, a torsion spring for rebound is provided on the outside of the rotating rod, and a conveying bag is provided at the side end of the cabinet body, and the conveying bag is located at the bottom of the receiving bucket.
[0012] Preferably, a heat dissipation slot is provided at the side end of the cabinet, a dust cover is connected to the outside of the heat dissipation slot via a bolt structure, a storage box is installed on the dust cover, and the storage box is located at the side end of the cabinet.
[0013] Preferably, an auxiliary component is provided inside the storage box, and the auxiliary component includes a sleeve installed inside the storage box.
[0014] Preferably, the conveying bag is connected to a conveying bag through a conveying pipe. The conveying bag is located inside the sleeve. The receiving bucket squeezes the conveying bag. The conveying bag conveys the gas to the conveying bag through the conveying pipe. The heat generated by the internal components of the cabinet during use is dissipated through the heat dissipation groove. After the gas is conveyed to the conveying bag through the conveying pipe, the conveying bag pushes the moving rod out inside the sleeve.
[0015] Preferably, a moving rod is connected to the inside of the sleeve, the moving rod is located at the bottom of the transmission bag, a spring is provided between the moving rod and the outside of the sleeve, a cleaning piece is installed at the bottom of the moving rod, and the moving rod drives the cleaning piece to move to the surface of the dust cover, which not only realizes the automatic cleaning of the dust cover, reduces the manual cleaning cost and maintenance workload, but also reduces the problem of large rainwater penetrating into the cabinet through the heat dissipation groove to cause damage to components, thereby improving the service life of the distribution cabinet.
[0016] Preferably, the second output end of the dual-axis motor is connected to a lifting assembly, and the lifting assembly includes a rotating disk installed at the second output end of the dual-axis motor, a sliding groove is provided on the rotating disk, and a sliding rod is slidingly connected inside the sliding groove, and the sliding rod has a segmented hinge structure, and the top end of the sliding rod is connected to the bottom of the support rod, and a limit block is provided on the outside of the sliding rod, and the limit block is located inside the cabinet.
[0017] Compared with the existing technology, the beneficial effects of the present invention are: the intelligent temperature-controlled power distribution cabinet reduces the water resource cost during equipment operation by utilizing natural rainwater resources. The delivery pipe is arranged in a curved and surrounding manner on the inner wall of the cabinet to improve the heat exchange efficiency. The rotating wheel drives the cooling fan to rotate through the rotating shaft. The entire cabinet does not require an additional power source to drive the cooling fan, thereby reducing energy consumption and further improving the heat dissipation effect. The specific contents are as follows: The cleaned rainwater is transported to the water tank inside the cabinet through a delivery pipe, and the delivery pipe is arranged in a curved shape on the inner wall of the cabinet to absorb the heat generated by the components inside the cabinet when in use, thereby increasing the contact area between the delivery pipe and the air and components inside the cabinet, and improving the heat exchange efficiency. The rotating wheel drives the cooling fan to rotate through the rotating shaft. No additional power source is required to drive the cooling fan, which reduces energy consumption and greatly improves the overall energy saving.
[0018] The rotation of the shaft drives the extrusion wheel to rotate, so that the rainwater stored in the water tank flows back through the delivery pipe. The rainwater circulation is achieved through mechanical extrusion, and the fan accelerates the air flow to form an efficient cooling circulation system.
[0019] The heating element heats the rainwater inside the water tank, which increases the temperature of the rainwater returning from the delivery pipe, and performs heating operations through the cooperation of the fan, thereby realizing intelligent temperature control adjustment of the distribution cabinet and improving the adaptability and reliability of the equipment.
[0020] The receiving bucket squeezes the conveying bag, and the conveying bag conveys the gas to the conveying bag through the conveying pipe. The heat generated by the components inside the cabinet during use is dissipated through the heat dissipation groove. After the gas is conveyed to the conveying bag through the conveying pipe, the conveying bag pushes the moving rod out from the inside of the sleeve.
[0021] The moving rod drives the cleaning part to move to the surface of the dust cover, which not only realizes the automatic cleaning of the dust cover, reduces the manual cleaning cost and maintenance workload, but also reduces the problem of heavy rainwater seeping into the cabinet through the heat dissipation groove and causing damage to components, thereby increasing the service life of the distribution cabinet. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic side view of the overall structure of the present invention; Figure 3 This is a schematic diagram of the internal structure of the cabinet of the present invention; Figure 4 This is a schematic diagram of the cross-sectional structure of the processing cartridge of the present invention; Figure 5 This is a schematic diagram of the cross-sectional structure of the delivery pipeline of the present invention; Figure 6 This is a schematic diagram of the structure of the extrusion wheel of the present invention; Figure 7 This is a schematic diagram of the cabinet and heat dissipation hole structure of the present invention; Figure 8 This is a schematic diagram of the water storage tank and heating element structure of the present invention; Figure 9 This is a schematic diagram of the receiving bucket and conveying bag structure of the present invention; Figure 10 This is a schematic diagram of the cross-sectional structure of the sleeve of the present invention; Figure 11 For the present invention Figure 4 A in the middle is an enlarged structural diagram; Figure 12 This is a schematic diagram of the connection structure between the water storage tank and the heating element of the present invention; Figure 13 This is a schematic diagram of the split structure of the rotating disk and the sliding rod of the present invention.
[0023] In the figure: 1. cabinet; 2. receiving bucket; 3. conveying pipe; 4. processing box; 5. filter plate; 6. through groove; 7. water tank; 8. rotating wheel; 9. rotating shaft; 10. cooling fan; 11. cooling hole; 12. support rod; 13. lifting plate; 14. dual-axis motor; 15. rotating shaft; 16. fan; 17. extrusion wheel; 18. storage seat; 19. rotating rod; 20. torsion spring; 21. conveying bag; 22. conveying pipe; 23. conveying bag; 24. moving rod; 25. sleeve; 26. storage box; 27. spring; 28. cleaning part; 29. heat dissipation groove; 30. dust cover; 31. heating element; 32. rotating disk; 33. slide groove; 34. slide rod; 35. limit block. DETAILED DESCRIPTION
[0024] 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.
[0025] Embodiment 1: In this embodiment, the rotating wheel 8 drives the cooling fan 10 to rotate through the rotating shaft 9. No additional power source is required to drive the cooling fan 10, which strengthens the air circulation inside the cabinet 1 and further improves the cooling effect. Figures 1-4 and Figure 11The technical solution shown includes a cabinet 1, a receiving bucket 2 is provided at the side end of the cabinet 1, a delivery pipe 3 is installed at the bottom of the receiving bucket 2, the delivery pipe 3 is connected to the inside of the cabinet 1, a water tank 7 is installed inside the cabinet 1, the delivery pipe 3 is bent and arranged around the inner wall of the cabinet 1, a rotating wheel 8 is installed inside the delivery pipe 3, a rotating shaft 9 coaxial with the rotating wheel 8 is passed through the bearing, the sealed bearing of the rotating shaft 9 passes through the outside of the delivery pipe 3, a cooling fan 10 is installed on the outside of the rotating shaft 9, a cooling hole 11 is opened on the inner wall of the cabinet 1, a support rod 12 is provided on the inner wall of the cabinet 1, and the output end of the support rod 12 is connected to a lifting plate 13, which is connected to the outer wall of the cabinet 1. 1, a processing box 4 is provided at the side end of the cabinet 1. The bottom of the receiving bucket 2 is connected to the inside of the processing box 4 through the delivery pipe 3. A filter plate 5 is installed inside the processing box 4. The filter plate 5 is tilted. A through groove 6 is opened at the side end of the processing box 4. The receiving bucket 2 at the side end of the cabinet 1 is convenient for receiving rainwater. By utilizing the natural rainwater resources, the recycling of resources is realized and the water resource cost during the operation of the equipment is reduced. At this time, the rainwater is transported through the delivery pipe 3, and the delivery pipe 3 transports the rainwater to the inside of the processing box 4. The filter plate 5 inside the processing box 4 blocks the impurities in the rainwater, and the excess impurities are conveniently passed through the through groove at the side end of the processing box 4. 6 is poured out to prevent impurities from clogging the delivery pipe 3 and causing damage, thereby ensuring the stable operation of the entire temperature control system and improving the maintenance efficiency. The cleaned rainwater is delivered to the water storage tank 7 of the cabinet 1 through the delivery pipe 3, and the delivery pipe 3 is bent and arranged around the inner wall of the cabinet 1 to absorb the heat generated by the components inside the cabinet 1 when they are in use, thereby increasing the contact area between the delivery pipe 3 and the air and components inside the cabinet 1, improving the heat exchange efficiency, and being able to more efficiently take away the heat generated by the components, maintaining a suitable temperature environment inside the cabinet 1. When the rainwater is delivered, the rainwater drives the rotating wheel 8 inside the delivery pipe 3 to rotate, which facilitates the rotating wheel 8 to drive the heat dissipation through the rotating shaft 9 The heat fan 10 rotates, allowing the gas to circulate through the heat dissipation holes 11 on the inner wall of the cabinet 1. No additional power source is required to drive the heat dissipation fan 10 as a whole, which reduces energy consumption. At the same time, the air circulation inside the cabinet 1 is enhanced, and the heat dissipation effect is further improved. The support rod 12 inside the cavity of the inner wall of the cabinet 1 is driven to rise and fall by the lifting component, and the support rod 12 drives the lifting plate 13 to perform lifting operations, so that the lifting plate 13 drives the conveying pipe 3 with a bent and surrounding upper end to move its position, which facilitates the movement of the heat dissipation fan 10 at the side end of the conveying pipe 3. The overall heat dissipation position can be flexibly adjusted according to actual heat dissipation needs, thereby enhancing the targetedness and effectiveness of heat dissipation and improving the overall heat dissipation efficiency.
[0026] Embodiment 2: In this embodiment, according to the change of ambient temperature, the heat dissipation or heating mode is automatically switched to ensure that the internal components of the cabinet 1 operate stably at an appropriate temperature, thereby improving the adaptability and reliability of the equipment. Figure 3-Figure 8 、 Figure 12 and Figure 13 As shown, it is disclosed that: a transmission component is installed inside the cabinet 1, and the transmission component includes a double-axis motor 14 installed inside the cabinet 1, a first output end of the double-axis motor 14 is connected to a rotating shaft 15, a fan 16 is installed on the outside of the rotating shaft 15, an extrusion wheel 17 is provided on the outside of the rotating shaft 15, the extrusion wheel 17 is located inside a storage seat 18, the storage seat 18 is provided inside the cabinet 1, a conveying pipe 3 is connected inside the storage seat 18, the conveying pipe 3 is in contact with the extrusion wheel 17, a heating element 31 is installed on the side end of the water tank 7, the second output end of the double-axis motor 14 is connected to a lifting component, the lifting component includes a rotating disk 32 installed on the second output end of the double-axis motor 14, the rotating disk A slide groove 33 is provided on 32, and a slide rod 34 is slidably connected inside the slide groove 33. The slide rod 34 is a segmented hinge structure. The top of the slide rod 34 is connected to the bottom of the support rod 12. A limit block 35 is provided on the outside of the slide rod 34. The limit block 35 is located inside the cabinet 1. The dual-axis motor 14 is turned on, and the output end of the dual-axis motor 14 drives the shaft 15 to rotate, so that the shaft 15 drives the fan 16 to rotate, and the rotation of the shaft 15 drives the extrusion wheel 17 to rotate, which facilitates the extrusion wheel 17 inside the storage seat 18 to contact the conveying pipe 3 inside the storage seat 18. Since the two ends of the conveying pipe 3 are fixed inside the storage seat 18, it is convenient for the extrusion wheel 1 7 squeezes the delivery pipe 3, so that the rainwater stored in the water tank 7 flows back through the delivery pipe 3, thereby performing a cooling operation. The rainwater circulation is achieved through mechanical extrusion, and the air flow is accelerated by the fan 16 to form an efficient cooling circulation system. When the weather is hot, the stored rainwater and the fan 16 are used to dissipate heat. When the weather is cold, the heating element 31 at the side of the water tank 7 is turned on. The heating element 31 heats the rainwater inside the water tank 7, so that the temperature of the rainwater flowing back through the delivery pipe 3 is increased, and the heating operation is performed through the cooperation of the fan 16, thereby realizing the intelligent temperature control adjustment of the distribution cabinet, which can change according to the ambient temperature. Automatically switch the cooling or heating mode to ensure that the internal components of the cabinet 1 operate stably at an appropriate temperature, thereby improving the adaptability and reliability of the equipment. When the dual-axis motor 14 is in use, the rotating shaft 15 at the second output end of the dual-axis motor 14 drives the rotating disk 32 to rotate, so that the slide bar 34 on the rotating disk 32 is lifted and lowered inside the limit block 35, so that the slide bar 34 drives the support rod 12 to lift and lower, reducing the problem of increasing the overall cost due to setting up additional drives, and the set slide bar 34 moves inside the slide groove 33 on the rotating disk 32, so the lifting height of the support rod 12 can be adjusted by adjusting the speed of the dual-axis motor 14, thereby improving the overall practicality.
[0027] Embodiment 3: In this embodiment, the surface of the dust cover 30 is blocked by the cleaning member 28, which not only realizes the automatic cleaning of the dust cover 30, reduces the manual cleaning cost and maintenance workload, but also reduces the problem of large rainwater penetrating into the interior of the cabinet 1 through the heat dissipation groove 29 and causing damage to the components. Figure 7-10 As shown, it is disclosed that: a rotating rod 19 is connected to the receiving bucket 2, a torsion spring 20 for rebound is provided on the outside of the rotating rod 19, a conveying bag 21 is provided on the side end of the cabinet 1, and the conveying bag 21 is located at the bottom of the receiving bucket 2, a heat dissipation groove 29 is opened on the side end of the cabinet 1, and a dust cover 30 is connected to the outside of the heat dissipation groove 29 by a bolt structure, and a storage box 26 is installed on the dust cover 30, and the storage box 26 is located at the side end of the cabinet 1. An auxiliary component is provided inside the storage box 26, and the auxiliary component includes a sleeve 25 installed inside the storage box 26. The conveying bag 21 is located at the bottom of the receiving bucket 2. A transmission capsule 23 is connected to the transmission pipe 22. The transmission capsule 23 is located inside the sleeve 25. A moving rod 24 is connected to the sleeve 25. The moving rod 24 is located at the bottom of the transmission capsule 23. A spring 27 is provided on the outside of the moving rod 24 and the sleeve 25. A cleaning member 28 is installed at the bottom of the moving rod 24. When the rainfall is heavy, the receiving bucket 2 rotates through the rotating rod 19. At this time, the torsion spring 20 on the outside of the rotating rod 19 is deformed, and the receiving bucket 2 squeezes the transmission capsule 21. The transmission capsule 21 transmits the gas to the transmission capsule through the transmission pipe 22. 23. The heat generated by the components inside the cabinet 1 when in use is dissipated through the heat dissipation groove 29. At this time, the dust cover 30 outside the heat dissipation groove 29 protects it. When the gas is transported to the transmission bag 23 through the transmission pipe 22, the transmission bag 23 pushes the moving rod 24 out of the sleeve 25. At this time, the spring 27 outside the moving rod 24 and the sleeve 25 are deformed, so that the moving rod 24 inside the storage box 26 drives the cleaning member 28 to move to the surface of the dust cover 30, and at this time, it is convenient to block the surface of the dust cover 30 through the cleaning member 28. It not only realizes the automatic cleaning of the dust cover 30, prevents the dust cover 30 from affecting the heat dissipation effect due to dust accumulation, reduces the manual cleaning cost and maintenance workload, but also reduces the problem of heavy rainwater penetrating into the cabinet body 1 through the heat dissipation groove 29 to cause component damage, thereby improving the service life of the distribution cabinet. When the rainfall decreases, the torsion spring 20 on the outside of the rotating rod 19 and the spring 27 on the outside of the moving rod 24 rebound, so that the receiving bucket 2 and the cleaning member 28 return to their initial positions, thereby extending the service life of the equipment and improving the stability and reliability of the entire system.
[0028] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. An intelligent temperature-controlled power distribution cabinet, comprising a cabinet body (1), characterized in that: The cabinet (1) is provided with a receiving bucket (2) at the side end, and a conveying pipe (3) is installed at the bottom of the receiving bucket (2). The conveying pipe (3) is connected to the inside of the cabinet (1). A water storage tank (7) is installed inside the cabinet (1). The conveying pipe (3) is bent and arranged around the inner wall of the cabinet (1). A rotating wheel (8) is installed inside the conveying pipe (3). A bearing on the rotating wheel (8) is passed through a rotating shaft (9) coaxial with the rotating wheel. The sealed bearing of the rotating shaft (9) passes through the outside of the conveying pipe (3). A heat dissipation fan (10) is installed outside the rotating shaft (9). A heat dissipation hole (11) is opened on the inner wall of the cabinet (1). A support rod (12) is provided on the inner wall of the cabinet (1). The output end of the support rod (12) is connected to a lifting plate (13). The lifting plate (13) is connected to the bottom of the conveying pipe (3) passing through the inner wall of the cabinet (1). The energy consumption of the distribution cabinet is reduced by cooperating with the conveying pipe (3) and the heat dissipation fan (10).
2. The intelligent temperature-controlled power distribution cabinet according to claim 1, characterized in that: A processing box (4) is provided at the side end of the cabinet (1); the bottom of the receiving bucket (2) is connected to the inside of the processing box (4) via a conveying pipe (3); a filter plate (5) is installed inside the processing box (4); the filter plate (5) is arranged in an inclined manner; and a through groove (6) is provided at the side end of the processing box (4).
3. The intelligent temperature-controlled power distribution cabinet according to claim 1, characterized in that: A transmission component is installed inside the cabinet (1), and the transmission component includes a dual-axis motor (14) installed inside the cabinet (1), a first output end of the dual-axis motor (14) is connected to a rotating shaft (15), and a fan (16) is installed outside the rotating shaft (15).
4. The intelligent temperature-controlled power distribution cabinet according to claim 3, characterized in that: An extrusion wheel (17) is provided on the outside of the rotating shaft (15), and the extrusion wheel (17) is located inside a storage seat (18). The storage seat (18) is provided inside the cabinet (1). A delivery pipe (3) is connected to the inside of the storage seat (18), and the delivery pipe (3) is in contact with the extrusion wheel (17). A heating element (31) is installed at the side end of the water storage tank (7).
5. The intelligent temperature-controlled power distribution cabinet according to claim 1, characterized in that: A rotating rod (19) is connected through the receiving bucket (2), and a torsion spring (20) for rebound is provided on the outside of the rotating rod (19). A conveying bag (21) is provided at the side end of the cabinet (1), and the conveying bag (21) is located at the bottom of the receiving bucket (2).
6. The intelligent temperature-controlled power distribution cabinet according to claim 1, characterized in that: A heat dissipation slot (29) is provided at the side end of the cabinet (1), a dust cover (30) is connected to the outside of the heat dissipation slot (29) via a bolt structure, a storage box (26) is installed on the dust cover (30), and the storage box (26) is located at the side end of the cabinet (1).
7. The intelligent temperature-controlled power distribution cabinet according to claim 6, characterized in that: An auxiliary component is provided inside the storage box (26), and the auxiliary component includes a sleeve (25) installed inside the storage box (26).
8. The intelligent temperature-controlled power distribution cabinet according to claim 5, characterized in that: The transport capsule (21) is connected to a transport capsule (23) via a transport pipe (22), and the transport capsule (23) is located inside the sleeve (25).
9. The intelligent temperature-controlled power distribution cabinet according to claim 8, characterized in that: A moving rod (24) is connected to the inside of the sleeve (25), and the moving rod (24) is located at the bottom of the transmission bag (23). A spring (27) is provided on the outside of the moving rod (24) and the sleeve (25), and a cleaning member (28) is installed at the bottom of the moving rod (24).
10. The intelligent temperature-controlled power distribution cabinet according to claim 3, characterized in that: The second output end of the dual-axis motor (14) is connected to a lifting assembly, and the lifting assembly includes a rotating disk (32) installed at the second output end of the dual-axis motor (14), a sliding groove (33) is provided on the rotating disk (32), and a sliding rod (34) is slidably connected inside the sliding groove (33), and the sliding rod (34) is a segmented hinge structure. The top end of the sliding rod (34) is connected to the bottom of the support rod (12), and a limit block (35) is provided on the outside of the sliding rod (34), and the limit block (35) is located inside the cabinet (1).
Citation Information
Patent Citations
Temperature control heat dissipation power distribution cabinet
CN209001361U
Intelligent temperature control type power distribution cabinet
CN214506130U
Cooling and dedusting power distribution cabinet
CN107800054A
Intelligent environment-friendly power distribution device
CN117650449A
Outdoor power distribution cabinet capable of utilizing rainwater
CN212543004U