Automatic dehumidification type low-voltage power distribution cabinet

By designing an automatic dehumidification system in a low-voltage distribution cabinet, using components such as toothed fans, transmission gears and tensile plates, the problem of water vapor accumulation in the distribution cabinet is solved, and the drying and safe effect is achieved.

CN119994653AActive Publication Date: 2025-05-13SUQIAN ZHONGDIAN ELECTRIC
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Patent Information

Application Number
CN202510131421.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-06
Publication Date
2025-05-13
Estimated Expiration
2045-02-06

AI Technical Summary

Technical Problem

Existing low-voltage distribution cabinets are easily affected by external environmental factors, resulting in the accumulation of internal water vapor, causing moisture, rust and safety hazards.

Method used

An automatic dehumidification low-voltage distribution cabinet is designed, which uses a combination of adsorption components, auxiliary components and dehumidification components to blow and discharge internal water vapor through a motor-driven tooth fan system, an engine-driven transmission gear system and a tensile plate-driven airflow system, respectively.

Benefits of technology

It effectively avoids water vapor accumulation on the top of the distribution cabinet, prevents excessive accumulation of water vapor, strengthens the airflow channel, and ensures the dryness and safety of the distribution cabinet.

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Abstract

The invention relates to the technical field of low-voltage power distribution cabinets, and discloses an automatic dehumidification type low-voltage power distribution cabinet which comprises a shell, the end face of the shell is rotationally connected with a box door, the surface of the side, close to the box door, of the shell is fixedly connected with an air blowing plate, and the surface of the side, close to the air blowing plate, of the shell is provided with a water outlet. The end face of the end, away from the shell, of the air blowing plate is fixedly connected with a bottom plate, and the end face of the end, away from the air blowing plate, of the bottom plate is fixedly connected with an engine. When the device is used, a motor in the adsorption part is started to drive an output shaft to rotate, the output shaft drives an output belt to conduct transmission, when the output belt conducts transmission, a driving rotating shaft is driven to rotate, the driving rotating shaft drives a driving toothed plate to rotate, and when the driving toothed plate rotates, through the surface meshing effect, the driving toothed plate is driven to rotate; when the rotating shaft rotates, the driven toothed plate is driven to rotate, and when the driven toothed plate rotates, the driven rotating shaft is driven to rotate on the inner wall of the shell.
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Description

Technical Field

[0001] The invention relates to the technical field of low-voltage power distribution cabinet equipment, in particular to an automatic dehumidification type low-voltage power distribution cabinet. Background Art

[0002] Low voltage distribution cabinet is an electrical device used in low voltage distribution system. Its main function is to convert, distribute and control electric energy. Low voltage distribution cabinet is usually installed in buildings, factories, substations and other places to provide stable and reliable power supply for power equipment.

[0003] The existing technology is easily affected by factors such as the external environment, which may cause water vapor to appear inside the distribution cabinet, making the distribution cabinet damp and the bottom corners prone to rust. It may also damage the components, related equipment and circuits in the distribution box, and even cause safety hazards. Summary of the invention

[0004] The purpose of the present invention is to provide an automatic dehumidification low-voltage distribution cabinet to solve the problems raised in the above background technology.

[0005] In order to solve the above technical problems, the present invention is achieved through the following technical solutions: The present invention is an automatic dehumidification type low-voltage power distribution cabinet, comprising a shell, the end surface of the shell is rotatably connected to a box door, the surface of the shell close to the box door is fixedly connected to a blowing plate, the surface of the shell close to the blowing plate is provided with a water outlet, the end surface of the blowing plate away from the shell is fixedly connected to a bottom plate, and further comprising: An adsorption component, the adsorption component comprises an output shaft, the surface of the output shaft is transmission-connected with an output belt, and the inner wall of the output belt away from one end of the output shaft is rotationally connected with a driving shaft; An auxiliary component, the auxiliary component comprises a transmission shaft, a transmission gear is fixedly connected to the surface of the transmission shaft, and an internal gear plate is meshedly connected to the surface of the transmission gear; The dehumidification component comprises a fixed base, the inner wall of the fixed base is rotatably connected to a fixed shaft, and the surface of the fixed shaft is fixedly connected to a stretching plate.

[0006] Furthermore, the end surface of the base plate away from the blowing plate is fixedly connected to the engine, the end surface of the base plate away from the door is fixedly connected to the motor, the surface of the shell close to the motor is fixedly connected to the control panel, the inner wall of the shell is provided with a water absorption plate, the surface of the base plate is fixedly connected to the inner wall of the shell, the inner wall of the shell close to the water absorption plate is provided with a side panel, the number of the side panels is two, and the two side panels are symmetrically distributed on the inner wall of the shell.

[0007] Furthermore, the adsorption component includes an active tooth plate, the surface of the active tooth plate is meshedly connected with a driven tooth plate, the inner wall of the driven tooth plate is fixedly connected with a driven rotating shaft, the surface of the driven rotating shaft close to the driven tooth plate is fixedly connected with a tooth fan, and the inner wall of the shell close to the water absorption plate is fixedly connected with a fixed groove plate; The number of the driven gear plates is four, and the four driven gear plates are symmetrically distributed around the inner wall center of the shell. The number of the gear fans is six, and the six gear fans are symmetrically distributed around the surface center of the driven shaft. The surface of the driven shaft away from the gear fan is rotatably connected to the inner wall of the shell.

[0008] Furthermore, a push-pull rod is provided on the inner wall of the shell near the output shaft, and a sliding rod is fixedly connected to the end face of the push-pull rod away from the control panel, and the end face of the sliding rod is rotatably connected to a transverse axis, and a sliding rod plate is fixedly connected to the inner wall of the shell near the sliding rod, and the surface of the sliding rod is slidably connected to the surface of the transverse axis. There are seventeen transverse axes, and the seventeen transverse axes are equidistantly distributed along the surface of the sliding rod.

[0009] Furthermore, a triangular tooth is fixedly connected to the surface of the horizontal axis, a connecting tooth is fixedly connected to the end surface of the triangular tooth away from the horizontal axis, a valve shaft is fixedly connected to the end surface of the connecting tooth away from the triangular tooth, a valve shaft is fixedly connected to the surface of the valve shaft, a valve shaft groove is fixedly connected to the surface of the valve shaft, a valve shaft groove is provided on the inner wall of the shell close to the valve shaft, two valve leaves are provided, and the two valve leaves are symmetrically distributed on 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.

[0010] Furthermore, the auxiliary component includes internal teeth, the surface of the internal teeth is meshingly connected with a fan shaft tooth plate, the surface of the fan shaft tooth plate away from the internal teeth is fixedly connected to the fan shaft, the surface of the fan shaft is fixedly connected to a fan plate, the surface of the fan shaft is rotatably connected to a fan plate groove, the inner wall of the shell away from the output shaft end is rotatably connected to a wind plate, the surface of the internal tooth plate is slidably connected to the inner wall of the bottom plate, the number of the fan shaft tooth plates is five, and the five fan shaft tooth plates are equidistantly distributed along the surface of the bottom plate, the end surface of the fan plate groove away from the fan plate end is fixedly connected to the surface of the bottom plate, and the end surface of the internal teeth away from the fan shaft tooth plate end is fixedly connected to the inner wall of the internal tooth plate.

[0011] Further, the dehumidification component includes a fixed rotating rod, the surface of the fixed rotating rod is rotatably connected to the fixed rod, the surface of the fixed rotating rod away from one end of the fixed rod is fixedly connected to the movable stretching rod, the end surface of the movable stretching rod away from one end of the fixed rod is rotatably connected to the sliding horizontal plate, and the inner wall of the shell near the sliding horizontal plate is provided with a horizontal plate groove; The end surface of the stretching plate away from the fixed rotating shaft is fixedly connected to the surface of the fixed rotating rod away from the movable stretching rod, the end surface of the fixed rod away from the fixed rotating rod is fixedly connected to the inner wall of the shell, and the bottom of the fixed base is fixedly connected to the top of the inner tooth plate.

[0012] Furthermore, the surface of the sliding horizontal plate close to the horizontal plate groove is fixedly connected with an inclined stretching plate, the end surface of the inclined stretching plate away from the sliding horizontal plate is fixedly connected with a connecting horizontal axis, the surface of the inclined stretching plate away from the connecting horizontal axis is fixedly connected with a compression plate, and the surface of the shell close to the connecting horizontal axis is fixedly connected with an inclined plate; There are two inclined stretching plates, which are symmetrically distributed on the inner wall connecting the horizontal axis. The surface of the water absorption plate contacts the inner wall of the inclined plate. There are two inclined plates, which are symmetrically distributed on the inner wall of the shell.

[0013] Furthermore, a pressure spring is fixedly connected to the surface of the connecting horizontal axis away from the sliding horizontal plate, the end surface of the pressure spring is fixedly connected to a spring pressure plate, the end surface of the spring pressure plate away from the pressure spring is fixedly connected to a water squeezing plate, 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 shell away from the air pressure plate, a pressure fan plate is fixedly connected to the surface of the push plate, and a water collecting port is fixedly connected to the inner wall of the shell close to the water absorption plate; The surface of the water squeezing plate contacts the surface of the water absorbing plate, the surface of the water collecting port is fixedly connected to the inner wall of the water outlet, and the end surface of the water absorbing plate away from one end of the connecting horizontal axis contacts the surface of the water collecting port.

[0014] The present invention has the following beneficial effects: When the present invention is in use, the motor in the adsorption component is started, driving the output shaft to rotate, and the output shaft will drive the output belt to transmit. When the output belt transmits, it will drive the active shaft to rotate, and the active shaft will drive the active toothed plate to rotate. When the active toothed plate rotates, it will drive the driven toothed plate to rotate through the surface meshing action. When the driven toothed plate rotates, it will drive the driven shaft to rotate on the inner wall of the shell. When the driven shaft is running, it will drive the gear fan to rotate. When the gear fan rotates, wind force is generated, which will blow the water vapor generated in the shell to both sides, so as to prevent the water vapor from accumulating on the top of the shell to form water droplets. At the same time, the water vapor on both sides will finally accumulate After the accumulation is cooled, water droplets will be formed and enter the side plate, and finally, they will slide down along the fixed groove plate. At the same time, the control panel will start and drive the push-pull rod to operate. When the push-pull rod operates, it will drive the slide bar to slide along the surface of the slide bar plate. When the slide bar operates, it will drive the horizontal axis to operate. When the horizontal axis operates, it will drive the triangular teeth to operate. The triangular teeth will drive the connecting teeth to operate. When the connecting teeth rotate and operate, they will 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 will drive the valve leaf to rotate. When the valve leaf rotates, the wind force generated by the rotation will cause the water vapor to be blown in different directions to prevent excessive accumulation of water vapor on both sides. It can also increase the air flow.

[0015] When the present invention is in use, the engine in the auxiliary component is started, and the engine will drive the transmission shaft to run, and the transmission shaft will drive the transmission gear to rotate and run. When the transmission gear rotates, it will drive the inner tooth plate to slide along the inner wall of the bottom plate through the surface meshing action. At the same time, the transmission gear drives the inner tooth plate to run periodically. When the inner tooth plate runs, it will drive the inner teeth to run. When the inner teeth run, it will drive the fan shaft tooth plate to rotate. When the fan shaft tooth plate rotates, it will drive the fan shaft to run on the inner wall of the fan plate groove. When the fan shaft runs, it will drive the fan plate to run. Through the periodic operation of the inner tooth plate, it will eventually drive the fan plate to rotate periodically. The fan plate generates an upward wind direction through periodic rotation. The wind direction generated by it circulates air in the shell. At the same time, when the fan plate runs periodically to generate wind direction, it will blow the wind plate to perform periodic opening and closing operations.

[0016] When the present invention is in use, in the dehumidification component, when the inner tooth plate performs periodic operation, it will drive the fixed base to operate, and the fixed base will drive the stretching plate to perform periodic operation along the fixed rotating shaft, and perform stretching operation at the same time. When the stretching plate operates, it will drive the fixed rotating rod to perform periodic operation along the inner wall of the fixed rod. At the same time, when the fixed rotating rod operates, it will drive the movable stretching rod on the other end surface to operate. When the movable stretching rod operates, it will drive the sliding cross plate to slide along the inner wall of the cross plate groove, and the movable stretching rod will perform stretching operation. When the sliding cross plate operates, it will drive the inclined stretching plate to operate. When the inclined stretching plate operates, it will drive the compression plate to slide along the inner wall of the shell, squeeze the gas blown into the shell by the fan plate, and finally squeeze it to the compression plate. The fan plate allows the gas inside to enter the shell with a greater air pressure for better air circulation. At the same time, when the inclined stretch plate is running, it will drive the connecting horizontal axis to run along the surface of the inclined plate. At the same time, there is an inclined surface inside, so when the inclined stretch plate is running, it will perform a lifting operation. When the connecting horizontal axis is running, it will drive the pressure spring to run elastically. When the pressure spring runs, it will drive the spring-pressure plate to run. At the same time, when the spring-pressure plate is running, the elastic force generated will drive the water squeezing plate to run along the surface of the water absorption plate. At the same time, the downward pressure of the inclined stretch plate and the elastic force of the pressure spring will squeeze the water droplets formed by the accumulation of water vapor in the water absorption plate, and finally squeeze them into the water collection port. The water finally generated falls into the water outlet and is finally discharged.

[0017] Of course, any product implementing the present invention does not necessarily need to achieve all of the advantages described above at the same time. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings required for describing the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other accompanying drawings can be obtained based on these accompanying drawings without paying creative work.

[0019] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a rear cross-sectional view of the overall structure of the present invention; Figure 3 It is a cross-sectional view of the structure of the adsorption component of the present invention; Figure 4 It is a schematic diagram of the sliding rod structure of the present invention; Figure 5 For the present invention Figure 5 A magnified view of part A in FIG. Figure 6 It is a cross-sectional view of the auxiliary component structure of the present invention; Figure 7 For the present invention Figure 7 A magnified view of part B in FIG. Figure 8 This is a schematic diagram of the structure of the dehumidification component of the present invention; Fig. 9 For the present invention Figure 8 The enlarged view of the C part in FIG. Fig.10 It is a schematic diagram of the structure of the pressure spring of the present invention.

[0020] In the accompanying drawings, the components represented by the reference numerals are listed as follows: In the figure: 1, adsorption component; 2, auxiliary component; 3, dehumidification component; 4, engine; 5, motor; 6, control board; 7, water absorption plate; 8, shell; 9, box door; 10, blowing plate; 11, bottom plate; 12, water outlet; 13, side plate; 21, output shaft; 22, output belt; 23, active shaft; 24, active tooth plate; 25, driven tooth plate; 26, driven shaft; 27, tooth fan; 28, fixed groove plate; 29, push-pull rod; 30, slide rod; 31, horizontal axis; 32, slide rod plate; 33, triangular teeth; 34, connecting teeth; 35, valve shaft; 36, valve leaf; 37, valve shaft groove; 41. Transmission shaft; 42. Transmission gear; 43. Internal tooth plate; 44. Wind plate; 45. Internal teeth; 46. Fan shaft tooth plate; 47. Fan shaft; 48. Fan plate; 49. Fan plate groove; 51. Fixed base; 52. Fixed rotating shaft; 53. Stretching plate; 54. Fixed rotating rod; 55. Fixed rod; 56. Movable stretching rod; 57. Sliding horizontal plate; 58. Horizontal plate groove; 59. Push plate; 60. Compressed air fan plate; 61. Water collecting port; 62. Oblique stretching plate; 63. Connecting horizontal shaft; 64. Compressed air plate; 65. Oblique plate; 66. Pressure spring; 67. Spring pressure plate; 68. Water squeezing plate; 69. Spring sleeve rod. DETAILED DESCRIPTION

[0021] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. 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 creative work are within the scope of protection of the present invention.

[0022] See also Figure 1-Figure 10 As shown, the present invention is an automatic dehumidification type low-voltage power distribution cabinet, including a shell 8, the end face of the shell 8 is rotatably connected to a box door 9, the surface of the shell 8 close to the box door 9 is fixedly connected to a blowing plate 10, the surface of the shell 8 close to the blowing plate 10 is provided with a water outlet 12, and the end face of the blowing plate 10 away from the shell 8 is fixedly connected to a bottom plate 11, and also includes: Adsorption component 1, adsorption component 1 includes an output shaft 21, the motor 5 is started, driving the output shaft 21 to rotate, the output shaft 21 will drive the output belt 22 to transmit, the surface of the output shaft 21 is connected with the output belt 22, when the output belt 22 is transmitting, it will drive the active shaft 23 to rotate, the inner wall of the output belt 22 away from the end of the output shaft 21 is connected with the active shaft 23, the active shaft 23 will drive the active toothed plate 24 to rotate; Auxiliary component 2, auxiliary component 2 includes a transmission shaft 41, when the engine 4 is started, the engine 4 will drive the transmission shaft 41 to run, the transmission shaft 41 will drive the transmission gear 42 to rotate, the surface of the transmission shaft 41 is fixedly connected with the transmission gear 42, when the transmission gear 42 rotates, through the surface meshing action, it will drive the inner gear plate 43 to slide along the inner wall of the bottom plate 11, at the same time, the transmission gear 42 drives the inner gear plate 43 to run periodically, the surface of the transmission gear 42 is meshed with the inner gear plate 43, when the inner gear plate 43 runs, it will drive the inner gear 45 to run; Dehumidification component 3, the dehumidification component 3 includes a fixed base 51. When the inner tooth plate 43 performs periodic operation, it will drive the fixed base 51 to operate, and the fixed base 51 will drive the stretching plate 53 to perform periodic operation along the fixed rotating shaft 52, and perform stretching operation at the same time. The inner wall of the fixed base 51 is rotatably connected to the fixed rotating shaft 52, and the surface of the fixed rotating shaft 52 is fixedly connected to the stretching plate 53. When the stretching plate 53 operates, it will drive the fixed rotating rod 54 to perform periodic operation along the inner wall of the fixed rod 55.

[0023] The end surface of the bottom plate 11 away from the blowing plate 10 is fixedly connected to the engine 4, the end surface of the bottom plate 11 away from the box door 9 is fixedly connected to the motor 5, the surface of the shell 8 close to the motor 5 is fixedly connected to the control board 6, the inner wall of the shell 8 is provided with a water absorption plate 7, the surface of the bottom plate 11 is fixedly connected to the inner wall of the shell 8, the inner wall of the shell 8 close to the water absorption plate 7 is provided with a side panel 13, the number of the side panels 13 is provided, and the two side panels 13 are symmetrically distributed on the inner wall of the shell 8.

[0024] The adsorption component 1 includes an active tooth plate 24. When the active tooth plate 24 rotates, the driven tooth plate 25 is driven to rotate through the surface meshing action. The surface of the active tooth plate 24 is meshed and connected with the driven tooth plate 25. When the driven tooth plate 25 rotates, it drives the driven shaft 26 to rotate on the inner wall of the shell 8. The inner wall of the driven tooth plate 25 is fixedly connected with the driven shaft 26. When the driven shaft 26 runs, it drives the gear fan 27 to rotate. The surface of the driven shaft 26 close to the driven tooth plate 25 is fixedly connected with the gear fan 27. When the gear fan 27 rotates, wind force is generated, which will blow the water vapor generated in the shell 8 to both sides to prevent the water vapor from accumulating at the top of the shell 8 to form water droplets. At the same time, after the water vapor on both sides is finally accumulated and cooled, water droplets will be formed and enter the side plate 13, and finally, they will slide down along the fixed groove plate 28. The inner wall of the shell 8 close to the water absorption plate 7 is fixedly connected with the fixed groove plate 28; There are four driven gear plates 25, which are symmetrically distributed around the inner wall center of the shell 8. There are six gear fans 27, which are symmetrically distributed around the surface center of the driven shaft 26. The surface of the driven shaft 26 away from the gear fan 27 is rotatably connected to the inner wall of the shell 8.

[0025] A push-pull rod 29 is provided on the inner wall of the shell 8 near the output shaft 21. When the control panel 6 is started, the push-pull rod 29 is driven to operate. When the push-pull rod 29 is operating, the slide bar 30 is driven to slide along the surface of the slide bar plate 32. The end face of the push-pull rod 29 away from the control panel 6 is fixedly connected with the slide bar 30. When the slide bar 30 is operating, the transverse axis 31 is driven to operate. The end face of the slide bar 30 is rotationally connected with the transverse axis 31. The inner wall of the shell 8 near the slide bar 30 is fixedly connected with the slide bar plate 32. The surface of the slide bar 30 is slidably connected to the surface of the transverse axis 31. There are seventeen transverse axes 31, and the seventeen transverse axes 31 are equidistantly distributed along the surface of the slide bar 30.

[0026] The surface of the horizontal shaft 31 is fixedly connected with a triangular tooth 33. When the horizontal shaft 31 runs, the triangular tooth 33 is driven to run. The end surface of the triangular tooth 33 away from the horizontal shaft 31 is fixedly connected with a connecting tooth 34. The triangular tooth 33 drives the connecting tooth 34 to run. The end surface of the connecting tooth 34 away from the triangular tooth 33 is fixedly connected with a valve shaft 35. When the connecting tooth 34 rotates, the valve shaft 35 is driven to rotate along the inner wall of the valve shaft groove 37. At the same time, when the valve shaft 35 rotates, the valve leaf 3 6 rotates. When the valve leaf 36 rotates, the wind force generated by the rotation will blow the water vapor in different directions to prevent excessive accumulation of water vapor on both sides. The air flow rate can also be increased. The surface of the valve shaft 35 is fixedly connected with a valve shaft groove 37. The inner wall of the housing 8 close to the valve shaft 35 is provided with a valve shaft groove 37. 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.

[0027] The auxiliary component 2 includes an inner tooth 45. When the inner tooth 45 is running, it will drive the fan shaft tooth plate 46 to rotate. The surface of the inner tooth 45 is meshed with the fan shaft tooth plate 46. When the fan shaft tooth plate 46 rotates, it will drive the fan shaft 47 to run on the inner wall of the fan plate groove 49. The surface of the fan shaft tooth plate 46 away from the inner tooth 45 is fixedly connected to the fan shaft 47. When the fan shaft 47 is running, it will drive the fan plate 48 to run. The surface of the fan shaft 47 is fixedly connected to the fan plate 48. The periodic operation of the inner tooth plate 43 will eventually drive the fan plate 48 to rotate periodically. The fan plate 48 generates an upward wind direction through the periodic rotation, and the wind direction generated by it affects the housing 8 The fan plate 48 is used for circulating air inside the housing 40, and at the same time, when the fan plate 48 performs a periodic operation to generate a wind direction, the wind plate 44 will be blown to perform a periodic opening and closing operation. The surface of the fan shaft 47 is rotatably connected with the fan plate groove 49, and the inner wall of the housing 8 away from the output shaft 21 is rotatably connected with the wind plate 44. The surface of the inner tooth plate 43 is slidably connected to the inner wall of the bottom plate 11. There are five fan shaft tooth plates 46, and the five fan shaft tooth plates 46 are equidistantly distributed along the surface of the bottom plate 11. The end face of the fan plate groove 49 away from the end of the fan plate 48 is fixedly connected to the surface of the bottom plate 11, and the end face of the inner tooth 45 away from the end of the fan shaft tooth plate 46 is fixedly connected to the inner wall of the inner tooth plate 43.

[0028] The dehumidification component 3 includes a fixed rotating rod 54. At the same time, when the fixed rotating rod 54 is running, it will drive the movable stretching rod 56 on the other end surface to run. The surface of the fixed rotating rod 54 is rotatably connected to the fixed rod 55. The surface of the fixed rotating rod 54 away from the fixed rod 55 is fixedly connected to the movable stretching rod 56. When the movable stretching 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 stretching rod 56 is stretched. The end surface of the movable stretching 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 close to the sliding cross plate 57 is provided with a cross plate groove 58; The end surface of the stretching 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 stretching rod 56, the end surface of the fixed rod 55 away from the fixed rotating rod 54 is fixedly connected to the inner wall of the shell 8, and the bottom of the fixed base 51 is fixedly connected to the top of the inner tooth plate 43.

[0029] The surface of the sliding horizontal plate 57 close to the horizontal plate groove 58 is fixedly connected with an inclined stretching plate 62. When the inclined stretching plate 62 is running, it will drive the compression plate 64 to slide along the inner wall of the shell 8, and squeeze the gas blown into the shell 8 by the fan plate 48, and finally squeeze it into the compression fan plate 60, so that the gas inside enters the shell 8 with a higher air pressure, so as to achieve better air circulation. The end surface of the inclined stretching plate 62 away from the sliding horizontal plate 57 is fixedly connected with a connecting horizontal axis 63, and the surface of the inclined stretching plate 62 away from the end of the connecting horizontal axis 63 is fixedly connected with the compression plate 64, and the surface of the shell 8 close to the connecting horizontal axis 63 is fixedly connected with an inclined plate 65. At the same time, when the inclined stretching plate 62 is running, it will drive the connecting horizontal axis 63 to run along the surface of the inclined plate 65. At the same time, there is an inclined surface inside, so when the inclined stretching plate 62 is running, it will perform a lifting operation; There are two inclined stretching plates 62, which are symmetrically distributed on the inner wall connecting the horizontal axis 63. The surface of the water absorption plate 7 contacts 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.

[0030] The surface of the connecting horizontal shaft 63 away from the sliding horizontal plate 57 is fixedly connected with a pressure spring 66. When the connecting horizontal shaft 63 runs, the pressure spring 66 will be driven to run elastically. When the pressure spring 66 runs, the spring plate 67 will be driven to run. The end surface of the pressure spring 66 is fixedly connected with the spring plate 67. The end surface of the spring plate 67 away from the pressure spring 66 is fixedly connected with a water squeezing plate 68. 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 absorbing plate 7. At the same time, the downward pressure of the oblique 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, and the water finally produced falls into the water outlet 12 and is finally discharged. The surface of the pressure spring 66 is provided with a spring sleeve rod 69, and the inner wall of the shell 8 away from the end of the air pressure plate 64 is fixedly connected to the push plate 59, and the surface of the push plate 59 is fixedly connected to the air pressure fan plate 60, and the inner wall of the shell 8 close to the water absorption plate 7 is fixedly connected to the water collection port 61; The surface of the water squeezing plate 68 contacts the surface of the water absorbing plate 7 , the surface of the water collecting port 61 is fixedly connected to the inner wall of the water outlet 12 , and the end surface of the water absorbing plate 7 away from the connecting horizontal axis 63 contacts the surface of the water collecting port 61 .

[0031] When in use, in the adsorption component 1, the motor 5 is started, driving the output shaft 21 to rotate, and the output shaft 21 will drive the output belt 22 to transmit. When the output belt 22 is transmitting, it will drive the active shaft 23 to rotate, and the active shaft 23 will drive the active gear plate 24 to rotate. When the active gear plate 24 rotates, it will drive the driven gear plate 25 to rotate through the surface meshing action. When the driven gear plate 25 rotates, it will drive the driven shaft 26 to rotate on the inner wall of the shell 8. When the driven shaft 26 is running, it will drive the gear fan 27 to rotate. When the gear fan 27 rotates, it generates wind force, which will blow the water vapor generated in the shell 8 to both sides to prevent the water vapor from accumulating on the top of the shell 8 to form water droplets. At the same time, the water vapor on both sides will finally accumulate and cool down. , water droplets will enter the side plate 13, and finally, they will slide down along the fixed groove plate 28. At the same time, the control board 6 is started, driving the push-pull rod 29 to operate. When the push-pull rod 29 operates, it will drive the slide bar 30 to slide along the surface of the slide bar plate 32. When the slide bar 30 operates, it will drive the horizontal shaft 31 to operate. When the horizontal shaft 31 operates, it will drive the triangular teeth 33 to operate. The triangular teeth 33 will drive the connecting teeth 34 to operate. When the connecting teeth 34 rotate and operate, 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 cause the water vapor to be blown in different directions, so as to prevent excessive accumulation of water vapor on both sides when there is excessive water vapor, and increase the air flow. At this time, in the auxiliary component 2, the engine 4 is started, and the engine 4 will drive the transmission shaft 41 to run, and the transmission shaft 41 will drive the transmission gear 42 to rotate and run. When the transmission gear 42 rotates, it will drive the inner tooth plate 43 to slide along the inner wall of the bottom plate 11 through the surface meshing action. At the same time, the transmission gear 42 drives the inner tooth plate 43 to run periodically. When the inner tooth plate 43 runs, it will drive the inner gear 45 to run. When the inner gear 45 runs, it will drive the fan shaft tooth plate 46 to rotate. When the fan shaft tooth plate 46 rotates, it will drive the fan shaft 47 to run on the inner wall of the fan plate groove 49. When the fan shaft 47 runs, it will drive the fan plate 48 to run. Through the periodic operation of the inner tooth plate 43, it will eventually drive the fan plate 48 to rotate periodically. The fan plate 48 generates an upward wind direction through periodic rotation. Through the wind direction generated by it, air is circulated in the shell 8. At the same time, when the fan plate 48 runs periodically to generate a wind direction, it will blow the wind plate 44 to perform periodic opening and closing operations.At this time, in the dehumidification component 3, when the inner tooth plate 43 performs a cycle operation, it will drive the fixed base 51 to operate, and the fixed base 51 will drive the stretching plate 53 to perform a cycle operation along the fixed rotating shaft 52, and perform a stretching operation at the same time. When the stretching plate 53 is running, it will drive the fixed rotating rod 54 to perform a cycle operation along the inner wall of the fixed rod 55. At the same time, when the fixed rotating rod 54 is running, it will drive the movable stretching rod 56 on the other end surface to operate. When the movable stretching 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 stretching rod 56 performs a stretching operation. When the sliding cross plate 57 is running, it will drive the inclined stretching plate 62 to operate. When the inclined stretching plate 62 is running, it will drive the compressed air plate 64 to slide along the inner wall of the shell 8, and the gas blown into the shell 8 by the fan plate 48 is squeezed, and finally squeezed to the compressed air. The fan plate 60 allows the gas inside to enter the shell 8 with a greater air pressure for better air circulation. At the same time, when the inclined stretch plate 62 is running, it will drive the connecting horizontal axis 63 to run along the surface of the inclined plate 65. At the same time, it is an inclined surface, so when the inclined stretch plate 62 is running, it will perform a lifting operation. When the connecting horizontal axis 63 is running, it will drive the pressure spring 66 to run elastically. When the pressure spring 66 is running, it will drive the spring-pressing plate 67 to run. At the same time, when the spring-pressing plate 67 is running, the elastic force generated will drive the water squeezing plate 68 to run along the surface of the water absorption plate 7. At the same time, the downward pressure of the inclined stretch 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 finally generated falls into the water outlet 12 and is finally discharged.

[0032] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific implementation methods described. Obviously, many modifications and changes can be made according to the content of this specification. This specification selects and specifically describes these embodiments in order to better explain the principles and practical applications of the present invention, so that those skilled in the art can understand and use the present invention well. The present invention is limited only by the claims and their full scope and equivalents.

Claims

1. An automatic dehumidification type low-voltage power distribution cabinet, comprising a shell (8), an end surface of the shell (8) being rotatably connected to a box door (9), a surface of the shell (8) close to the box door (9) being fixedly connected to a blowing plate (10), a surface of the shell (8) close to the blowing plate (10) being provided with a water outlet (12), and an end surface of the blowing plate (10) away from the shell (8) being fixedly connected to a bottom plate (11), characterized in that: Also includes: An adsorption component (1), the adsorption component (1) comprising an output shaft (21), the surface of the output shaft (21) being drivingly connected to an output belt (22), and the inner wall of an end of the output belt (22) away from the output shaft (21) being rotatably connected to a driving shaft (23); An auxiliary component (2), the auxiliary component (2) comprising a transmission shaft (41), a transmission gear (42) being fixedly connected to a surface of the transmission shaft (41), and an internal gear plate (43) being meshingly connected to a surface of the transmission gear (42); A dehumidification component (3), the dehumidification component (3) comprising a fixed base (51), the inner wall of the fixed base (51) being rotatably connected to a fixed rotating shaft (52), and the surface of the fixed rotating shaft (52) being fixedly connected to a stretching plate (53).

2. The automatic dehumidification low-voltage distribution cabinet according to claim 1 is characterized in that: The end surface of the bottom plate (11) away from the blowing plate (10) is fixedly connected to the engine (4), the end surface of the bottom plate (11) away from the box door (9) is fixedly connected to the motor (5), the surface of the shell (8) close to the motor (5) is fixedly connected to the control board (6), the inner wall of the shell (8) is provided with a water absorption plate (7), the surface of the bottom plate (11) is fixedly connected to the inner wall of the shell (8), and the inner wall of the shell (8) close to the water absorption plate (7) is provided with a side plate (13), the number of the side plates (13) is two, and the two side plates (13) are symmetrically distributed with respect to the inner wall of the shell (8).

3. The automatic dehumidification low-voltage distribution cabinet according to claim 2 is characterized in that: The adsorption component (1) comprises an active tooth plate (24), the surface of the active tooth plate (24) is meshingly connected with a driven tooth plate (25), the inner wall of the driven tooth plate (25) is fixedly connected with a driven rotating shaft (26), the surface of the driven rotating shaft (26) close to the driven tooth plate (25) is fixedly connected with a tooth fan (27), and the inner wall of the housing (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, and the four driven gear plates (25) are symmetrically distributed around the inner wall center of the housing (8); the number of the gear fans (27) is six, and the six gear fans (27) are symmetrically distributed around the surface center of the driven rotating shaft (26); the surface of the driven rotating shaft (26) away from the gear fans (27) is rotatably connected to the inner wall of the housing (8).

4. The automatic dehumidification low-voltage distribution cabinet according to claim 3 is characterized in that: A push-pull rod (29) is provided on the inner wall of the housing (8) on the side close to the output shaft (21); the end surface of the push-pull rod (29) away from the control panel (6) is fixedly connected to a slide rod (30); the end surface of the slide rod (30) is rotatably connected to a transverse axis (31); the inner wall of the housing (8) on the side close to the slide rod (30) is fixedly connected to a slide rod plate (32); the surface of the slide rod (30) is slidably connected to the surface of the transverse axis (31); the number of the transverse axes (31) is seventeen, and the seventeen transverse axes (31) are equidistantly distributed along the surface of the slide rod (30).

5. The automatic dehumidification low-voltage distribution cabinet according to claim 4 is characterized in that: The surface of the transverse axis (31) is fixedly connected with a triangular tooth (33), the end surface of the triangular tooth (33) away from the transverse axis (31) is fixedly connected with a connecting tooth (34), the end surface of the connecting tooth (34) away from the triangular tooth (33) is fixedly connected with a valve shaft (35), the surface of the valve shaft (35) is fixedly connected with a valve shaft groove (37), the inner wall of the housing (8) close to the valve shaft (35) is provided with a valve shaft groove (37), the number of the valve leaves (36) is set to two, the two valve leaves (36) are symmetrically distributed on the surface of the valve shaft (35), and the surface of the valve shaft (35) is rotatably connected to the inner wall of the valve shaft groove (37).

6. The automatic dehumidification low-voltage distribution cabinet according to claim 5 is characterized in that: The auxiliary component (2) comprises an inner tooth (45), the surface of the inner tooth (45) is meshingly connected with a fan shaft tooth plate (46), the surface of the fan shaft tooth plate (46) away from the inner tooth (45) is fixedly connected with a fan shaft (47), the surface of the fan shaft (47) is fixedly connected with a fan plate (48), the surface of the fan shaft (47) is rotatably connected with a fan plate groove (49), the inner wall of the housing (8) away from the output shaft (21) is rotatably connected with a wind plate (44), the surface of the inner tooth plate (43) is slidably connected to the inner wall of the bottom plate (11), the number of the fan shaft tooth plates (46) is five, the five fan shaft tooth plates (46) are equidistantly distributed along the surface of the bottom plate (11), the end surface of the fan plate groove (49) away from the fan plate (48) is fixedly connected to the surface of the bottom plate (11), and the end surface 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).

7. The automatic dehumidification low-voltage distribution cabinet according to claim 6 is characterized in that: The dehumidification component (3) comprises a fixed rotating rod (54), a surface of the fixed rotating rod (54) being rotatably connected to a fixed rod (55), a surface of the fixed rotating rod (54) at one end away from the fixed rod (55) being fixedly connected to a movable stretching rod (56), an end surface of the movable stretching rod (56) at one end away from the fixed rod (55) being rotatably connected to a sliding transverse plate (57), and an inner wall of the housing (8) on a side close to the sliding transverse plate (57) being provided with a transverse plate groove (58); The end surface of the stretching 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 stretching rod (56), the end surface of the fixed rod (55) away from the fixed rotating rod (54) is fixedly connected to the inner wall of the housing (8), and the bottom of the fixed base (51) is fixedly connected to the top of the inner tooth plate (43).

8. The automatic dehumidification low-voltage distribution cabinet according to claim 7 is characterized in that: The surface of the sliding horizontal plate (57) close to the horizontal plate groove (58) is fixedly connected to an inclined stretching plate (62), the end surface of the inclined stretching plate (62) away from the sliding horizontal plate (57) is fixedly connected to a connecting horizontal axis (63), the surface of the inclined stretching plate (62) away from the connecting horizontal axis (63) is fixedly connected to a compression plate (64), and the surface of the housing (8) close to the connecting horizontal axis (63) is fixedly connected to an inclined plate (65); The number of the inclined stretching plates (62) is two, and the two inclined stretching plates (62) are symmetrically distributed on the inner wall connected to the horizontal axis (63). The surface of the water absorption plate (7) contacts the inner wall of the inclined plate (65). The number of the inclined plates (65) is two, and the two inclined plates (65) are symmetrically distributed on the inner wall of the shell (8).

9. The automatic dehumidification low-voltage distribution cabinet according to claim 8, characterized in that: A pressure spring (66) is fixedly connected to the surface of the connecting horizontal axis (63) at one end away from the sliding horizontal plate (57), a spring pressure plate (67) is fixedly connected to the end surface of the pressure spring (66), a water squeezing plate (68) is fixedly connected to the end surface of the spring pressure plate (67) at one end away from the pressure spring (66), a spring sleeve rod (69) is provided on the surface of the pressure spring (66), a push plate (59) is fixedly connected to the inner wall of the shell (8) at one end away from the air pressure plate (64), a pressure fan plate (60) is fixedly connected to the surface of the push plate (59), and a water collecting port (61) is fixedly connected to the inner wall of the shell (8) close to the water absorption plate (7); The surface of the water squeezing plate (68) contacts the surface of the water absorbing plate (7), the surface of the water collecting port (61) is fixedly connected to the inner wall of the water outlet (12), and the end surface of the water absorbing plate (7) away from the connecting transverse axis (63) contacts the surface of the water collecting port (61).

Citation Information

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