Carbon emission reduction device for transformer substation
By designing a self-cleaning carbon emission reduction device, and utilizing a combination of vibration and heating plates, the problem of impurities adhering to the filter plates and activated carbon surfaces is solved, achieving efficient air filtration and extending the device's service life.
Patent Information
- Application Number
- CN202511445012.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-10
- Publication Date
- 2026-01-02
AI Technical Summary
In existing carbon reduction devices, impurities accumulate on the surfaces of filter plates and activated carbon after long-term use, leading to a decrease in filtration efficiency and requiring frequent replacement, which affects the overall carbon reduction effect of the device.
A device was designed that includes a carbon reduction body, a filter baffle, carbon reduction activated carbon, a carbon reduction heating plate, and a replacement and protection mechanism. Through the design of vibration and heating plate, impurities are prevented from adhering, and the filter baffle and activated carbon are self-cleaning, avoiding frequent replacement.
It effectively keeps the filter baffles and activated carbon clean, improves air filtration efficiency, extends the service life of the device, and reduces maintenance frequency.
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Figure CN121243883A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of environmental protection, and in particular relates to a carbon emission reduction device for a transformer substation. BACKGROUND
[0002] The transformer substation has a large number of core station equipment such as transformers, circuit breakers and cables inside, and the station equipment uses organic insulating materials. The organic insulating materials are hydrocarbons. The organic insulating materials will produce carbon-containing gas under conditions such as high temperature, aging or electric arc of the equipment. The carbon-containing gas needs to be discharged to the carbon emission reduction device. The carbon emission reduction device filters the carbon-containing gas to reduce carbon, and finally discharges it to the air, thereby ensuring the environment.
[0003] According to CN202211116452.7, the present application relates to an activated carbon filter module and an air purification device. The activated carbon filter module comprises: a base body, a plurality of accommodating through holes are formed on the base body, the hole wall of the accommodating through hole is made of conductive material, and the conductive material is suitable for grounding; and an activated carbon filler filled in the accommodating through hole of the base body. The hole wall of the accommodating through hole of the activated carbon filter module of the present application is composed of conductive material, and the conductive material is grounded. Even if the base body is rich in electric charge, the conductive material can also guide the electric charge away, thereby eliminating the area electric field formed by the polypropylene framework, so that the water entering the accommodating through hole is not easy to be ionized, and thus H+, OH- and other active substances are not easy to be produced, so that the synthesis speed of small molecule organic acids in the activated carbon area is accelerated. Therefore, the activated carbon filter module of the present application can overcome the defects of short service life and low utilization rate of the activated carbon filter module in the prior art, and it is not easy to produce H+, OH- and other active substances.
[0004] However, the carbon emission reduction device usually filters the gas by means of the filter plate and the activated carbon structure. However, when a large amount of gas continuously enters the inside of the device, the surface of the filter plate and the activated carbon will gradually adhere to a large amount of impurities in the long-term carbon emission reduction process. These impurities will significantly reduce the filtering efficiency of the filter plate and the activated carbon on the gas, thereby affecting the overall carbon emission reduction effect of the device. SUMMARY
[0005] Therefore, the present application provides a carbon emission reduction device for a transformer substation, which can ensure that the filter baffle and the carbon emission reduction activated carbon are clean at all times, ensure the air filtering efficiency of the filter baffle and the carbon emission reduction activated carbon, and avoid the problem that the surface of the filter baffle and the carbon emission reduction activated carbon is attached with impurities, which affects the air filtering efficiency. At the same time, the problem of replacing the filter baffle and the carbon emission reduction activated carbon when the carbon emission reduction device is used is avoided.
[0006] The application provides a carbon emission reduction device for a transformer substation, which comprises a carbon emission reduction main body, carbon emission reduction supporting legs, an air inlet pipeline, an air outlet pipeline, a protective shield, mounting blocks, filter baffles, carbon emission reduction activated carbon, a carbon emission reduction heating plate, a replacement protection mechanism and a filter neat structure.
[0007] Further, the replacement protection mechanism comprises a protective groove and a protective pivot.
[0008] Further, the replacement protection mechanism further comprises a protective torsional spring and a handle groove.
[0009] Further, the filter neat structure comprises mounting blocks and mounting springs.
[0010] Further, the filter neat structure further includes: installation jack and installation plug; the installation jack is provided with six groups, and six groups of installation jacks are respectively arranged on the front side of the inner end face of the six groups of installation blocks; the installation plug is provided with six groups, and six groups of installation plugs are respectively fixedly connected to the outer end face of the six groups of installation blocks, and the six groups of installation plugs are respectively connected to the six groups of installation jacks.
[0011] Further, the filter neat structure further includes: power motor and power rotating shaft; the power motor is fixedly connected to the upper side of the right end face of the carbon reduction main body; the power rotating shaft is rotatably connected to the upper side of the inside of the carbon reduction main body, the power motor rotating shaft and the power rotating shaft are coaxially fixedly connected, and the power rotating shaft and the carbon reduction heating plate are fixedly connected.
[0012] Further, the filter neat structure further includes: power bevel gear, connecting rotating shaft and connecting bevel gear; the power bevel gear is provided with two groups, and the two groups of power bevel gears are coaxially fixedly connected to the left and right sides of the power rotating shaft; the connecting rotating shaft is provided with two groups, and the two groups of connecting rotating shafts are rotatably connected to the inside of the left and right end faces of the carbon reduction main body; the connecting bevel gear is provided with two groups, and the two groups of connecting bevel gears are coaxially fixedly connected to the upper sides of the two groups of connecting rotating shafts, and the two groups of connecting bevel gears are respectively engaged with the two groups of power bevel gears to form a bevel gear transmission mechanism.
[0013] Further, the filter neat structure further includes: neat bevel gear, neat rotating shaft and direction-changing bevel gear; the neat bevel gear is provided with six groups, and the six groups of neat bevel gears are coaxially fixedly connected to the two groups of connecting rotating shafts; the neat rotating shaft is provided with six groups, and the six groups of neat rotating shafts are rotatably connected to the inside of the left and right end faces of the carbon reduction main body; the direction-changing bevel gear is provided with six groups, and the six groups of direction-changing bevel gears are coaxially fixedly connected to the outer end faces of the six groups of neat rotating shafts, and the six groups of direction-changing bevel gears are respectively engaged with the six groups of neat bevel gears to form a bevel gear transmission mechanism.
[0014] Further, the filter neat structure further includes: neat cam; the neat cam is provided with six groups, and the six groups of neat cams are fixedly connected to the inner sides of the six groups of neat rotating shafts, and the six groups of neat cams are rotatably arranged at the middle positions of the lower end faces of the six groups of installation blocks.
[0015] Further, the filter neat structure further includes: neat spring; the neat spring is provided with multiple groups, and the multiple groups of neat springs are fixedly connected to the inside of the left and right end faces of the carbon reduction main body, and the multiple groups of neat springs are elastically connected to the front and back sides of the lower end faces of the six groups of installation blocks. Beneficial effects
[0016] The application realizes that when the filter baffle and the carbon reduction activated carbon are installed inside the carbon reduction main body, the protective guard plate protects the filter baffle and the carbon reduction activated carbon inside, when the carbon reduction emission device is in use, the filter baffle and the carbon reduction activated carbon are vibrated, and the problem that the front side of the filter baffle and the carbon reduction activated carbon is exposed to the outside and is easy to cause personnel injury is avoided, and normal use of the device is ensured.
[0017] In addition, by adopting the filter cleaning structure, when the carbon reduction emission device is in use, the filter baffle and the carbon reduction activated carbon are vibrated when the carbon reduction heating plate rotates to heat the air, the impurities on the surface of the filter baffle and the carbon reduction activated carbon are vibrated down, the filter baffle and the carbon reduction activated carbon are kept clean at all times, the air filtering efficiency of the filter baffle and the carbon reduction activated carbon is ensured, the impurities are vibrated down and fall to the lower side of the equipment for unified collection, the problem that the surface of the filter baffle and the carbon reduction activated carbon is attached with impurities to affect the air filtering efficiency is avoided, and the problem that the filter baffle and the carbon reduction activated carbon are replaced when the carbon reduction emission device is in use is avoided, and the staff can conveniently use the carbon reduction emission device. BRIEF DESCRIPTION OF DRAWINGS
[0018] In order to more clearly illustrate the technical solutions of the embodiments of the application, the drawings of the embodiments will be briefly introduced below.
[0019] The drawings in the following description only relate to some embodiments of the application, and are not a limitation on the application.
[0020] In the drawings: Figure 1 is a structure schematic view of a front view of the carbon reduction emission device of the embodiment of the application.
[0021] Figure 2 is a structure schematic view of a split of the carbon reduction emission device of the embodiment of the application.
[0022] Figure 3 is a structure schematic view of a protective guard plate connection of the embodiment of the application.
[0023] Figure 4 is a structure schematic view of a filter cleaning structure overall transmission of the embodiment of the application.
[0024] Figure 5 is a structure schematic view of the filter baffle and the carbon reduction activated carbon installed in the installation plug of the embodiment of the application.
[0025] Figure 6 is a structure schematic view of an installation pry block connection of the embodiment of the application.
[0026] Figure 7 is a structure schematic view of a carbon reduction heating plate connection of the embodiment of the application.
[0027] Figure 8 is a structural schematic diagram of a filter neat structure right side transmission of an embodiment of the present application.
[0028] Figure 9 is a structural schematic diagram of a filter neat structure part of an embodiment of the present application.
[0029] List of reference signs 1, carbon reduction main body; 101, protection groove; 2, carbon reduction support leg; 3, air inlet pipe; 4, exhaust pipe; 5, protection rotating shaft; 501, protection torsional spring; 6, protection shield; 601, handle recess; 7, mounting plug; 701, mounting socket; 702, neat spring; 8, filter baffle; 9, carbon reduction activated carbon; 10, mounting break block; 1001, mounting spring; 1002, mounting bolt; 11, power motor; 12, power rotating shaft; 1201, power bevel gear; 13, carbon reduction heating plate; 14, connecting rotating shaft; 1401, connecting bevel gear; 1402, neat bevel gear; 15, neat rotating shaft; 1501, direction changing bevel gear; 1502, neat cam. DETAILED DESCRIPTION
[0030] Example one: please refer to Figures 1 to 3 as shown: The present application provides a kind of carbon emission reduction device for substation, including carbon reduction main body 1, carbon reduction support leg 2, air inlet pipe 3, exhaust pipe 4, protection shield 6, mounting plug 7, filter baffle 8, carbon reduction activated carbon 9, carbon reduction heating plate 13 and replacement protection mechanism;Carbon reduction support leg 2 is provided with four groups, four groups of carbon reduction support leg 2 are respectively fixedly connected in carbon reduction main body 1 lower end surface four corners;Air inlet pipe 3 is fixedly connected in carbon reduction main body 1 upper end surface middle position;Exhaust pipe 4 is fixedly connected in carbon reduction main body 1 left end surface lower side;Protection shield 6 is rotated in carbon reduction main body 1 front end surface middle position;Mounting plug 7 is provided with six groups, six groups of mounting plug 7 are respectively slidably connected in carbon reduction main body 1 inner end surface left and right sides;Filter baffle 8 is provided with two groups, two groups of filter baffle 8 are respectively insertedly connected in the inner end surface of four groups of mounting plug 7 on the upper and lower sides, two groups of filter baffle 8 are respectively located in carbon reduction main body 1, two groups of filter baffle 8 are located in the rear side of protection shield 6;Carbon reduction activated carbon 9 is insertedly connected in the inner end surface of middle two groups of mounting plug 7, carbon reduction activated carbon 9 is located in carbon reduction main body 1, carbon reduction activated carbon 9 is located in the inner side of two groups of filter baffle 8, carbon reduction activated carbon 9 is located in the rear side of protection shield 6;Carbon reduction heating plate 13 is rotated in carbon reduction main body 1 inner end surface upper side;Replacement protection mechanism is set in carbon reduction main body 1 front end surface.
[0031] Wherein, the replacement protection mechanism comprises: a protection groove 101 and a protection rotating shaft 5; the protection groove 101 is arranged in the middle of the front end surface of the carbon reduction main body 1, and is a rectangular structure with a thickness of 2mm; the protection cover plate 6 rotates in the protection groove 101; the protection rotating shaft 5 is rotatably connected to the inside of the front end surface of the carbon reduction main body 1, and is fixedly connected to the left side of the protection cover plate 6; in use, the protection cover plate 6 is installed on the front end surface of the carbon reduction main body 1 through the protection rotating shaft 5, and rotates in the protection groove 101; the protection cover plate 6 protects the filter baffle 8 and the carbon reduction activated carbon 9 in the protection groove 101.
[0032] Wherein, the replacement protection mechanism further comprises: a protection torsional spring 501 and a handle groove 601; the protection torsional spring 501 is fixedly connected to the inside of the left side of the front end surface of the carbon reduction main body 1, and is elastically connected to the lower side of the protection rotating shaft 5; the handle groove 601 is arranged on the right side of the front end surface of the protection cover plate 6; in use, the staff puts his hand into the handle groove 601 to rotate the protection cover plate 6, which drives the protection rotating shaft 5 to rotate, and the protection rotating shaft 5 drives the protection torsional spring 501 to stretch and retract; the elastic reset of the protection torsional spring 501 drives the protection cover plate 6 to rotate into the protection groove 101, so that the protection cover plate 6 protects the filter baffle 8 and the carbon reduction activated carbon 9 in the carbon reduction main body 1.
[0033] The specific use and effect of the embodiment one are as follows: in use, the protection cover plate 6 is installed on the front end surface of the carbon reduction main body 1 through the protection rotating shaft 5, and rotates in the protection groove 101; the protection cover plate 6 protects the filter baffle 8 and the carbon reduction activated carbon 9 in the protection groove 101; the staff puts his hand into the handle groove 601 to rotate the protection cover plate 6, which drives the protection rotating shaft 5 to rotate, and the protection rotating shaft 5 drives the protection torsional spring 501 to stretch and retract; the elastic reset of the protection torsional spring 501 drives the protection cover plate 6 to rotate into the protection groove 101, so that the protection cover plate 6 protects the filter baffle 8 and the carbon reduction activated carbon 9 in the carbon reduction main body 1, and realizes protection after the filter baffle 8 and the carbon reduction activated carbon 9 are installed in the carbon reduction main body 1. Embodiment two
[0034] Based on the embodiment one, please refer to Figures 4 to 9 as shown: The application provides a carbon emission reduction device for a transformer substation, which also comprises a filtering and cleaning structure arranged in the carbon emission reduction body 1, and the filtering and cleaning structure comprises: installation prying blocks 10 and installation springs 1001; the six groups of installation prying blocks 10 are respectively and slidably connected to the left and right sides of the front end surfaces of the two groups of filtering baffle plates 8 and carbon emission reduction activated carbons 9, and the front sides of the six groups of installation prying blocks 10 are respectively slidably arranged on the front end surfaces of the two groups of filtering baffle plates 8 and carbon emission reduction activated carbons 9; the six groups of installation springs 1001 are respectively and fixedly connected to the front end surfaces of the two groups of filtering baffle plates 8 and carbon emission reduction activated carbons 9, and the six groups of installation springs 1001 are respectively and elastically connected to the inner end surfaces of the six groups of installation prying blocks 10; in the use process, the filtering baffle plates 8 and the carbon emission reduction activated carbons 9 are inserted into the installation insertion blocks 7, the installation prying blocks 10 are slid by the staff, the installation prying blocks 10 drive the installation springs 1001 to stretch and retract, and the elastic force of the installation springs 1001 drives the installation prying blocks 10 to reset.
[0035] The filtering and cleaning structure further comprises installation insertion holes 701 and installation insertion pins 1002; the six groups of installation insertion holes 701 are respectively formed in the front sides of the inner end surfaces of the six groups of installation insertion blocks 7; the six groups of installation insertion pins 1002 are respectively and fixedly connected to the outer end surfaces of the six groups of installation prying blocks 10, and the six groups of installation insertion pins 1002 are respectively and plug-connectedly connected to the six groups of installation insertion holes 701; in the use process, the installation prying blocks 10 drive the installation insertion pins 1002 to slide, and the installation insertion pins 1002 are slid and inserted into the installation insertion holes 701, so that the filtering baffle plates 8 and the carbon emission reduction activated carbons 9 are installed and fixed on the installation insertion blocks 7, and the filtering baffle plates 8 and the carbon emission reduction activated carbons 9 filter and reduce the carbon in the air in the carbon emission reduction body 1.
[0036] The filtering and cleaning structure further comprises a power motor 11 and a power rotating shaft 12; the power motor 11 is fixedly connected to the upper side of the right end surface of the carbon emission reduction body 1; the power rotating shaft 12 is rotatably connected to the upper side in the carbon emission reduction body 1, the power motor 11 shaft and the power rotating shaft 12 are coaxially and fixedly connected, and the power rotating shaft 12 is fixedly connected to the carbon emission reduction heating plate 13; in the use process, the power motor 11 shaft rotates to drive the power rotating shaft 12 to rotate, the power rotating shaft 12 rotates to drive the carbon emission reduction heating plate 13 to rotate, the carbon emission reduction heating plate 13 rotates to heat the air after filtering, and the air is discharged after detecting the air quality.
[0037] The filter neat structure further comprises: a power bevel gear 1201, a connecting shaft 14 and a connecting bevel gear 1401; the power bevel gear 1201 is provided in two groups, and the two groups of power bevel gears 1201 are coaxially fixedly connected to the left and right sides of the power rotating shaft 12; the connecting shaft 14 is provided in two groups, and the two groups of connecting shafts 14 are rotatably connected to the inner middle positions of the left and right end faces of the carbon reduction main body 1; the connecting bevel gear 1401 is provided in two groups, and the two groups of connecting bevel gears 1401 are coaxially fixedly connected to the upper sides of the two groups of connecting shafts 14; the two groups of connecting bevel gears 1401 are engaged with the two groups of power bevel gears 1201 to form a bevel gear transmission mechanism; in the use process, the power rotating shaft 12 drives the power bevel gear 1201 to rotate, the power bevel gear 1201 drives the engaged connecting bevel gear 1401 to rotate, and the connecting bevel gear 1401 drives the connecting shaft 14 to rotate.
[0038] The filter neat structure further comprises: a neat bevel gear 1402, a neat rotating shaft 15 and a direction-changing bevel gear 1501; the neat bevel gear 1402 is provided in six groups, and the six groups of neat bevel gears 1402 are coaxially fixedly connected to the two groups of connecting shafts 14; the neat rotating shaft 15 is provided in six groups, and the six groups of neat rotating shafts 15 are rotatably connected to the inner sides of the left and right end faces of the carbon reduction main body 1; the direction-changing bevel gear 1501 is provided in six groups, and the six groups of direction-changing bevel gears 1501 are coaxially fixedly connected to the outer end faces of the six groups of neat rotating shafts 15; the six groups of direction-changing bevel gears 1501 are engaged with the six groups of neat bevel gears 1402 to form a bevel gear transmission mechanism; in the use process, the connecting shaft 14 drives the neat bevel gear 1402 to rotate, the neat bevel gear 1402 drives the engaged direction-changing bevel gear 1501 to rotate, and the direction-changing bevel gear 1501 drives the neat rotating shaft 15 to rotate.
[0039] The filter neat structure further comprises: a neat cam 1502; the neat cam 1502 is provided in six groups, and the six groups of neat cams 1502 are fixedly connected to the inner sides of the six groups of neat rotating shafts 15; the six groups of neat cams 1502 are rotatably arranged at the middle positions of the lower end faces of the six groups of mounting plug blocks 7; in the use process, the neat rotating shaft 15 drives the neat cam 1502 to rotate, and the neat cam 1502 drives the mounting plug block 7 to slide.
[0040] In the filter neat structure, the neat spring 702 is arranged in multiple groups, and the multiple groups of neat springs 702 are fixedly connected to the inner sides of the left and right end faces of the carbon reduction main body 1, respectively, and are elastically connected to the front and rear sides of the lower end face of the six groups of mounting plug blocks 7, respectively.
[0041] In the filter neat structure, the neat spring 702 is arranged in multiple groups, and the multiple groups of neat springs 702 are fixedly connected to the inner sides of the left and right end faces of the carbon reduction main body 1, respectively, and are elastically connected to the front and rear sides of the lower end face of the six groups of mounting plug blocks 7, respectively. In the filter neat structure, the neat spring 702 is arranged in multiple groups, and the multiple groups of neat springs 702 are fixedly connected to the inner sides of the left and right end faces of the carbon reduction main body 1, respectively, and are elastically connected to the front and rear sides of the lower end face of the six groups of mounting plug blocks 7, respectively.
Claims
1. A carbon emission reduction device for substations, comprising: The carbon reduction body (1), carbon reduction support legs (2), air intake pipe (3), exhaust pipe (4), protective plate (6), mounting blocks (7), filter baffle (8), carbon reduction activated carbon (9), carbon reduction heating plate (13), replacement protective mechanism and filter cleaning structure; the carbon reduction support legs (2) are provided in four sets, and the four sets of carbon reduction support legs (2) are respectively fixedly connected to the four corners of the lower end face of the carbon reduction body (1); the air intake pipe (3) is fixedly connected to the middle position of the upper end face of the carbon reduction body (1); the exhaust pipe (4) is fixedly connected to the lower side of the left end face of the carbon reduction body (1); the protective plate (6) rotates to the middle position of the front end face of the carbon reduction body (1); the mounting blocks (7) are provided in six sets, and the six sets of mounting blocks (7) are respectively slidably connected to the carbon reduction body (1). The inner end face is on both sides; the filter baffle (8) is provided in two sets, and the two sets of filter baffle (8) are respectively inserted and connected to the inner end face of the four sets of mounting blocks (7) on the upper and lower sides. The two sets of filter baffle (8) are respectively located inside the carbon reduction body (1) and the two sets of filter baffle (8) are respectively located behind the protective plate (6); the carbon reduction activated carbon (9) is inserted and connected to the inner end face of the two sets of mounting blocks (7) in the middle. The carbon reduction activated carbon (9) is located inside the carbon reduction body (1). The carbon reduction activated carbon (9) is located inside the two sets of filter baffle (8) and behind the protective plate (6); the carbon reduction heating plate (13) rotates on the upper side of the inner end face of the carbon reduction body (1); the replacement protective mechanism is set on the front end face of the carbon reduction body (1); the filter cleaning structure is set inside the carbon reduction body (1).
2. The carbon emission reduction device for substations as described in claim 1, characterized in that: The replacement protective mechanism includes: a protective groove (101) and a protective rotating shaft (5); the protective groove (101) is located in the middle of the front end face of the carbon reduction body (1), the protective groove (101) is a rectangular structure with a thickness of 2mm, and the protective plate (6) rotates inside the protective groove (101); the protective rotating shaft (5) is rotatably connected inside the front end face of the carbon reduction body (1), and the protective rotating shaft (5) and the protective plate (6) are fixedly connected on the left side.
3. The carbon emission reduction device for substations as described in claim 2, characterized in that: The replacement protective mechanism also includes: a protective torsion spring (501) and a handle groove (601); the protective torsion spring (501) is fixedly connected to the left side of the front end face of the carbon reduction body (1), and the protective torsion spring (501) is elastically connected to the lower side of the protective rotating shaft (5); the handle groove (601) is opened on the right side of the front end face of the protective plate (6).
4. The carbon emission reduction device for substations as described in claim 1, characterized in that: The filtration structure includes: mounting blocks (10) and mounting springs (1001); there are six sets of mounting blocks (10), which are slidably connected to the left and right sides of the front end face of the two sets of filter baffles (8) and the carbon-reducing activated carbon (9), respectively, and the front sides of the six sets of mounting blocks (10) are slidably on the front end face of the two sets of filter baffles (8) and the carbon-reducing activated carbon (9); there are six sets of mounting springs (1001), which are fixedly connected to the front end face of the two sets of filter baffles (8) and the carbon-reducing activated carbon (9), respectively, and the six sets of mounting springs (1001) are elastically connected to the inner end face of the six sets of mounting blocks (10).
5. The carbon emission reduction device for substations as described in claim 4, characterized in that: The filter cleaning structure also includes: mounting holes (701) and mounting pins (1002); there are six sets of mounting holes (701), and the six sets of mounting holes (701) are respectively opened on the front side of the inner end face of the six sets of mounting blocks (7); there are six sets of mounting pins (1002), and the six sets of mounting pins (1002) are respectively fixedly connected to the outer end face of the six sets of mounting blocks (10), and the six sets of mounting pins (1002) are respectively plugged into the six sets of mounting holes (701).
6. The carbon emission reduction device for substations as described in claim 1, characterized in that: The filtration and cleaning structure also includes: a power motor (11) and a power shaft (12); the power motor (11) is fixedly connected to the upper side of the right end face of the carbon reduction body (1); the power shaft (12) is rotatably connected to the upper side inside the carbon reduction body (1), the power motor (11) shaft and the power shaft (12) are coaxially fixedly connected, and the power shaft (12) and the carbon reduction heating plate (13) are fixedly connected.
7. The carbon emission reduction device for a substation as described in claim 6, characterized in that: The filtration and cleaning structure also includes: a power bevel gear (1201), a connecting shaft (14), and a connecting bevel gear (1401); the power bevel gear (1201) is provided in two sets, and the two sets of power bevel gears (1201) are coaxially fixedly connected to the left and right sides of the power shaft (12); the connecting shaft (14) is provided in two sets, and the two sets of connecting shafts (14) are rotatably connected to the middle position inside the left and right end faces of the carbon reduction body (1); the connecting bevel gear (1401) is provided in two sets, and the two sets of connecting bevel gears (1401) are coaxially fixedly connected to the upper side of the two sets of connecting shafts (14), and the two sets of connecting bevel gears (1401) mesh with the two sets of power bevel gears (1201) to form a bevel gear transmission mechanism.
8. The carbon emission reduction device for a substation as described in claim 7, characterized in that: The filtration and cleaning structure also includes: cleaning bevel gears (1402), cleaning shafts (15), and reversing bevel gears (1501); there are six sets of cleaning bevel gears (1402), and the six sets of cleaning bevel gears (1402) are coaxially fixedly connected to two sets of connecting shafts (14); there are six sets of cleaning shafts (15), and the six sets of cleaning shafts (15) are rotatably connected to the inside of the left and right end faces of the carbon reduction body (1); there are six sets of reversing bevel gears (1501), and the six sets of reversing bevel gears (1501) are coaxially fixedly connected to the outer end faces of the six sets of cleaning shafts (15), and the six sets of reversing bevel gears (1501) mesh with the six sets of cleaning bevel gears (1402) to form a bevel gear transmission mechanism.
9. The carbon emission reduction device for a substation as described in claim 8, characterized in that: The filtration and cleaning structure also includes: cleaning cams (1502); there are six sets of cleaning cams (1502), and the six sets of cleaning cams (1502) are fixedly connected to the inner side of the six sets of cleaning rotating shafts (15), and the six sets of cleaning cams (1502) rotate at the middle position of the lower end face of the six sets of mounting blocks (7).
10. The carbon emission reduction device for a substation as described in claim 1, characterized in that: The filter cleaning structure also includes a cleaning spring (702); multiple sets of cleaning springs (702) are provided, and the multiple sets of cleaning springs (702) are fixedly connected to the inside of the left and right end faces of the carbon reduction body (1), and the multiple sets of cleaning springs (702) are elastically connected to the front and rear sides of the lower end face of the six sets of mounting blocks (7).
Citation Information
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