Module integrated comprehensive protection device

By designing heat dissipation, dust removal and auxiliary components in the integrated module protection device, the problems of heat accumulation and dust accumulation in the device are solved, and more efficient heat dissipation and dust treatment are achieved, and the equipment life is extended.

CN120109678AInactive Publication Date: 2025-06-06HUALONG COPPER IND CO LTD
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Patent Information

Application Number
CN202510260253.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-06
Publication Date
2025-06-06
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Due to poor heat dissipation effect of the module integrated protection device in the power system, the internal heat accumulation is accelerated, and the component aging is shortened, and the equipment life is shortened.

Method used

A module integrated integrated protection device is designed, including heat dissipation parts, dust removal parts and auxiliary parts. The heat dissipation component drives the heat dissipation fan through the sliding of the toothed push plate and the vertical plate, and the auxiliary spring provides the regression force; the dust removal component drives the dust removal fan through the sliding of the miter plate and the slide rod, and the extrusion bellows and air outlets are used for dust treatment; the auxiliary components dissipate external wind direction through the helical gears and the wind direction fan.

Benefits of technology

It effectively improves the heat dissipation ability of the device, extends the service life of the device, and further protects the device through dust removal and wind direction heat dissipation to ensure its efficient operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of comprehensive protection, and discloses a module integrated comprehensive protection device which comprises an outer shell, an inner shell is arranged on the inner wall of the outer shell, an opening and closing door is rotatably connected to the inner wall of the inner shell, a top plate is fixedly connected to the top of the outer shell, and a transverse plate is clamped to the end face of the end, away from the outer shell, of the top plate. The inner wall of the end, away from the top plate, of the shell is fixedly connected with a control panel. When the device is used, a control panel in a heat dissipation part is started to drive an output sleeve plate to operate, the output sleeve plate can drive an output shaft to operate, when the output shaft operates, a toothed plate can be driven to operate, and the toothed plate drives a toothed push plate to perform sliding cycle operation along the inner wall of a toothed plate sliding groove plate through the surface meshing effect; and when the vertical plates run, the vertical plates are in collision contact with the auxiliary springs, and the auxiliary springs generate elastic force to react on the vertical plates.
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Description

Technical Field

[0001] The invention relates to the technical field of integrated protection equipment, in particular to a module-integrated integrated protection device. Background Art

[0002] The modular integrated protection device is a protection device that integrates multiple functions and is usually used in power systems, communication systems and other fields that require comprehensive protection and management. This device integrates different protection, control, measurement and communication functions into one device through modular design to facilitate installation, maintenance and upgrade.

[0003] The power system refers to the power generation, transformation, transmission, distribution, power consumption and other equipment and corresponding auxiliary systems. The power system will generate a lot of heat during operation. If this heat is not removed from the box, it will affect the operation of the power system. The heat dissipation effect of the heat dissipation device is not good, and the heat inside the box will accumulate for a long time. If the power protection device is often heated, it will easily accelerate the aging speed of the internal components of the power protection device, shorten its service life, and waste manpower and material resources. Summary of the invention

[0004] The object of the present invention is to provide a modular integrated comprehensive protection device 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:

[0006] The present invention is a modular integrated protection device, comprising an outer shell, an inner shell is arranged on the inner wall of the outer shell, an opening and closing door is rotatably connected to the inner wall of the inner shell, a top plate is fixedly connected to the top of the outer shell, a cross plate is clamped on the end face of the top plate away from the outer shell, a control board is fixedly connected to the inner wall of the outer shell away from the top plate, and further comprising:

[0007] A heat dissipation component, the heat dissipation component comprises an output sleeve plate, an inner wall of the output sleeve plate is fixedly connected to an output shaft, and a surface of the output shaft is fixedly connected to a gear plate;

[0008] A dust removal component, the dust removal component comprises a miter plate, the end surface of the miter plate is fixedly connected to a slide bar, and the surface of the slide bar is slidably connected to a slide bar groove plate;

[0009] The auxiliary component comprises a vertical shaft, the surface of the vertical shaft close to the horizontal plate is meshedly connected with a connecting hole plate, and the inner wall of the connecting hole plate is fixedly connected with a connecting plate shaft.

[0010] Furthermore, the heat dissipation component includes a gear push plate, the surface of the gear push plate is slidably connected with a gear plate slide groove plate, the end face of the gear push plate away from one end of the gear plate slide groove plate is fixedly connected with a vertical plate, the surface of the output shaft penetrates the inner wall of the inner shell to the end face of the vertical shaft away from one end of the connecting hole plate and is rotatably connected with the inner wall of the inner shell, the surface of the gear plate is meshedly connected with the surface of the gear push plate away from the vertical plate, the number of the gear push plates is two, the two gear push plates are symmetrically distributed on the surface of the gear plate slide groove plate, the inner wall of the gear plate slide groove plate contacts the surface of the gear push plate, and the surface of the vertical plate is slidably connected with the inner wall of the inner shell.

[0011] Furthermore, the inner wall of the vertical plate is rotatably connected with a transverse axis, and the surface of the transverse axis close to the tooth plate slide plate side is fixedly connected with a cooling fan, and the inner wall of the surface of the vertical plate away from the tooth push plate is rotatably connected with an external threaded shaft, and the transverse axis penetrates the inner wall of the vertical plate and is rotatably connected with the inner wall of the vertical plate. There are four transverse axes, which are divided into two groups, and the number of each group is two. The two groups of transverse axes are symmetrically distributed on the surface of the vertical plate, and there are four cooling fans, which are symmetrically distributed around the surface center of the transverse axes.

[0012] Furthermore, the surface of the externally threaded shaft close to the vertical plate is transmission-connected with a transmission belt, the surface of the transverse shaft close to the transmission belt is fixedly connected with a transmission belt clamp, the surface of the externally threaded shaft away from the vertical plate is threadedly connected with a transverse groove plate, the inner wall of the transverse groove plate close to the vertical plate is fixedly connected with an auxiliary spring, the number of the transmission belts is two, and the two transmission belts are symmetrically distributed around the surface center of the externally threaded shaft, the number of the auxiliary springs is two, and the two auxiliary springs are symmetrically distributed around the inner wall of the transverse groove plate.

[0013] Furthermore, the dust removal component includes a slot plate pressure plate, the surface of the slot plate pressure plate is fixedly connected to a fixed plate, the number of the miter plates is set to two, and the two miter plates are symmetrically distributed around the surface center of the output shaft, the surface of the slide bar slot plate away from the two ends of the slide bar is slidingly connected to the inner wall of the slot plate pressure plate, the surface of the slot plate pressure plate is fixedly connected to the inner wall of the inner shell, the number of the slot plate pressure plates is set to two, and the two slot plate pressure plates are symmetrically distributed around the inner wall of the inner shell.

[0014] Furthermore, a dust collecting fan is fixedly connected to the surface of the transverse axis close to the groove plate pressure plate, and an extrusion bellows is fixedly connected to the surface of the inner shell close to the dust collecting fan, and an air outlet is fixedly connected to the end face of the extrusion bellows close to one end of the inner shell, and a dust collecting box is fixedly connected to the surface of the inner shell close to the vertical plate, and the inner wall of the dust collecting box is rotatably connected to the rotating shaft in the box, and the surface of the rotating shaft in the box is fixedly connected to the dust collecting fan, and the number of the extrusion bellows is provided with two, and the two extrusion bellows are symmetrically distributed on the surface of the inner shell, the number of the air outlets is provided with two, and the two air outlets are symmetrically distributed on the surface of the extrusion bellows, and the surface of the extrusion bellows away from the air outlet contacts the surface of the vertical plate, the number of the dust collecting boxes is provided with two, and the two dust collecting boxes are symmetrically distributed on the surface of the inner shell, and the number of the dust collecting fans is provided with three, and the three dust collecting fans are symmetrically distributed around the surface center of the rotating shaft in the box.

[0015] Furthermore, the auxiliary component includes an auxiliary belt, the inner wall of the auxiliary belt is rotatably connected to an auxiliary shaft, the end face of the auxiliary shaft is rotatably connected to a top clamping plate, the end face of the vertical shaft away from the connecting hole plate is clamped with the inner wall of the output shaft away from the output sleeve plate, the number of the connecting hole plates is two, the two connecting hole plates are symmetrically distributed on the surface of the top plate, the end face of the connecting plate shaft is rotatably connected to the inner wall of the top plate, the surface of the connecting plate shaft is rotatably connected to the inner wall of the auxiliary belt away from the auxiliary shaft, the number of the top clamping plates is four, the four top clamping plates are symmetrically distributed about the surface center of the cross plate, and the surface of the top clamping plate away from the auxiliary shaft is fixedly connected to the bottom plate of the cross plate.

[0016] Furthermore, the end face of the auxiliary shaft away from the top card plate is fixedly connected to an output bevel gear, the surface of the output bevel gear is meshingly connected to the transmission bevel gear, the inner wall of the transmission bevel gear is fixedly connected to the wind direction fan, the surface of the wind direction fan away from the transmission bevel gear is fixedly connected to the wind direction fan shaft, and the end face of the wind direction fan away from the transmission bevel gear is rotatably connected to the inner wall of the outer shell.

[0017] Furthermore, the inner wall of the end face of the output helical gear away from one end of the auxiliary shaft is rotatably connected to a helical gear connecting shaft, the surface of the helical gear connecting shaft is fixedly connected to a shaft fan plate, the surface of the shaft fan plate is fixedly connected to a fan plate spring, the surface of the output shaft close to the output helical gear is fixedly connected to an auxiliary sleeve shaft, the surface of the auxiliary sleeve shaft is fixedly connected to an auxiliary gear fan, the number of the shaft fan plates is two, and the two shaft fan plates are symmetrically distributed with respect to the end face of the helical gear connecting shaft, the number of the auxiliary gear fans is four, and the four auxiliary gear fans are symmetrically distributed with respect to the surface center of the auxiliary sleeve shaft.

[0018] The present invention has the following beneficial effects:

[0019] When the present invention is in use, the control board in the heat dissipation component is started, driving the output sleeve plate to operate, and the output sleeve plate will drive the output shaft to operate. When the output shaft operates, it will drive the tooth plate to operate, and the tooth plate drives the tooth push plate to slide along the inner wall of the tooth plate slide groove plate through the surface meshing action. When the tooth push plate operates, it will drive the vertical plate to slide along the inner wall of the inner shell for periodic operation, so as to dissipate heat in the device. When the vertical plate operates, it will collide and contact with the auxiliary spring, and the auxiliary spring will generate elastic force to react on the vertical plate. The auxiliary vertical plate will assist it to return to its original position during periodic operation. At the same time, when the vertical plate operates, it will drive the external threaded shaft to operate, and the external threaded shaft is threadedly connected with the inner wall of the transverse groove plate, so the external threaded shaft will rotate along the inner wall of the vertical plate. When the external threaded shaft rotates, it will drive the transmission belt to transmit along the transmission belt clamping plate. When the transmission belt rotates, it will drive the transverse shaft to rotate along the inner wall of the vertical plate, and the transverse shaft will drive the heat dissipation fan to rotate, so as to better dissipate heat in the device and better use the protection device.

[0020] When the present invention is in use, the output shaft in the dust removal component will drive the miter plate to operate, and the miter plate will drive the sliding bar to slide along the sliding bar slot plate, and push the sliding bar slot plate to slide along the inner wall of the slot plate pressure plate, and the sliding bar slot plate will remove dust on the surface of the device, and finally push the dust to the surface of the vertical plate. At the same time, when the vertical plate is running, it will squeeze the extrusion bellows, and then blow it out through the air outlet, so as to perform wind direction processing on the dust in the device, reduce the dust in the device, increase the heat dissipation capacity of the device, and better protect the operation of the device. At the same time, when the horizontal axis is running, it will drive the dust removal fan to operate, and further perform the dust removal effect. Finally, the dust falls into the dust collecting box through the bottom of the vertical plate. At the same time, when the rotating shaft in the box rotates, it drives the dust collecting fan to operate, and the dust falling into the dust collecting box is better collected, so that the device can be better used.

[0021] When the present invention is in use, in the auxiliary component, the output shaft drives the vertical shaft to operate, and the vertical shaft drives the connecting hole plate to operate through the surface meshing action. When the connecting hole plate operates, it drives the connecting plate shaft to rotate along the inner wall of the top plate. When the connecting plate shaft rotates, it drives the auxiliary belt to operate, and the auxiliary belt drives the auxiliary shaft to rotate along the inner wall of the top card plate. When the auxiliary shaft operates, it drives the output bevel gear to operate, and the output bevel gear drives the transmission bevel gear to operate through the surface meshing action. When the transmission bevel gear operates, it drives the wind direction fan to rotate and operate along the inner wall of the shell. When the wind direction fan operates, it drives the wind direction fan shaft to operate. When the wind direction fan shaft operates, it generates The wind direction is used to dissipate heat externally on the device, thereby providing better protection for the device. At the same time, when the output bevel gear is running, it will drive the bevel gear connecting shaft to run, and the bevel gear connecting shaft will drive the shaft fan plate to run. When the shaft fan plate is running, it will drive the fan plate spring to run. When the fan plate spring runs, it will collide with the inner wall of the inner shell. The vibration force generated by the elastic collision will cause the dust in the device to fall off, thereby preventing accumulation. At the same time, when the output shaft is running, it will drive the auxiliary sleeve shaft to run, and the auxiliary sleeve shaft will drive the auxiliary gear fan to run. The auxiliary gear fan will assist the wind force generated by the wind direction fan shaft, thereby making the device better usable.

[0022] 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

[0023] 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.

[0024] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0025] Figure 2 It is a cross-sectional view of the overall structure of the present invention;

[0026] Figure 3 It is a cross-sectional view of the heat dissipation component structure of the present invention;

[0027] Figure 4 This is a cross-sectional view of the structure of the external threaded shaft of the present invention;

[0028] Figure 5 It is a cross-sectional view of the dust removal component structure of the present invention;

[0029] Figure 6 For the present invention Figure 5 A magnified view of part A in FIG.

[0030] Figure 7 It is a cross-sectional view of the auxiliary component structure of the present invention;

[0031] Figure 8 For the present invention Figure 7 A magnified view of part B in FIG.

[0032] Fig. 9 For the present invention Figure 7 Enlarged view of section C in .

[0033] In the accompanying drawings, the components represented by the reference numerals are listed as follows:

[0034] In the figure: 1, heat dissipation component; 2, dust removal component; 3, auxiliary component; 4, control panel; 5, outer shell; 6, inner shell; 7, opening and closing door; 8, top plate; 9, horizontal plate; 21, output sleeve plate; 22, output shaft; 23, tooth plate; 24, tooth push plate; 25, tooth plate slide plate; 26, vertical plate; 27, horizontal axis; 28, heat dissipation fan; 29, external threaded shaft; 30, transmission belt clamp plate; 31, transmission belt; 32, horizontal groove plate; 33, auxiliary spring; 41, miter plate; 42, slide bar; 43, slide bar groove plate; 4 4. Slot plate pressure plate; 45. Fixed plate; 46. Dust removal fan; 47. Extrusion bellows; 48. Air outlet; 49. Dust collecting box; 50. Rotating shaft in the box; 51. Dust collecting fan; 61. Vertical shaft; 62. Connecting hole plate; 63. Connecting plate shaft; 64. Auxiliary belt; 65. Auxiliary shaft; 66. Top clamping plate; 67. Output bevel gear; 68. Transmission bevel gear; 69. Wind direction fan; 70. Wind direction fan shaft; 71. Bevel gear connecting shaft; 72. Shaft fan plate; 73. Fan plate spring; 74. Auxiliary sleeve shaft; 75. Auxiliary gear fan. DETAILED DESCRIPTION

[0035] 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.

[0036] See also Figure 1 - Fig. 9 As shown, the present invention is a module integrated comprehensive protection device, comprising a shell 5, an inner shell 6 is provided on the inner wall of the shell 5, an opening and closing door 7 is rotatably connected to the inner wall of the inner shell 6, a top plate 8 is fixedly connected to the top of the shell 5, a cross plate 9 is clamped on the end face of the top plate 8 away from the shell 5, a control board 4 is fixedly connected to the inner wall of the shell 5 away from the top plate 8, and further comprising:

[0037] The heat dissipation component 1 includes an output sleeve 21. When the control board 4 is started, the output sleeve 21 is driven to operate, and the output sleeve 21 drives the output shaft 22 to operate. The inner wall of the output sleeve 21 is fixedly connected with the output shaft 22. When the output shaft 22 operates, it drives the tooth plate 23 to operate. The surface of the output shaft 22 is fixedly connected with the tooth plate 23. The tooth plate 23 drives the tooth push plate 24 to slide along the inner wall of the tooth plate slide plate 25 through the meshing action of the surface to operate periodically;

[0038] The dust removal component 2 includes a miter plate 41. The output shaft 22 drives the miter plate 41 to operate. The miter plate 41 drives the slide bar 42 to slide along the slide bar slot plate 43 and pushes the slide bar slot plate 43 to slide along the inner wall of the slot plate pressure plate 44. The slide bar slot plate 43 removes dust from the surface of the device and finally pushes the dust to the surface of the vertical plate 26. The end surface of the miter plate 41 is fixedly connected to the slide bar 42, and the surface of the slide bar 42 is slidably connected to the slide bar slot plate 43.

[0039] Auxiliary component 3, the auxiliary component 3 includes a vertical shaft 61, the output shaft 22 will drive the vertical shaft 61 to operate, the vertical shaft 61 drives the connecting hole plate 62 to operate through surface meshing, the surface of the vertical shaft 61 close to the side of the horizontal plate 9 is meshed and connected with the connecting hole plate 62, when the connecting hole plate 62 is running, it will drive the connecting plate shaft 63 to rotate along the inner wall of the top plate 8, the inner wall of the connecting hole plate 62 is fixedly connected with the connecting plate shaft 63, when the connecting plate shaft 63 rotates, it will drive the auxiliary belt 64 to operate.

[0040] Furthermore, the heat dissipation component 1 includes a gear push plate 24. When the gear push plate 24 is running, it will drive the vertical plate 26 to slide and operate along the inner wall of the inner shell 6 in a cycle to dissipate heat in the device. The surface of the gear push plate 24 is slidably connected with a gear plate slot plate 25, and the end face of the gear push plate 24 away from the end of the gear plate slot plate 25 is fixedly connected with the vertical plate 26. The surface of the output shaft 22 penetrates the inner wall of the inner shell 6 to the end face of the vertical shaft 61 away from the connecting hole plate 62 and is rotatably connected to the inner wall of the inner shell 6. The surface of the gear plate 23 is meshed and connected with the surface of the gear push plate 24 away from the vertical plate 26. The number of the gear push plates 24 is two, and the two gear push plates 24 are symmetrically distributed on the surface of the gear plate slot plate 25. The inner wall of the gear plate slot plate 25 contacts the surface of the gear push plate 24, and the surface of the vertical plate 26 is slidably connected to the inner wall of the inner shell 6.

[0041] Furthermore, the inner wall of the vertical plate 26 is rotatably connected with a transverse axis 27, and the surface of the transverse axis 27 close to the tooth plate slide plate 25 is fixedly connected with a cooling fan 28, and the inner wall of the surface of the vertical plate 26 away from the tooth push plate 24 is rotatably connected with an externally threaded shaft 29. When the vertical plate 26 is running, the externally threaded shaft 29 will be driven to run, and the externally threaded shaft 29 is threadedly connected to the inner wall of the transverse groove plate 32, so the externally threaded shaft 29 will rotate along the inner wall of the vertical plate 26, and the transverse axis 27 passes through the inner wall of the vertical plate 26 and is rotatably connected to the inner wall of the vertical plate 26. There are four transverse axes 27, and the four transverse axes 27 are divided into two groups, and the number of each group is two. The two groups of transverse axes 27 are symmetrically distributed on the surface of the vertical plate 26, and there are four cooling fans 28, and the four cooling fans 28 are symmetrically distributed around the surface center of the transverse axis 27.

[0042] Furthermore, the surface of the externally threaded shaft 29 close to the side of the vertical plate 26 is connected to the transmission belt 31. When the externally threaded shaft 29 rotates, the transmission belt 31 is driven to transmit along the transmission belt clamping plate 30. When the transmission belt 31 rotates, the horizontal shaft 27 is driven to rotate along the inner wall of the vertical plate 26. The horizontal shaft 27 drives the cooling fan 28 to rotate, so as to better dissipate heat in the device and protect the device for better use. The surface of the horizontal shaft 27 close to the transmission belt 31 is fixedly connected to the transmission belt clamping plate 30. The surface of the externally threaded shaft 29 away from the side of the vertical plate 26 is fixedly connected to the transmission belt clamping plate 30. The surface is threadedly connected with a transverse groove plate 32, and an auxiliary spring 33 is fixedly connected to the inner wall of the transverse groove plate 32 close to the vertical plate 26. When the vertical plate 26 is running, it will collide with the auxiliary spring 33. The auxiliary spring 33 generates an elastic force to react on the vertical plate 26, and assists the vertical plate 26 to return to its original position during its cyclic operation. There are two transmission belts 31, and the two transmission belts 31 are symmetrically distributed around the surface center of the external threaded shaft 29. There are two auxiliary springs 33, and the two auxiliary springs 33 are symmetrically distributed around the inner wall of the transverse groove plate 32.

[0043] Furthermore, the dust removal component 2 includes a slot plate pressure plate 44, the surface of which is fixedly connected to a fixed plate 45, the number of the miter plates 41 is two, and the two miter plates 41 are symmetrically distributed around the surface center of the output shaft 22, the surface of the slide bar slot plate 43 away from the two ends of the slide bar 42 is slidingly connected to the inner wall of the slot plate pressure plate 44, the surface of the slot plate pressure plate 44 is fixedly connected to the inner wall of the inner shell 6, the number of the slot plate pressure plates 44 is two, and the two slot plate pressure plates 44 are symmetrically distributed around the inner wall of the inner shell 6.

[0044] Furthermore, a dust removal fan 46 is fixedly connected to the surface of the horizontal axis 27 near the slot plate pressure plate 44. When the horizontal axis 27 is running, the dust removal fan 46 will be driven to run, and the dust removal effect will be further improved. Finally, the dust will fall into the dust collecting box 49 through the bottom of the vertical plate 26. The surface of the inner shell 6 near the dust removal fan 46 is fixedly connected to an extrusion bellows 47. When the vertical plate 26 is running, the extrusion bellows 47 will be squeezed and then blown out through the air outlet 48, so that the wind direction of the dust in the device is processed, and the dust in the device is reduced. The heat dissipation capacity of the device is increased, and the operation of the device is better protected. The end face of the extrusion bellows 47 near one end of the inner shell 6 is fixedly connected with an air outlet 48, and the surface of the inner shell 6 near the side of the vertical plate 26 is fixedly connected with a dust collecting box 49. The inner wall of the dust collecting box 49 is rotatably connected with The rotating shaft 50 in the box rotates, driving the dust collecting fan 51 to run, so as to better collect the dust falling into the dust collecting box 49, so as to make the device better used. The surface of the rotating shaft 50 in the box is fixedly connected with the dust collecting fan 51. The number of the extrusion bellows 47 is set to two, and the two extrusion bellows 47 are symmetrically distributed on the surface of the inner shell 6. The number of the air outlets 48 is set to two, and the two air outlets 48 are symmetrically distributed on the surface of the extrusion bellows 47. The surface of the extrusion bellows 47 away from the air outlet 48 is in contact with the surface of the vertical plate 26. The number of the dust collecting boxes 49 is set to two, and the two dust collecting boxes 49 are symmetrically distributed on the surface of the inner shell 6. The number of the dust collecting fans 51 is set to three, and the three dust collecting fans 51 are symmetrically distributed around the center of the surface of the rotating shaft 50 in the box.

[0045] Furthermore, the auxiliary component 3 includes an auxiliary belt 64, which drives the auxiliary shaft 65 to rotate along the inner wall of the top clamping plate 66. The inner wall of the auxiliary belt 64 is rotatably connected with the auxiliary shaft 65. When the auxiliary shaft 65 runs, it will drive the output bevel gear 67 to run. The end face of the auxiliary shaft 65 is rotatably connected with the top clamping plate 66. The end face of the vertical shaft 61 away from the connecting hole plate 62 is clamped with the inner wall of the output shaft 22 away from the output sleeve plate 21. The number of the connecting hole plates 62 is provided with two, and the two connecting hole plates 62 are symmetrically distributed on the surface of the top plate 8. The end face of the connecting plate shaft 63 is rotatably connected with the inner wall of the top plate 8, and the surface of the connecting plate shaft 63 is rotatably connected with the inner wall of the side of the auxiliary belt 64 away from the auxiliary shaft 65. The number of the top clamping plates 66 is provided with four, and the four top clamping plates 66 are symmetrically distributed about the surface center of the cross plate 9. The surface of the top clamping plate 66 away from the auxiliary shaft 65 is fixedly connected to the bottom plate of the cross plate 9.

[0046] Furthermore, the end surface of the auxiliary shaft 65 away from the top card plate 66 is fixedly connected with an output bevel gear 67. The output bevel gear 67 drives the transmission bevel gear 68 to operate through surface meshing. The surface of the output bevel gear 67 is meshed with the transmission bevel gear 68. When the transmission bevel gear 68 is operating, it drives the wind direction fan 69 to rotate along the inner wall of the outer shell 5. The inner wall of the transmission bevel gear 68 is fixedly connected with the wind direction fan 69. When the wind direction fan 69 is operating, it drives the wind direction fan shaft 70 to operate. When the wind direction fan shaft 70 is operating, the device will be cooled by the generated wind direction, thereby better protecting the device. The surface of the wind direction fan 69 away from the transmission bevel gear 68 is fixedly connected with the wind direction fan shaft 70. The end surface of the wind direction fan 69 away from the transmission bevel gear 68 is rotationally connected to the inner wall of the outer shell 5.

[0047] Furthermore, the inner wall of the end face of the output bevel gear 67 away from the auxiliary shaft 65 is rotatably connected with a bevel gear connecting shaft 71. When the output bevel gear 67 is running, it will drive the bevel gear connecting shaft 71 to run, and the bevel gear connecting shaft 71 will drive the shaft fan plate 72 to run. The surface of the bevel gear connecting shaft 71 is fixedly connected with the shaft fan plate 72. When the shaft fan plate 72 is running, it will drive the fan plate spring 73 to run. The surface of the shaft fan plate 72 is fixedly connected with the fan plate spring 73. When the fan plate spring 73 is running, it will collide with the inner wall of the inner shell 6. The vibration force generated by the elastic collision can make the dust in the device fall off to prevent accumulation. The surface of the shaft 22 close to the output bevel gear 67 is fixedly connected with an auxiliary sleeve shaft 74. When the output shaft 22 is running, the auxiliary sleeve shaft 74 will be driven to run, and the auxiliary sleeve shaft 74 will drive the auxiliary gear fan 75 to run. The auxiliary gear fan 75 will assist the wind direction force generated by the wind direction fan shaft 70, so that the device can be used better. The surface of the auxiliary sleeve shaft 74 is fixedly connected with an auxiliary gear fan 75. The number of the shaft fan plates 72 is set to two, and the two shaft fan plates 72 are symmetrically distributed on the end surface of the bevel gear connection shaft 71. The number of the auxiliary gear fans 75 is set to four, and the four auxiliary gear fans 75 are symmetrically distributed around the surface center of the auxiliary sleeve shaft 74.

[0048] When in use, the control board 4 in the heat dissipation component 1 is started, driving the output sleeve plate 21 to operate, and the output sleeve plate 21 will drive the output shaft 22 to operate. When the output shaft 22 operates, it will drive the tooth plate 23 to operate. The tooth plate 23 drives the tooth push plate 24 to slide along the inner wall of the tooth plate slide plate 25 through the surface meshing action. When the tooth push plate 24 operates, it will drive the vertical plate 26 to slide along the inner wall of the inner shell 6 to perform a periodic operation to dissipate heat in the device. When the vertical plate 26 operates, it will collide with the auxiliary spring 33. The auxiliary spring 33 generates an elastic force to react on the vertical plate 26, and the auxiliary When the vertical plate 26 is in periodic operation, it is assisted to return to its original position. At the same time, when the vertical plate 26 is in operation, it will drive the external threaded shaft 29 to operate. The external threaded shaft 29 is threadedly connected to the inner wall of the transverse groove plate 32, so the external threaded shaft 29 will rotate along the inner wall of the vertical plate 26. When the external threaded shaft 29 rotates, it will drive the transmission belt 31 to transmit along the transmission belt clamp 30. When the transmission belt 31 transmits, it will drive the transverse shaft 27 to rotate along the inner wall of the vertical plate 26. The transverse shaft 27 will drive the cooling fan 28 to rotate, so as to better dissipate heat in the device and protect the device for better use. At this time, in the dust removal component 2, the output shaft 22 will drive the miter plate 41 to operate, and the miter plate 41 will drive the slide bar 42 to slide along the slide bar slot plate 43, and push the slide bar slot plate 43 to slide along the inner wall of the slot plate pressure plate 44, and the slide bar slot plate 43 will remove dust from the surface of the device, and finally push the dust to the surface of the vertical plate 26. At the same time, when the vertical plate 26 is in operation, it will squeeze the extrusion bellows 47, and then blow it out through the air outlet 48, and perform wind direction processing on the dust in the device, thereby reducing the dust in the device, increasing the heat dissipation capacity of the device, and better protecting the operation of the device. At the same time, when the horizontal axis 27 is in operation, it will drive the dust removal fan 46 to operate, and further perform the dust removal effect. Finally, the dust falls into the dust collecting box 49 through the bottom of the vertical plate 26. At the same time, when the rotating shaft 50 in the box rotates, it drives the dust collecting fan 51 to operate, and the dust falling into the dust collecting box 49 is better collected, so that the device can be used better.At this time, in the auxiliary component 3, the output shaft 22 will drive the vertical shaft 61 to operate, and the vertical shaft 61 drives the connecting hole plate 62 to operate through the surface meshing action. When the connecting hole plate 62 operates, it will drive the connecting plate shaft 63 to rotate along the inner wall of the top plate 8. When the connecting plate shaft 63 rotates, it will drive the auxiliary belt 64 to operate, and the auxiliary belt 64 will drive the auxiliary shaft 65 to rotate along the inner wall of the top card plate 66. When the auxiliary shaft 65 operates, it will drive the output bevel gear 67 to operate. The output bevel gear 67 drives the transmission bevel gear 68 to operate through the surface meshing action. When the transmission bevel gear 68 operates, it will drive the wind direction fan 69 to rotate and operate along the inner wall of the outer shell 5. When the wind direction fan 69 operates, it will drive the wind direction fan shaft 70 to operate. When the wind direction fan shaft 70 operates, it will Through the generated wind direction, the device is externally cooled by the wind direction, and the device is better protected. At the same time, when the output bevel gear 67 is running, it will drive the bevel gear connecting shaft 71 to run, and the bevel gear connecting shaft 71 will drive the shaft fan plate 72 to run. When the shaft fan plate 72 is running, it will drive the fan plate spring 73 to run. When the fan plate spring 73 is running, it will collide with the inner wall of the inner shell 6. The vibration force generated by the elastic collision can make the dust in the device fall off to prevent accumulation. At the same time, when the output shaft 22 is running, it will drive the auxiliary sleeve shaft 74 to run, and the auxiliary sleeve shaft 74 will drive the auxiliary gear fan 75 to run. The auxiliary gear fan 75 will assist the wind direction force generated by the wind direction fan shaft 70, so that the device can be better used.

[0049] 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. A modular integrated protection device, comprising an outer shell (5), an inner shell (6) is arranged on the inner wall of the outer shell (5), an opening and closing door (7) is rotatably connected to the inner wall of the inner shell (6), a top plate (8) is fixedly connected to the top of the outer shell (5), a transverse plate (9) is clamped on the end face of the top plate (8) away from the outer shell (5), and a control board (4) is fixedly connected to the inner wall of the outer shell (5) away from the top plate (8), characterized in that: Also includes: A heat dissipation component (1), the heat dissipation component (1) comprising an output sleeve plate (21), an inner wall of the output sleeve plate (21) being fixedly connected to an output shaft (22), and a surface of the output shaft (22) being fixedly connected to a toothed plate (23); A dust removal component (2), the dust removal component (2) comprising a miter plate (41), the end surface of the miter plate (41) being fixedly connected to a slide bar (42), and the surface of the slide bar (42) being slidably connected to a slide bar slot plate (43); An auxiliary component (3), the auxiliary component (3) comprising a vertical shaft (61), the surface of the vertical shaft (61) close to the horizontal plate (9) is meshingly connected with a connecting hole plate (62), and the inner wall of the connecting hole plate (62) is fixedly connected with a connecting plate shaft (63).

2. A modular integrated protection device according to claim 1, characterized in that: The heat dissipation component (1) comprises a tooth push plate (24), the surface of which is slidably connected to a tooth plate slide plate (25), the end surface of which is away from the tooth plate slide plate (25) is fixedly connected to a vertical plate (26), the surface of the output shaft (22) passes through the inner wall of the inner shell (6) to the end surface of the vertical shaft (61) away from the connecting hole plate (62) and is rotatably connected to the inner wall of the inner shell (6), the surface of the tooth plate (23) is meshingly connected to the surface of the tooth push plate (24) away from the vertical plate (26), the number of which is two, the two tooth push plates (24) are symmetrically distributed with respect to the surface of the tooth plate slide plate (25), the inner wall of the tooth plate slide plate (25) is in contact with the surface of the tooth push plate (24), and the surface of the vertical plate (26) is slidably connected to the inner wall of the inner shell (6).

3. A modular integrated protection device according to claim 2, characterized in that: The inner wall of the vertical plate (26) is rotatably connected to a transverse axis (27); a heat dissipation fan (28) is fixedly connected to the surface of the transverse axis (27) on the side close to the tooth plate slide plate (25); an external threaded shaft (29) is rotatably connected to the inner wall of the surface of the vertical plate (26) on the side away from the tooth push plate (24); the transverse axis (27) penetrates the inner wall of the vertical plate (26) and is rotatably connected to the inner wall of the vertical plate (26); four transverse axes (27) are provided, and the four transverse axes (27) are divided into two groups, and the number of each group is two. The two groups of transverse axes (27) are symmetrically distributed on the surface of the vertical plate (26); four heat dissipation fans (28) are provided, and the four heat dissipation fans (28) are symmetrically distributed around the surface center of the transverse axis (27).

4. A modular integrated protection device according to claim 3, characterized in that: The surface of the externally threaded shaft (29) close to the vertical plate (26) is transmission-connected with a transmission belt (31); the surface of the transverse shaft (27) close to the transmission belt (31) is fixedly connected with a transmission belt clamp (30); the surface of the externally threaded shaft (29) away from the vertical plate (26) is threadedly connected with a transverse groove plate (32); the inner wall of the transverse groove plate (32) close to the vertical plate (26) is fixedly connected with an auxiliary spring (33); the number of the transmission belts (31) is two, and the two transmission belts (31) are symmetrically distributed around the center of the surface of the externally threaded shaft (29); the number of the auxiliary springs (33) is two, and the two auxiliary springs (33) are symmetrically distributed around the inner wall of the transverse groove plate (32).

5. A modular integrated protection device according to claim 4, characterized in that: The dust removal component (2) includes a slot plate pressure plate (44), the surface of which is fixedly connected to a fixed plate (45), the number of the miter plates (41) is two, and the two miter plates (41) are symmetrically distributed around the surface center of the output shaft (22), the surface of the slide bar slot plate (43) away from the two ends of the slide bar (42) is slidably connected to the inner wall of the slot plate pressure plate (44), the surface of the slot plate pressure plate (44) is fixedly connected to the inner wall of the inner shell (6), the number of the slot plate pressure plates (44) is two, and the two slot plate pressure plates (44) are symmetrically distributed around the inner wall of the inner shell (6).

6. A modular integrated protection device according to claim 5, characterized in that: The surface of the horizontal axis (27) close to the groove plate pressure plate (44) is fixedly connected to a dust removal fan (46), the surface of the inner shell (6) close to the dust removal fan (46) is fixedly connected to an extrusion bellows (47), the end surface of the extrusion bellows (47) close to one end of the inner shell (6) is fixedly connected to an air outlet (48), the surface of the inner shell (6) close to the vertical plate (26) is fixedly connected to a dust collecting box (49), the inner wall of the dust collecting box (49) is rotatably connected to an inner rotating shaft (50), the surface of the inner rotating shaft (50) is fixedly connected to a dust collecting fan (51), and the number of the extrusion bellows (47) is set to There are two extrusion bellows (47) arranged, the two extrusion bellows (47) are symmetrically distributed on the surface of the inner shell (6), there are two air outlet holes (48) arranged, the two air outlet holes (48) are symmetrically distributed on the surface of the extrusion bellows (47), the surface of the extrusion bellows (47) away from the air outlet holes (48) is in contact with the surface of the vertical plate (26), there are two dust collecting boxes (49) arranged, the two dust collecting boxes (49) are symmetrically distributed on the surface of the inner shell (6), there are three dust collecting fans (51) arranged, the three dust collecting fans (51) are symmetrically distributed around the surface center of the rotating shaft (50) in the box.

7. A modular integrated protection device according to claim 6, characterized in that: The auxiliary component (3) comprises an auxiliary belt (64), the inner wall of the auxiliary belt (64) is rotatably connected to an auxiliary shaft (65), the end face of the auxiliary shaft (65) is rotatably connected to a top clamping plate (66), the end face of the vertical shaft (61) away from the connecting hole plate (62) is clamped with the inner wall of the output shaft (22) away from the output sleeve plate (21), the number of the connecting hole plates (62) is two, the two connecting hole plates (62) are symmetrically distributed on the surface of the top plate (8), the end face of the connecting plate shaft (63) is rotatably connected to the inner wall of the top plate (8), the surface of the connecting plate shaft (63) is rotatably connected to the inner wall of the auxiliary belt (64) away from the auxiliary shaft (65), the number of the top clamping plates (66) is four, the four top clamping plates (66) are symmetrically distributed around the surface center of the transverse plate (9), and the surface of the top clamping plate (66) away from the auxiliary shaft (65) is fixedly connected to the bottom plate of the transverse plate (9).

8. A modular integrated protection device according to claim 7, characterized in that: An end surface of the auxiliary shaft (65) away from the top clamping plate (66) is fixedly connected to an output bevel gear (67), a surface of the output bevel gear (67) is meshingly connected to a transmission bevel gear (68), an inner wall of the transmission bevel gear (68) is fixedly connected to a wind direction fan (69), a surface of the wind direction fan (69) away from the transmission bevel gear (68) is fixedly connected to a wind direction fan shaft (70), and an end surface of the wind direction fan (69) away from the transmission bevel gear (68) is rotatably connected to the inner wall of the housing (5).

9. A modular integrated protection device according to claim 8, characterized in that: The inner wall of the end surface of the output helical gear (67) away from the auxiliary shaft (65) is rotatably connected to a helical gear connecting shaft (71), the surface of the helical gear connecting shaft (71) is fixedly connected to a shaft fan plate (72), the surface of the shaft fan plate (72) is fixedly connected to a fan plate spring (73), the surface of the output shaft (22) close to the output helical gear (67) is fixedly connected to an auxiliary sleeve shaft (74), the surface of the auxiliary sleeve shaft (74) is fixedly connected to an auxiliary gear fan (75), the number of the shaft fan plates (72) is two, the two shaft fan plates (72) are symmetrically distributed with respect to the end surface of the helical gear connecting shaft (71), the number of the auxiliary gear fans (75) is four, the four auxiliary gear fans (75) are symmetrically distributed with respect to the surface center of the auxiliary sleeve shaft (74).