Automatic dehumidification type low-voltage power distribution cabinet
By designing an automatic dehumidifying low-voltage distribution cabinet, the problem of moisture accumulation in the distribution cabinet is solved by utilizing the synergistic work of adsorption components, auxiliary components, and dehumidification components. This achieves effective adsorption and discharge of water vapor, improving the stability and safety of the equipment.
Patent Information
- Application Number
- CN202510131421.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-06
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2045-02-06
AI Technical Summary
Existing low-voltage distribution cabinets are susceptible to moisture from the external environment, which can lead to rusting of internal components and safety hazards. Furthermore, current technologies are unable to effectively address the moisture problem.
An automatic dehumidification low-voltage distribution cabinet was designed. Through the coordinated work of adsorption components, auxiliary components and dehumidification components, it utilizes wind power and mechanical structure to achieve the adsorption, circulation and discharge of water vapor, preventing water vapor accumulation and timely discharge of water droplets.
It effectively prevents moisture from accumulating inside the distribution cabinet, avoids component rusting, improves the stability and safety of electrical equipment, and ensures the reliability of power supply.
Smart Images

Figure CN119994653B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of low-voltage distribution cabinet equipment technology, specifically an automatic dehumidification low-voltage distribution cabinet. Background Technology
[0002] A low-voltage switchgear is an electrical device used in low-voltage power distribution systems. Its main function is to convert, distribute, and control electrical energy. Low-voltage switchgear is typically installed in buildings, factories, substations, and other locations to provide a stable and reliable power supply for electrical equipment.
[0003] Existing technologies are susceptible to external environmental factors, which can cause moisture to accumulate inside the distribution cabinet, making it damp, prone to rusting at the bottom corners, and potentially damaging components, related equipment, and circuits, even leading to safety hazards. Summary of the Invention
[0004] The purpose of this invention is to provide an automatic dehumidification low-voltage distribution cabinet to solve the problems mentioned in the background art.
[0005] To solve the above-mentioned technical problems, the present invention is achieved through the following technical solution:
[0006] This invention relates to an automatic dehumidifying low-voltage distribution cabinet, comprising a housing, a door rotatably connected to one end face of the housing, a blower plate fixedly connected to the surface of the housing near the door, a water outlet formed on the surface of the housing near the blower plate, and a base plate fixedly connected to the end face of the blower plate away from the housing. The cabinet also includes:
[0007] An adsorption component, comprising an output shaft, an output belt being drivenly connected to the surface of the output shaft, and an active rotating shaft being rotatably connected to the inner wall of the end of the output belt away from the output shaft.
[0008] An auxiliary component, comprising a drive shaft, wherein a drive gear is fixedly connected to the surface of the drive shaft, and an internal gear plate is meshed with the surface of the drive gear;
[0009] A dehumidification component, comprising a fixed base, a fixed shaft rotatably connected to the inner wall of the fixed base, and a tension plate fixedly connected to the surface of the fixed shaft.
[0010] Furthermore, an engine is fixedly connected to the end face of the base plate away from the blower plate, a motor is fixedly connected to the end face of the base plate away from the door, a control board is fixedly connected to the surface of the housing near the motor, a water-absorbing plate is provided on the inner wall of the housing, the surface of the base plate is fixedly connected to the inner wall of the housing, and a side plate is provided on the inner wall of the housing near the water-absorbing plate. There are two side plates, which are symmetrically distributed on the inner wall of the housing.
[0011] Furthermore, the adsorption component includes an active toothed plate, a driven toothed plate is meshed with the surface of the active toothed plate, a driven rotating shaft is fixedly connected to the inner wall of the driven toothed plate, a toothed fan is fixedly connected to the surface of the driven rotating shaft near the driven toothed plate, and a fixing groove plate is fixedly connected to the inner wall of the housing near the water absorption plate.
[0012] The number of driven toothed plates is set to four, which are symmetrically distributed around the center of the inner wall of the housing. The number of toothed sectors is set to six, which are symmetrically distributed around the surface of the driven rotating shaft. The surface of the driven rotating shaft away from the toothed sector is rotatably connected to the inner wall of the housing.
[0013] Furthermore, a push-pull rod is provided on the inner wall of the housing near the output shaft. A slide rod is fixedly connected to the end face of the push-pull rod away from the control board. A horizontal shaft is rotatably connected to the end face of the slide rod. A slide plate is fixedly connected to the inner wall of the housing near the slide rod. The surface of the slide rod is slidably connected to the surface of the horizontal shaft. The number of horizontal shafts is set to seventeen, and the seventeen horizontal shafts are equidistantly distributed along the surface of the slide rod.
[0014] Furthermore, a triangular tooth is fixedly connected to the surface of the horizontal shaft, a connecting tooth is fixedly connected to the end face of the triangular tooth away from the horizontal shaft, a valve shaft is fixedly connected to the end face of the connecting tooth away from the triangular tooth, a valve leaf is connected to the valve shaft, a valve shaft groove is opened on the inner wall of the housing near the valve shaft, and two valve leaves are provided, the two valve leaves are symmetrically distributed with respect to the surface of the valve shaft, and the surface of the valve shaft is rotatably connected to the inner wall of the valve shaft groove.
[0015] Furthermore, the auxiliary component includes internal teeth, the surface of which is meshed with a fan shaft toothed plate. A fan shaft is fixedly connected to the surface of the fan shaft toothed plate away from the internal teeth. A fan plate is fixedly connected to the surface of the fan shaft. A fan plate groove is rotatably connected to the surface of the fan shaft. A wind vane is rotatably connected to the inner wall of the housing away from the output shaft. The surface of the internal toothed plate is slidably connected to the inner wall of the base plate. Five fan shaft toothed plates are provided, and the five fan shaft toothed plates are equidistantly distributed along the surface of the base plate. The end face of the fan plate groove away from the fan plate is fixedly connected to the surface of the base plate. The end face of the internal teeth away from the fan shaft toothed plate is fixedly connected to the inner wall of the internal toothed plate.
[0016] Furthermore, the dehumidification component includes a fixed rotating rod, a fixed rod is rotatably connected to the surface of the fixed rotating rod, a movable tension rod is fixedly connected to the surface of the fixed rotating rod away from the fixed rod, a sliding cross plate is rotatably connected to the end face of the movable tension rod away from the fixed rod, and a cross plate groove is provided on the inner wall of the housing near the sliding cross plate.
[0017] The end face of the tension plate away from the fixed rotating shaft is fixedly connected to the surface of the fixed rotating rod away from the movable tension rod. The end face of the fixed rod away from the fixed rotating rod is fixedly connected to the inner wall of the housing. The bottom of the fixed base is fixedly connected to the top of the inner toothed plate.
[0018] Furthermore, an inclined tension plate is fixedly connected to the surface of the sliding cross plate near the cross plate groove, a connecting cross shaft is fixedly connected to the end face of the inclined tension plate away from the sliding cross plate, an air pressure plate is fixedly connected to the surface of the inclined tension plate away from the connecting cross shaft, and an inclined plate is fixedly connected to the surface of the housing near the connecting cross shaft.
[0019] The number of inclined stretching plates is set to two, and the two inclined stretching plates are symmetrically distributed with respect to the inner wall of the connecting horizontal axis. The surface of the water absorption plate is in contact with the inner wall of the inclined plate. The number of inclined plates is set to two, and the two inclined plates are symmetrically distributed with respect to the inner wall of the shell.
[0020] Furthermore, a pressure spring is fixedly connected to the surface of the connecting horizontal axis away from the sliding horizontal plate, a spring plate is fixedly connected to the end face of the pressure spring, a water-squeezing plate is fixedly connected to the end face of the spring plate away from the pressure spring, a spring sleeve rod is provided on the surface of the pressure spring, a push plate is fixedly connected to the inner wall of the housing away from the air pressure plate, an air pressure fan plate is fixedly connected to the surface of the push plate, and a water collection port is fixedly connected to the inner wall of the housing near the water absorption plate.
[0021] The surface of the water-squeezing plate is in contact with the surface of the water-absorbing plate, the surface of the water collection port is fixedly connected to the inner wall of the water outlet, and the end face of the water-absorbing plate away from the connecting horizontal axis is in contact with the surface of the water collection port.
[0022] The present invention has the following beneficial effects:
[0023] When this invention is in use, the motor inside the adsorption component starts, driving the output shaft to rotate. The output shaft then drives the output belt for transmission. When the output belt is driving, it drives the active shaft to rotate, which in turn drives the active toothed plate to rotate. When the active toothed plate rotates, through surface meshing, it drives the driven toothed plate to rotate. When the driven toothed plate rotates, it drives the driven shaft to rotate on the inner wall of the housing. When the driven shaft rotates, it drives the toothed fan to rotate. When the toothed fan rotates, it generates wind, which blows the water vapor generated inside the housing to both sides, preventing water vapor from accumulating at the top of the housing and forming water droplets. At the same time, the water vapor on both sides accumulates last. After cooling, water droplets form and enter the side plate. Finally, they slide down along the fixed groove plate. At the same time, the control panel is activated, driving the push-pull rod. When the push-pull rod moves, it drives the slide rod to slide along the surface of the slide rod plate. When the slide rod moves, it drives the horizontal shaft to move. When the horizontal shaft moves, it drives the triangular teeth to move. The triangular teeth then drive the connecting teeth to move. When the connecting teeth rotate, they drive the valve shaft to rotate along the inner wall of the valve shaft groove. At the same time, when the valve shaft rotates, it drives the valve leaf to rotate. When the valve leaf rotates, the air force generated by the rotation blows the water vapor in different directions, preventing excessive water vapor from accumulating on both sides and increasing the air flow.
[0024] When this invention is in use, the engine inside the auxiliary component starts, and the engine drives the transmission shaft to run. The transmission shaft then drives the transmission gear to rotate. When the transmission gear rotates, through surface meshing, it drives the inner gear plate to slide along the inner wall of the base plate. At the same time, the transmission gear drives the inner gear plate to run periodically. When the inner gear plate runs, it drives the inner gear to run. When the inner gear runs, it drives the fan shaft gear plate to rotate. When the fan shaft gear plate rotates, it drives the fan shaft to run along the inner wall of the fan plate groove. When the fan shaft runs, it drives the fan plate to run. Through the periodic operation of the inner gear plate, the fan plate will eventually rotate periodically. The fan plate generates an upward airflow through periodic rotation, which circulates air inside the housing. At the same time, when the fan plate generates airflow during periodic operation, it blows the fan plate to open and close periodically.
[0025] When this invention is in use, within the dehumidification component, as the inner toothed plate rotates periodically, it drives the fixed base to rotate. The fixed base then drives the stretching plate to rotate periodically along the fixed rotating shaft, simultaneously performing a stretching operation. As the stretching plate rotates, it drives the fixed rotating rod to rotate periodically along the inner wall of the fixed rod. Simultaneously, as the fixed rotating rod rotates, it drives the movable stretching rod on the other end surface to rotate. When the movable stretching rod rotates, it drives the sliding cross plate to slide along the inner wall of the cross plate groove, simultaneously performing a stretching operation. As the sliding cross plate rotates, it drives the inclined stretching plate to rotate. When the inclined stretching plate rotates, it drives the compression plate to slide along the inner wall of the housing, compressing the gas blown into the housing by the fan plate, ultimately compressing it into compressed air. Inside the fan plate, the gas inside enters the housing at a higher pressure, allowing for better air circulation. Simultaneously, when the inclined stretching plate operates, it drives the connecting horizontal shaft to move along the surface of the inclined plate. Since the inside is inclined, the inclined stretching plate moves up and down. When the connecting horizontal shaft moves, it drives the pressure spring to move elastically. When the pressure spring moves, it drives the spring plate to move. At the same time, when the spring plate moves, the elastic force generated drives the water squeezing plate to move along the surface of the water suction plate. Simultaneously, the downward pressure of the inclined stretching plate and the elastic force of the pressure spring squeeze the water droplets formed by water vapor accumulation inside the water suction plate, ultimately squeezing them into the water collection port. The resulting water falls into the water outlet and is finally discharged.
[0026] Of course, any product implementing this invention does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description
[0027] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0028] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0029] Figure 2 This is a rear cross-sectional view of the overall structure of the present invention;
[0030] Figure 3 This is a cross-sectional view of the adsorption component structure of the present invention;
[0031] Figure 4 This is a schematic diagram of the slide bar structure of the present invention;
[0032] Figure 5 For the present invention Figure 5 Enlarged view of part A in the image;
[0033] Figure 6 This is a cross-sectional view of the auxiliary component structure of the present invention;
[0034] Figure 7 For the present invention Figure 7 Enlarged view of part B in the image;
[0035] Figure 8 This is a schematic diagram of the dehumidification component of the present invention;
[0036] Figure 9 For the present invention Figure 8 Enlarged view of section C in the image;
[0037] Figure 10 This is a schematic diagram of the pressure spring structure of the present invention.
[0038] The attached diagram lists the components represented by each number as follows:
[0039] In the diagram: 1. Adsorption component; 2. Auxiliary component; 3. Dehumidification component; 4. Engine; 5. Motor; 6. Control board; 7. Water absorption plate; 8. Housing; 9. Door; 10. Air blowing plate; 11. Base plate; 12. Water outlet; 13. Side plate; 21. Output shaft; 22. Output belt; 23. Drive shaft; 24. Drive gear plate; 25. Driven gear plate; 26. Driven shaft; 27. Gear sector; 28. Fixed groove plate; 29. Push-pull rod; 30. Slide rod; 31. Horizontal shaft; 32. Slide rod plate; 33. Triangular tooth; 34. Connecting tooth; 35. Valve shaft; 36. Valve vane; 37. Valve shaft groove; 41. Drive shaft; 42. Drive gear; 43. Internal gear plate; 44. Fan plate; 45. Internal gear; 46. Fan shaft gear plate; 47. Fan shaft; 48. Fan plate; 49. Fan plate groove; 51. Fixed base; 52. Fixed rotating shaft; 53. Tension plate; 54. Fixed rotating rod; 55. Fixed rod; 56. Movable tension rod; 57. Sliding horizontal plate; 58. Horizontal plate groove; 59. Push plate; 60. Compressed fan plate; 61. Water inlet; 62. Inclined tension plate; 63. Connecting horizontal shaft; 64. Air pressure plate; 65. Inclined plate; 66. Pressure spring; 67. Spring pressure plate; 68. Squeeze plate; 69. Spring sleeve rod. Detailed Implementation
[0040] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0041] Please see Figures 1-10As shown, the present invention is an automatic dehumidifying low-voltage distribution cabinet, including a housing 8, a door 9 rotatably connected to the end face of the housing 8, a blower plate 10 fixedly connected to the surface of the housing 8 near the door 9, a water outlet 12 opened on the surface of the housing 8 near the blower plate 10, and a base plate 11 fixedly connected to the end face of the blower plate 10 away from the housing 8, and further including:
[0042] The adsorption component 1 includes an output shaft 21. When the motor 5 is started, it drives the output shaft 21 to rotate, which in turn drives the output belt 22 to perform transmission. The surface of the output shaft 21 is connected to the output belt 22. When the output belt 22 is in transmission, it drives the drive shaft 23 to rotate. The inner wall of the end of the output belt 22 away from the output shaft 21 is rotatably connected to the drive shaft 23, which drives the drive toothed plate 24 to rotate.
[0043] Auxiliary component 2 includes a drive shaft 41. When the engine 4 is started, the engine 4 will drive the drive shaft 41 to run, and the drive shaft 41 will drive the drive gear 42 to rotate. The drive gear 42 is fixedly connected to the surface of the drive shaft 41. When the drive gear 42 rotates, through surface meshing, it will drive the inner gear plate 43 to slide along the inner wall of the base plate 11. At the same time, the drive gear 42 drives the inner gear plate 43 to run periodically. The inner gear plate 43 is meshed with the surface of the drive gear 42. When the inner gear plate 43 runs, it will drive the inner gear 45 to run.
[0044] The dehumidification component 3 includes a fixed base 51. When the inner toothed plate 43 runs periodically, it drives the fixed base 51 to run. The fixed base 51 then drives the stretching plate 53 to run periodically along the fixed rotating shaft 52, while stretching. The fixed rotating shaft 52 is rotatably connected to the inner wall of the fixed base 51. The stretching plate 53 is fixedly connected to the surface of the fixed rotating shaft 52. When the stretching plate 53 runs, it drives the fixed rotating rod 54 to run periodically along the inner wall of the fixed rod 55.
[0045] An engine 4 is fixedly connected to the end face of the base plate 11 away from the blower plate 10, and a motor 5 is fixedly connected to the end face of the base plate 11 away from the door 9. A control plate 6 is fixedly connected to the surface of the housing 8 near the motor 5. A water absorption plate 7 is provided on the inner wall of the housing 8. The surface of the base plate 11 is fixedly connected to the inner wall of the housing 8. A side plate 13 is provided on the inner wall of the housing 8 near the water absorption plate 7. There are two side plates 13, and the two side plates 13 are symmetrically distributed on the inner wall of the housing 8.
[0046] The adsorption component 1 includes an active toothed plate 24. When the active toothed plate 24 rotates, it drives the driven toothed plate 25 to rotate through surface meshing. The driven toothed plate 25 is meshed with the surface of the active toothed plate 24. When the driven toothed plate 25 rotates, it drives the driven shaft 26 to rotate on the inner wall of the housing 8. The driven shaft 26 is fixedly connected to the inner wall of the driven toothed plate 25. When the driven shaft 26 runs, it drives the toothed fan 27 to rotate. The toothed fan 27 is fixedly connected to the surface of the driven shaft 26 near the driven toothed plate 25. When the toothed fan 27 rotates, it generates wind, which blows the water vapor generated in the housing 8 to both sides, preventing water vapor from accumulating at the top of the housing 8 and forming water droplets. At the same time, after the water vapor on both sides accumulates and cools down, it forms water droplets that enter the side plate 13 and finally slide down along the fixed groove plate 28. The fixed groove plate 28 is fixedly connected to the inner wall of the housing 8 near the water absorption plate 7.
[0047] There are four driven toothed plates 25, which are symmetrically distributed around the inner wall of the housing 8. There are six toothed sectors 27, which are symmetrically distributed around the surface of the driven rotating shaft 26. The surface of the driven rotating shaft 26 away from the toothed sector 27 is rotatably connected to the inner wall of the housing 8.
[0048] A push-pull rod 29 is provided on the inner wall of the housing 8 near the output shaft 21. When the control board 6 is activated, it drives the push-pull rod 29 to run. When the push-pull rod 29 runs, it drives the slide rod 30 to slide along the surface of the slide rod plate 32. The end face of the push-pull rod 29 away from the control board 6 is fixedly connected to the slide rod 30. When the slide rod 30 runs, it drives the horizontal shaft 31 to run. The end face of the slide rod 30 is rotatably connected to the horizontal shaft 31. The inner wall of the housing 8 near the slide rod 30 is fixedly connected to the slide rod plate 32. The surface of the slide rod 30 is slidably connected to the surface of the horizontal shaft 31. There are seventeen horizontal shafts 31, which are equidistantly distributed along the surface of the slide rod 30.
[0049] A triangular tooth 33 is fixedly connected to the surface of the horizontal shaft 31. When the horizontal shaft 31 runs, it drives the triangular tooth 33 to run. A connecting tooth 34 is fixedly connected to the end face of the triangular tooth 33 away from the horizontal shaft 31. The triangular tooth 33 then drives the connecting tooth 34 to run. A valve shaft 35 is fixedly connected to the end face of the connecting tooth 34 away from the triangular tooth 33. When the connecting tooth 34 rotates, it drives the valve shaft 35 to rotate along the inner wall of the valve shaft groove 37. At the same time, when the valve shaft 35 rotates, it drives the valve leaf 36 to rotate. When the valve leaf 36 rotates, the wind force generated by the rotation blows the water vapor in different directions, preventing excessive accumulation of water vapor on both sides and increasing the air flow. The valve shaft 35 is connected to the valve leaf 36. A valve shaft groove 37 is opened on the inner wall of the housing 8 near the valve shaft 35. There are two valve leaves 36. The two valve leaves 36 are symmetrically distributed on the surface of the valve shaft 35. The surface of the valve shaft 35 is rotatably connected to the inner wall of the valve shaft groove 37.
[0050] Auxiliary component 2 includes an internal gear 45. When the internal gear 45 operates, it drives the fan shaft gear plate 46 to rotate. The surface of the internal gear 45 is meshed with the fan shaft gear plate 46. When the fan shaft gear plate 46 rotates, it drives the fan shaft 47 to run on the inner wall of the fan plate groove 49. The surface of the fan shaft gear plate 46 away from the internal gear 45 is fixedly connected to the fan shaft 47. When the fan shaft 47 operates, it drives the fan plate 48 to run. The surface of the fan shaft 47 is fixedly connected to the fan plate 48. Through the periodic operation of the internal gear plate 43, the fan plate 48 will eventually be driven to rotate periodically. The fan plate 48 generates an upward airflow through periodic rotation. The airflow generated by the fan plate 48 affects the housing 8. Air circulates within the fan. Simultaneously, when the fan plate 48 operates periodically and generates wind direction, it will cause the fan plate 44 to open and close periodically. The surface of the fan shaft 47 is rotatably connected to the fan plate groove 49. The inner wall of the housing 8 away from the output shaft 21 is rotatably connected to the fan plate 44. The surface of the inner tooth plate 43 is slidably connected to the inner wall of the base plate 11. Five fan shaft tooth plates 46 are provided, and the five fan shaft tooth plates 46 are equidistantly distributed along the surface of the base plate 11. The end face of the fan plate groove 49 away from the fan plate 48 is fixedly connected to the surface of the base plate 11. The end face of the inner tooth 45 away from the fan shaft tooth plate 46 is fixedly connected to the inner wall of the inner tooth plate 43.
[0051] The dehumidification component 3 includes a fixed rotating rod 54. When the fixed rotating rod 54 is running, it will drive the movable tension rod 56 on the other end surface to run. The surface of the fixed rotating rod 54 is rotatably connected to a fixed rod 55. The surface of the fixed rotating rod 54 away from the fixed rod 55 is fixedly connected to the movable tension rod 56. When the movable tension rod 56 is running, it will drive the sliding cross plate 57 to slide along the inner wall of the cross plate groove 58. At the same time, the movable tension rod 56 will stretch. The end face of the movable tension rod 56 away from the fixed rod 55 is rotatably connected to the sliding cross plate 57. When the sliding cross plate 57 is running, it will drive the inclined stretching plate 62 to run. The inner wall of the housing 8 near the sliding cross plate 57 is provided with a cross plate groove 58.
[0052] The end face of the tension plate 53 away from the fixed rotating shaft 52 is fixedly connected to the surface of the fixed rotating rod 54 away from the movable tension rod 56. The end face of the fixed rod 55 away from the fixed rotating rod 54 is fixedly connected to the inner wall of the housing 8. The bottom of the fixed base 51 is fixedly connected to the top of the inner tooth plate 43.
[0053] A slanted stretching plate 62 is fixedly connected to the surface of the sliding horizontal plate 57 near the horizontal plate groove 58. When the slanted stretching plate 62 runs, it drives the air compressor plate 64 to slide along the inner wall of the housing 8, compressing the gas blown into the housing 8 by the fan plate 48, and finally compressing it into the air compressor fan plate 60, so that the gas inside enters the housing 8 with greater air pressure for better air circulation. A connecting horizontal shaft 63 is fixedly connected to the end face of the slanted stretching plate 62 away from the sliding horizontal plate 57. An air compressor plate 64 is fixedly connected to the surface of the slanted stretching plate 62 away from the connecting horizontal shaft 63. A slanted plate 65 is fixedly connected to the surface of the housing 8 near the connecting horizontal shaft 63. At the same time, when the slanted stretching plate 62 runs, it drives the connecting horizontal shaft 63 to run along the surface of the slanted plate 65. Since the inside is a slanted surface, the slanted stretching plate 62 will move up and down when it runs.
[0054] There are two inclined tension plates 62, which are symmetrically distributed on the inner wall of the connecting horizontal axis 63. The surface of the water absorption plate 7 is in contact with the inner wall of the inclined plate 65. There are two inclined plates 65, which are symmetrically distributed on the inner wall of the shell 8.
[0055] A pressure spring 66 is fixedly connected to the surface of the connecting horizontal shaft 63 away from the sliding horizontal plate 57. When the connecting horizontal shaft 63 moves, it drives the pressure spring 66 to move elastically. When the pressure spring 66 moves, it drives the spring plate 67 to move. The spring plate 67 is fixedly connected to the end face of the pressure spring 66. A water-squeezing plate 68 is fixedly connected to the end face of the spring plate 67 away from the pressure spring 66. At the same time, when the spring plate 67 moves, the elastic force generated will drive the water-squeezing plate 68 to move along the surface of the water-absorbing plate 7. At the same time, the downward pressure of the inclined stretching plate 62 and the elastic force of the pressure spring 66 will squeeze the water droplets formed by the accumulation of water vapor in the water absorption plate 7, and finally squeeze them into the water collection port 61. The water produced will fall into the water outlet 12 and be discharged. The surface of the pressure spring 66 is provided with a spring sleeve rod 69. The inner wall of the housing 8 away from the air pressure plate 64 is fixedly connected to a push plate 59. The surface of the push plate 59 is fixedly connected to an air pressure fan plate 60. The inner wall of the housing 8 near the water absorption plate 7 is fixedly connected to a water collection port 61.
[0056] The surface of the squeezing plate 68 is in contact with the surface of the suction plate 7, the surface of the water collection port 61 is fixedly connected to the inner wall of the water outlet 12, and the end face of the suction plate 7 away from the connecting horizontal axis 63 is in contact with the surface of the water collection port 61.
[0057] In use, the motor 5 inside the adsorption component 1 starts, driving the output shaft 21 to rotate. The output shaft 21 then drives the output belt 22 for transmission. When the output belt 22 is in transmission, it drives the drive shaft 23 to rotate. The drive shaft 23 then drives the drive toothed plate 24 to rotate. When the drive toothed plate 24 rotates, through surface meshing, it drives the driven toothed plate 25 to rotate. When the driven toothed plate 25 rotates, it drives the driven shaft 26 to rotate on the inner wall of the housing 8. When the driven shaft 26 rotates, it drives the toothed fan 27 to rotate. When the toothed fan 27 rotates, it generates wind, which blows the water vapor generated inside the housing 8 to both sides, preventing water vapor from accumulating at the top of the housing 8 and forming water droplets. At the same time, the water vapor on both sides accumulates and cools down. Water droplets will form and enter the side plate 13. Finally, they will slide down along the fixed groove plate 28. At the same time, the control plate 6 is activated, driving the push-pull rod 29 to run. When the push-pull rod 29 runs, it will drive the slide rod 30 to slide along the surface of the slide rod plate 32. When the slide rod 30 runs, it will drive the horizontal shaft 31 to run. When the horizontal shaft 31 runs, it will drive the triangular tooth 33 to run. The triangular tooth 33 will drive the connecting tooth 34 to run. When the connecting tooth 34 rotates, it will drive the valve shaft 35 to rotate along the inner wall of the valve shaft groove 37. At the same time, when the valve shaft 35 rotates, it will drive the valve leaf 36 to rotate. When the valve leaf 36 rotates, the wind force generated by the rotation will blow the water vapor in different directions, preventing excessive water vapor from accumulating on both sides and increasing the air flow. At this time, the engine 4 in the auxiliary component 2 starts, and the engine 4 drives the transmission shaft 41 to run. The transmission shaft 41 drives the transmission gear 42 to rotate. When the transmission gear 42 rotates, through surface meshing, it drives the inner gear plate 43 to slide along the inner wall of the base plate 11. At the same time, the transmission gear 42 drives the inner gear plate 43 to run periodically. When the inner gear plate 43 runs, it drives the inner gear 45 to run. When the inner gear 45 runs, it drives the fan shaft gear plate 46 to rotate. When the fan shaft gear plate 46 rotates, it drives the fan shaft 47 to run on the inner wall of the fan plate groove 49. When the fan shaft 47 runs, it drives the fan plate 48 to run. Through the periodic operation of the inner gear plate 43, the fan plate 48 will eventually be driven to rotate periodically. The fan plate 48 generates an upward wind direction through periodic rotation, which circulates the air inside the housing 8. At the same time, when the fan plate 48 generates a wind direction through periodic operation, it blows the fan plate 44 to open and close periodically.At this time, within the dehumidification component 3, when the inner toothed plate 43 operates periodically, it drives the fixed base 51 to operate. The fixed base 51 then drives the stretching plate 53 to operate periodically along the fixed rotating shaft 52, simultaneously performing a stretching operation. When the stretching plate 53 operates, it drives the fixed rotating rod 54 to operate periodically along the inner wall of the fixed rod 55. Simultaneously, when the fixed rotating rod 54 operates, it drives the movable stretching rod 56 on the other end surface to operate. When the movable stretching rod 56 operates, it drives the sliding cross plate 57 to slide along the inner wall of the cross plate groove 58, while the movable stretching rod 56 performs a stretching operation. When the sliding cross plate 57 operates, it drives the inclined stretching plate 62 to operate. When the inclined stretching plate 62 operates, it drives the compression plate 64 to slide along the inner wall of the housing 8, compressing the gas blown into the housing 8 by the fan plate 48, ultimately compressing it into compressed air. Inside the fan plate 60, the gas inside enters the housing 8 with greater air pressure, resulting in better air circulation. At the same time, when the inclined stretching plate 62 runs, it drives the connecting horizontal shaft 63 to run along the surface of the inclined plate 65. Since the inclined plate 65 is inclined, it will move up and down when it runs. When the connecting horizontal shaft 63 runs, it drives the pressure spring 66 to run elastically. When the pressure spring 66 runs, it drives the spring plate 67 to run. At the same time, when the spring plate 67 runs, the elastic force generated will drive the water squeezing plate 68 to run along the surface of the water suction plate 7. Simultaneously, the downward pressure of the inclined stretching plate 62 and the elastic force of the pressure spring 66 will squeeze the water droplets formed by water vapor accumulation in the water suction plate 7, ultimately squeezing them into the water collection port 61. The water produced will fall into the water outlet 12 and be discharged.
[0058] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.
Claims
1. An automatic dehumidifying low-voltage distribution cabinet, comprising a housing (8), a door (9) rotatably connected to the end face of the housing (8), a blower plate (10) fixedly connected to the surface of the housing (8) near the door (9), a water outlet (12) provided on the surface of the housing (8) near the blower plate (10), and a base plate (11) fixedly connected to the end face of the blower plate (10) away from the housing (8), characterized in that, Also include: Auxiliary components (2), the auxiliary components (2) include transmission shaft (41) and internal gear (45), the surface of the transmission shaft (41) is fixedly connected with transmission gear (42), the surface of the transmission gear (42) is engagedly connected with the inner tooth plate (43), the surface of the inner tooth (45) is engagedly connected with the fan shaft tooth plate (46), the surface of the fan shaft tooth plate (46) is fixedly connected with the fan shaft (47) away from the inner tooth (45) one end, the surface of the fan shaft (47) is fixedly connected with the fan plate (48), the surface of the fan shaft (47) is rotatably connected with the fan plate slot (49), the surface of the inner tooth plate (43) is slidably connected with the inner wall of the bottom plate (11), the end face of the fan plate slot (49) away from the fan plate (48) one end is fixedly connected with the surface of the bottom plate (11), the end face of the inner tooth (45) away from the fan shaft tooth plate (46) one end is fixedly connected with the inner wall of the inner tooth plate (43); Dehumidification components (3), the dehumidification components (3) include fixed base (51) and fixed rotating rod (54), the inner wall of the fixed base (51) is rotatably connected with the fixed rotating shaft (52), the surface of the fixed rotating shaft (52) is fixedly connected with the stretching plate (53), the surface of the fixed rotating rod (54) is rotatably connected with the fixed rod (55), the surface of the fixed rotating rod (54) away from the fixed rod (55) one end is fixedly connected with the movable stretching rod (56), the end face of the movable stretching rod (56) away from the fixed rod (55) one end is rotatably connected with the sliding transverse plate (57), the inner wall of the shell (8) near the sliding transverse plate (57) one side is provided with transverse plate slot (58); The end face of the stretching plate (53) away from the fixed rotating shaft (52) one end is fixedly connected with the surface of the fixed rotating rod (54) away from the movable stretching rod (56) one end, the end face of the fixed rod (55) away from the fixed rotating rod (54) one end is fixedly connected with the inner wall of the shell (8), and the bottom of the fixed base (51) is fixedly connected with the top of the inner tooth plate (43).
2. The automatic dehumidification type low voltage power distribution cabinet according to claim 1, characterized in that: The end face of the bottom plate (11) away from the blowing plate (10) one end is fixedly connected with the engine (4), the end face of the bottom plate (11) away from the box door (9) one end is fixedly connected with the motor (5), the surface of the shell (8) near the motor (5) one side is fixedly connected with the control panel (6), the inner wall of the shell (8) is provided with the water absorption plate (7), the surface of the bottom plate (11) is fixedly connected with the inner wall of the shell (8), the inner wall of the shell (8) near the water absorption plate (7) one side is provided with the side plate (13), the number of the side plate (13) is two, the two side plates (13) are symmetrically distributed along the inner wall of the shell (8), and the number of the fan shaft tooth plate (46) is five.
3. The automatic dehumidification type low voltage power distribution cabinet according to claim 2, characterized in that: Also include: The adsorption component (1) comprises an output shaft (21) and a driving gear plate (24), the surface of the output shaft (21) is drivingly connected with an output belt (22), the inner wall of the end of the output belt (22) away from the output shaft (21) is rotatably connected with a driving shaft (23), the driving shaft (23) is connected with the driving gear plate (24), the surface of the driving gear plate (24) is meshingly connected with a driven gear plate (25), the inner wall of the driven gear plate (25) is fixedly connected with a driven shaft (26), the surface of the driven shaft (26) close to the driven gear plate (25) is fixedly connected with a gear fan (27), and the inner wall of the side of the shell (8) close to the water absorption plate (7) is fixedly connected with a fixed groove plate (28). The number of the driven gear plates (25) is four, the four driven gear plates (25) are distributed in the center of the inner wall of the shell (8) in a symmetrical manner, the number of the gear fans (27) is six, the six gear fans (27) are distributed in the center of the surface of the driven shaft (26) in a symmetrical manner, and the surface of the side of the driven shaft (26) away from the gear fan (27) is rotatably connected with the inner wall of the shell (8).
4. The automatic dehumidification type low voltage power distribution cabinet according to claim 3, characterized in that: The inner wall of the side of the shell (8) close to the output shaft (21) is provided with a push-pull rod (29), the end surface of the end of the push-pull rod (29) away from the control plate (6) is fixedly connected with a sliding rod (30), the end surface of the sliding rod (30) is rotatably connected with a horizontal shaft (31), the inner wall of the side of the shell (8) close to the sliding rod (30) is fixedly connected with a sliding rod plate (32), the surface of the sliding rod (30) is slidably connected with the surface of the horizontal shaft (31), the number of the horizontal shafts (31) is seventeen, the seventeen horizontal shafts (31) are equidistantly distributed along the surface of the sliding rod (30), and the inner wall of the end of the shell (8) away from the output shaft (21) is rotatably connected with a wind plate (44).
5. An automatic dehumidifying low voltage power distribution cabinet according to claim 4, characterized in that: The surface of the horizontal shaft (31) is fixedly connected with a triangular tooth (33), the end surface of the end of the triangular tooth (33) away from the horizontal shaft (31) is fixedly connected with a connecting tooth (34), the end surface of the end of the connecting tooth (34) away from the triangular tooth (33) is fixedly connected with a valve shaft (35), the valve shaft (35) is connected with a valve leaf (36), the inner wall of the side of the shell (8) close to the valve shaft (35) is provided with a valve shaft groove (37), the number of the valve leaves (36) is two, the two valve leaves (36) are distributed in a symmetrical manner on the surface of the valve shaft (35), and the surface of the valve shaft (35) is rotatably connected with the inner wall of the valve shaft groove (37).
6. An automatic dehumidifying low voltage power distribution cabinet according to claim 5, characterized in that: The surface of the side of the sliding horizontal plate (57) close to the horizontal plate groove (58) is fixedly connected with an inclined stretching plate (62), the end surface of the end of the inclined stretching plate (62) away from the sliding horizontal plate (57) is fixedly connected with a connecting horizontal shaft (63), the surface of the end of the inclined stretching plate (62) away from the connecting horizontal shaft (63) is fixedly connected with a gas pressing plate (64), and the surface of the side of the shell (8) close to the connecting horizontal shaft (63) is fixedly connected with an inclined plate (65). The number of the oblique tensile plates (62) is two, the two oblique tensile plates (62) are symmetrically distributed with the inner wall of the connecting horizontal shaft (63), the surface of the water absorbing plate (7) is in contact with the inner wall of the oblique plate (65), the number of the oblique plate (65) is two, the two oblique plates (65) are symmetrically distributed with the inner wall of the shell (8).
7. An automatic dehumidifying low voltage power distribution cabinet according to claim 6, characterized in that: The surface of the one end of the connecting horizontal shaft (63) away from the sliding horizontal plate (57) is fixedly connected with the pressure spring (66), the end surface of the pressure spring (66) is fixedly connected with the elastic pressing plate (67), the end surface of the one end of the elastic pressing plate (67) away from the pressure spring (66) is fixedly connected with the water squeezing plate (68), the surface of the pressure spring (66) is provided with the spring sleeve rod (69), the inner wall of the one end of the shell (8) away from the air pressing plate (64) is fixedly connected with the pushing plate (59), the surface of the pushing plate (59) is fixedly connected with the air pressing fan plate (60), the inner wall of the one side of the shell (8) close to the water absorbing plate (7) is fixedly connected with the water collecting port (61). The surface of the water squeezing plate (68) is in contact with the surface of the water absorbing plate (7), the surface of the water collecting port (61) is fixedly connected with the inner wall of the water outlet (12), the end surface of the one end of the water absorbing plate (7) away from the connecting horizontal shaft (63) is in contact with the surface of the water collecting port (61).
Citation Information
Patent Citations
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