A kind of power transmission and transformation project concrete slope anti-calcification coating equipment

By spraying a water-based concrete protectant onto the concrete slope to form a sealing film, the problem of steel reinforcement rusting caused by concrete calcification is solved, extending the service life of the slope and reducing maintenance frequency and costs.

CN116764886BActive Publication Date: 2026-05-12STATE GRID FUJIAN ELECTRIC POWER RES INST +2
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
STATE GRID FUJIAN ELECTRIC POWER RES INST
Filing Date
2023-06-20
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

Existing concrete slope protection equipment cannot effectively inhibit concrete calcification, leading to steel rust and slope structure damage, which increases monitoring and maintenance costs.

Method used

The system employs a paint spraying mechanism and a material coating mechanism, using a water-based concrete protective agent (fluorocarbon resin emulsion, silane modifier, and film-forming aid) to form a sealing film, inhibiting carbon dioxide from entering the concrete interior and protecting the reinforcing steel from rusting.

Benefits of technology

It effectively prevents concrete calcification, extends the service life of slopes, reduces maintenance frequency and costs, and ensures that steel bars are not exposed to the air.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of power transmission and transformation engineering concrete slope anti-calcification coating equipment, including assembly mainboard, the top of the assembly mainboard is provided with coating spraying mechanism, the bottom of the assembly mainboard is separately provided with material coating mechanism and side auxiliary wheel mechanism, the coating spraying mechanism includes storage tank, the top of the assembly mainboard is fixedly installed with intersection box, using the mutual coordination of injection assembly and coating component, and by the equipment of uniform velocity movement, protection liquid can be evenly covered on frame surface, simultaneously using the chemical properties of the protective reagent, it can quickly penetrate into concrete layer inside, and film layer is built in soil layer inside, to inhibit the entry of carbon dioxide in air, effectively avoid soil layer to fall off and lead to steel material directly exposed to outside air.
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Description

Technical Field

[0001] This invention relates to a coating equipment for preventing calcification of concrete slopes in power transmission and transformation projects, belonging to the field of slope protection technology. Background Technology

[0002] The main material used in the artificially constructed slopes of power transmission and transformation projects is reinforced concrete. Its function is to build a frame structure on the surface of naturally formed soil slopes, thereby increasing the overall strength of the slope and inhibiting soil erosion caused by soil displacement. However, the completed frame will be exposed to the external environment for a long time, which makes it very easy for carbon dioxide in the air to penetrate into the concrete layer. Cement mixed with water is alkaline calcium hydroxide, which reacts with carbon dioxide to form calcium carbonate, causing the dried concrete to become loose and powdery.

[0003] However, existing concrete slope protection equipment has the following shortcomings:

[0004] When concrete material detaches severely, it exposes the steel reinforcement in the slope of power transmission and transformation projects to the air. When the metal comes into contact with water, it reacts chemically with oxygen in the air, causing severe rusting on the surface of the steel reinforcement and continuous expansion of the internal structure until it breaks. To address this problem, current technologies for slope protection mostly involve refilling the detached concrete, but this still cannot prevent the calcification of the concrete layer. This not only increases the intensity of manual monitoring of the slope, but also consumes a lot of time and cost in repeatedly repairing the slope structure. Summary of the Invention

[0005] The purpose of this invention is to provide a coating device for preventing calcification of concrete slopes in power transmission and transformation projects, so as to solve the problems mentioned in the background art.

[0006] The technical solution of the present invention is as follows:

[0007] A coating device for preventing calcification of concrete slopes in power transmission and transformation projects, comprising:

[0008] The assembly motherboard and the paint spraying mechanism, material coating mechanism and side auxiliary wheel mechanism set on the assembly motherboard;

[0009] The paint spraying mechanism includes a storage tank, a booster pump, a manifold, and a row of spray guns. The output ports of the row of spray guns are aligned with the rollers of the material coating mechanism. The storage tank and the manifold are connected by the booster pump, and the liquid inlet of each spray gun is connected to the manifold through a diversion pipe.

[0010] The storage bin contains a water-based concrete protective agent.

[0011] The material coating mechanism includes a U-shaped frame, a roller connected to the U-shaped frame, and a swing device for controlling the rotation of the U-shaped frame. Nylon brushes are evenly distributed on the outer wall of the roller.

[0012] Preferably, a bracket is fixedly installed on the top of the assembly motherboard. The bracket has a pre-set circular hole inside. An inner connecting rod is movably inserted into the inner wall of each circular hole. A locking collar is fixedly fitted onto the outer wall of each inner connecting rod. Each spray gun is inserted into the inner wall of the corresponding locking collar.

[0013] Preferably, two connecting plates are fixedly installed on the top of the assembly motherboard. The interior of each of the two connecting plates is pre-set with positioning holes. A set of metal rods is fixedly inserted on the opposite side of each of the two connecting plates. A connecting collar is fixedly sleeved between the outer walls of the two sets of metal rods. The booster pump is inserted between the inner wall of the corresponding positioning hole and the inner wall of the connecting collar.

[0014] Preferably, a one-way valve is installed on the top of the storage box, and a feed pipe is fixedly connected to the outer wall of the one-way valve.

[0015] Preferably, the input end of each booster pump is fixedly connected to a primary release pipe, the liquid inlet end of each primary release pipe penetrates the rear surface of the storage tank and is connected to the interior of the storage tank; the output end of each booster pump is fixedly connected to a secondary release pipe, the liquid outlet end of each secondary release pipe penetrates the outer wall of the manifold and is connected to the interior of the manifold.

[0016] Preferably, the swing device includes a reinforcing plate, two extension joints are fixedly installed at the bottom of the reinforcing plate, a first crossbar is fixedly inserted between the two inner walls of each of the two extension joints, a movable frame is movably fitted on the outer walls of the two first crossbars, an inner slot is opened at the top of the two movable frames, a second crossbar is fixedly inserted between the two inner walls of the inner slot, a first pneumatic rod is installed on the assembly main plate, the output shaft of the first pneumatic rod is movably fitted on the outer wall of the second crossbar, a U-shaped frame is fixed between the outer walls of the two movable frames, a linkage rod is movably inserted between the two inner walls of the U-shaped frame, and the roller is fixedly fitted on the outer wall of the linkage rod.

[0017] Preferably, the side auxiliary wheel mechanism includes a first base, which is fixedly installed at the bottom of the assembly main board. The inner wall of the first base is provided with a slide rail, and a movable plate is movably inserted between the inner surface walls of each set of slide rails.

[0018] The outer wall of each movable plate is welded with an L-shaped connector. The L-shaped connector has an annular groove inside. An external rod is fixedly inserted at the center of the L-shaped connector. The outer wall of each external rod is movably fitted with a longitudinal wheel, which is placed inside the corresponding annular groove.

[0019] Preferably, the interior of the first base is provided with mounting holes, and a second pneumatic rod is fixedly inserted into the inner wall of the mounting hole, and the output end of the second pneumatic rod is connected to the movable plate.

[0020] Preferably, a second base is fixedly installed at the bottom of the assembly motherboard. Rectangular grooves are provided on both sides of the outer wall of the second base. A drive motor is fixedly installed inside each of the two rectangular grooves. A transmission rod is fixedly connected to the output end of each drive motor. A transverse wheel is fixedly sleeved on the outer wall of each transmission rod.

[0021] Preferably, the fair-faced concrete protective agent comprises fluorocarbon resin emulsion, silane modifier, film-forming aid, and water.

[0022] The present invention has the following beneficial effects:

[0023] This invention employs a paint spraying mechanism and a material coating mechanism. When the equipment moves at a constant speed on the inclined surface of the frame, the paint spraying mechanism continuously transfers liquid from the storage tank to the manifold. This liquid is a concrete protective agent, its main components being fluorocarbon resin emulsion, silane modifier, and film-forming aids. When mixed with an appropriate amount of water, it forms a viscous solution with strong penetrating power, creating a sealing film inside the concrete to inhibit carbon dioxide ingress. As the liquid volume in the manifold gradually increases, its internal pressure also increases, evenly squeezing some liquid into the distribution pipes, which then flow into each spray gun. The liquid is then compressed at the spray gun nozzles, and each spray gun... The liquid is sprayed at high speed onto the surface of a nylon brush. As the roller rolls across the frame surface, it coats the surface with the liquid. The mechanism employs a mechanical transmission method, utilizing the synergy between the spraying and coating components. The uniformly moving equipment ensures that the protective liquid is evenly covered on the frame surface. Simultaneously, the chemical properties of the protective agent allow it to quickly penetrate into the concrete layer and form a thin film within the soil layer. This inhibits the entry of carbon dioxide from the air, effectively preventing soil erosion that could expose the reinforcing steel to the outside air. This addresses the shortcomings of existing protective equipment, extends the service life of the slope, and avoids repeated slope repairs, which would lead to a continuous increase in monitoring time and costs. Attached Figure Description

[0024] Figure 1 This is a perspective view of the main structure of the present invention;

[0025] Figure 2This is a side view of the three-dimensional structure of the present invention;

[0026] Figure 3 This is a perspective view of the bottom side structure of the present invention;

[0027] Figure 4 This is a three-dimensional view of the coating spraying mechanism of the present invention;

[0028] Figure 5 This is a three-dimensional view of the material coating mechanism structure of the present invention;

[0029] Figure 6 This is a perspective view of the side auxiliary wheel mechanism of the present invention;

[0030] Figure 7 for Figure 4 Enlarged 3D view of the structure at point A in the middle;

[0031] Figure 8 for Figure 5 Enlarged 3D view of the structure at point B.

[0032] The reference numerals in the figure are as follows:

[0033] 1. Assemble the motherboard;

[0034] 2. Paint spraying mechanism; 201. Storage tank; 202. One-way valve; 203. Feed pipe; 204. Connecting plate; 205. Positioning hole; 206. Metal rod; 207. Connecting collar; 208. Booster pump; 209. Manifold; 210. Bracket; 211. Round hole; 212. Internal connecting rod; 213. Locking collar; 214. Spray gun; 215. Primary release pipe; 216. Secondary release pipe; 217. Diversion pipe;

[0035] 3. Material coating mechanism; 301. Reinforcing plate; 302. Extension joint; 303. First crossbar; 304. Movable frame; 305. Internal slot; 306. Second crossbar; 307. First pneumatic rod; 308. U-shaped frame; 309. Linkage rod; 310. Roller rod; 311. Nylon brush;

[0036] 4. Side auxiliary wheel mechanism; 401. First base; 402. Slide rail; 403. Mounting hole; 404. Second pneumatic rod; 405. Movable plate; 406. L-shaped connector; 407. Annular groove; 408. External rod; 409. Longitudinal wheel;

[0037] 5. Second base; 6. Rectangular groove; 7. Drive motor; 8. Transmission rod; 9. Horizontal wheel. Detailed Implementation

[0038] The present invention will now be described in detail with reference to the accompanying drawings and specific embodiments.

[0039] Reference Figures 1-8 As shown: It includes an assembly motherboard 1, a paint spraying mechanism 2 is provided on the top of the assembly motherboard 1, and a material coating mechanism 3 and a side auxiliary wheel mechanism 4 are provided on the bottom of the assembly motherboard 1.

[0040] according to Figure 1-4 and Figure 7 As shown, the paint spraying mechanism 2 includes a storage tank 201. A junction box 209 is fixedly installed on the top of the main assembly board 1. A set of metal brackets 210 is fixedly installed on the top of the main assembly board 1. Each of the metal brackets 210 has a pre-set circular hole 211 inside. An inner connecting rod 212 is movably inserted into the inner wall of each circular hole 211. A locking collar 213 is fixedly fitted onto the outer wall of each inner connecting rod 212. A spray gun 214 is fixedly inserted into the inner wall of each locking collar 213. The liquid inlet end of each spray gun 214 is fixedly connected to a diversion pipe 217. The liquid inlet end of the diversion pipe 217 passes through the outer wall of the junction box 209 and is connected to the interior of the junction box 209.

[0041] according to Figure 1-3 , Figure 5 and Figure 8 As shown, the material coating mechanism 3 includes a reinforcing plate 301. Two extension joints 302 are fixedly installed at the bottom of the reinforcing plate 301. A first crossbar 303 is fixedly inserted between the two sides of the inner wall of each of the two extension joints 302. Movable frames 304 are movably fitted on the outer walls of the two first crossbars 303. An inner slot 305 is opened at the top of each of the two movable frames 304. A second crossbar 306 is fixedly inserted between the two sides of the inner wall of each of the two inner slots 305. Two first pneumatic rods 307 are installed inside the assembly main board 1. The output shafts of the two first pneumatic rods 307 are movably fitted on the outer walls of the second crossbars 306. A U-shaped frame 308 is welded between the outer walls of the two movable frames 304. A linkage rod 309 is movably inserted between the two sides of the inner wall of the U-shaped frame 308. A roller 310 is fixedly fitted on the outer wall of the linkage rod 309. Multiple nylon brushes 311 are provided on the outer wall of the roller 310.

[0042] according to Figure 1-2 and Figure 4 As shown, two connecting plates 204 are fixedly installed on the top of the main assembly plate 1. The interior of each connecting plate 204 is pre-set with positioning holes 205. A set of metal rods 206 are fixedly inserted on the opposite side of each connecting plate 204. A connecting collar 207 is fixedly sleeved between the outer walls of the two sets of metal rods 206. By setting the positioning holes 205, the swing amplitude generated by the booster pump 208 during operation can be effectively limited, so that it remains in a relatively static state between the positioning holes 205 and the connecting collar 207, thus ensuring the stability of liquid transportation.

[0043] according to Figure 1-2 and Figure 4 As shown, a booster pump 208 is fixedly inserted between the inner surface wall of each of the two positioning holes 205 and the inner surface wall of the connecting collar 207. The input ends of the two booster pumps 208 are fixedly connected to the primary release pipes 215. The liquid inlet ends of the two primary release pipes 215 penetrate the rear surface of the storage tank 201 and are connected to the interior of the storage tank 201. By setting the primary release pipes 215, when the booster pumps 208 are started, their internal impellers rotate and continuously draw air from the primary release pipes 215, forming an adsorption effect at the liquid inlet end of the primary release pipes 215, and continuously delivering the liquid from the storage tank 201.

[0044] according to Figure 1-2 and Figure 4 As shown, a one-way valve 202 is fixedly connected to the top of the storage tank 201, and a feed pipe 203 is fixedly connected to the outer wall of the one-way valve 202. The output ends of the two booster pumps 208 are both fixedly connected to secondary release pipes 216. The liquid outlets of the two secondary release pipes 216 penetrate the outer wall of the manifold 209 and are connected to the interior of the manifold 209. By setting up secondary release pipes 216 for secondary liquid transportation, the liquid in the storage tank 201 can be gradually transferred to the interior of the manifold 209 under the action of the booster pumps 208.

[0045] according to Figure 1-3 and Figure 6 As shown, the side auxiliary wheel mechanism 4 includes two first bases 401. The tops of the two first bases 401 are fixedly installed on the bottom of the mounting main board 1. Each of the two first bases 401 has a set of slide rails 402 on both sides of its inner wall. A movable plate 405 is movably inserted between the inner surface walls of each set of slide rails 402. By setting the movable plate 405, the width of the equipment can be flexibly adjusted by utilizing the movable connection between the movable plate 405 and the slide rail 402.

[0046] according to Figure 6 As shown, L-shaped joints 406 are welded to the outer walls of both movable plates 405. A set of annular grooves 407 are opened inside the two L-shaped joints 406. An external rod 408 is fixedly inserted at the center of each of the two L-shaped joints 406. A set of longitudinal wheels 409 are movably fitted on the outer walls of the two external rods 408. The outer walls of each of the two sets of longitudinal wheels 409 are placed inside the annular grooves 407. By setting the longitudinal wheels 409, when the equipment is located on the slope of the concrete frame, the longitudinal wheels 409 can be adjusted to fully contact the two sides of the frame by controlling the extension range of the movable plates 405, which reduces the difficulty of the equipment moving forward while positioning the equipment.

[0047] according to Figure 6As shown, each of the two first bases 401 has a set of mounting holes 403 inside. The inner surface of each set of mounting holes 403 is fixedly inserted with a second pneumatic rod 404. The output end of each set of second pneumatic rods 404 is connected to the outer surface of the movable plate 405. By setting the second pneumatic rods 404, the lateral movement of the movable plate 405 can be automatically adjusted.

[0048] according to Figure 2-3 As shown, a second base 5 is fixedly installed on the bottom of the assembly motherboard 1. Rectangular grooves 6 are provided on both sides of the outer wall of the second base 5. Drive motors 7 are fixedly installed inside the two rectangular grooves 6. The wiring terminals of the two drive motors 7 are connected to the internal wiring of the assembly motherboard 1. By setting the drive motors 7, power support can be provided for the forward movement of the equipment.

[0049] according to Figure 3 As shown, the output ends of the two drive motors 7 are fixedly connected to transmission rods 8, and the outer walls of the two transmission rods 8 are fixedly fitted with transverse wheels 9. By setting the transmission rods 8, the power generated by the drive motors 7 can be evenly applied to the transverse wheels 9. When the transverse wheels 9 are in full contact with the surface of the frame, the equipment moves forward at a uniform speed.

[0050] according to Figure 1-3 As shown, the bottom of the storage box 201 is fixedly installed on the top of the assembly main board 1, and the top of the reinforcing plate 301 is fixedly installed on the bottom of the assembly main board 1, thus determining the connection relationship between the storage box 201 and the reinforcing plate 301 and the overall equipment.

[0051] The overall effect of the mechanism is as follows: First, the liquid to be coated is introduced from the feed pipe 203, the one-way valve 202 is opened, and its internal channel is opened until the liquid is fully poured into the storage tank 201.

[0052] The equipment is then moved onto the frame that needs to be processed. At this point, the transverse wheel 9 is in full contact with the frame surface. The first pneumatic rod 307 in the assembly main board 1 is activated. The first transverse connecting rod 303 is connected to the movable frame 304. As the first pneumatic rod 307 extends downward, the angle between the movable frame 304 and the reinforcing plate 301 gradually increases. Since the output shaft of the second transverse connecting rod 306 and the first pneumatic rod 307 is movably connected, there will be no horizontal angle constraint. At this point, the roller 310 in the U-shaped frame 308 is in a downward trend, and finally, the nylon brush 311 installed on it fully covers the frame surface.

[0053] At the same time, the second pneumatic rod 404 in the mounting hole 403 is activated. Utilizing the movable connection between the slide rail 402 and the movable plate 405, the L-shaped connector 406 is scaled according to the width of the frame, and the two sets of longitudinal wheels 409 are adjusted to make full contact with the outside of the frame.

[0054] After the equipment is assembled, the drive motor 7 in the rectangular groove 6 is turned on and acts on the transmission rod 8, driving the transverse wheel 9 to rotate at a constant speed. Utilizing the movable connection between the U-shaped frame 308 and the linkage rod 309 and the external rod 408 and the longitudinal wheel 409, the equipment moves on the inclined surface of the frame. At this time, the booster pump 208 between the positioning hole 205 and the connecting collar 207 is turned on, and its internal impeller rotates, quickly removing the air trapped in the primary release pipe 215 and releasing it at the liquid inlet end of the primary release pipe 215. An adsorption effect is formed, continuously drawing liquid stored in storage tank 201, and then transporting the liquid through primary release pipe 215 and secondary release pipe 216, continuously introducing it into manifold 209. As the liquid in manifold 209 gradually increases, its internal pressure also continuously increases, and some of the liquid is evenly squeezed into diversion pipe 217 and merged into spray gun 214. Then, the liquid is compressed at the nozzle of spray gun 214, and each spray gun 214 sprays the liquid at high speed onto the surface of nylon brush 311.

[0055] At this time, when the roller 310 rolls on the frame surface, it will coat the frame surface with liquid. As the angle of the frame slope increases, the liquid content in the storage tank 201 gradually decreases as the liquid spray volume gradually increases, and eventually all of it is collected in the junction box 209. As a result, the center of gravity of the equipment will also shift from back to front, ensuring that the equipment will not tip over during operation.

[0056] By weight: 450-500 parts of polyvinylidene fluoride emulsion; 20-25 parts of γ-(2,3-epoxypropoxy)propyltrimethoxysilane; 20-30 parts of a mixture of dimethyl succinate, dimethyl glutarate, and dimethyl adipate in a ratio of 1:1:1; and an appropriate amount of water.

[0057] The above description is merely an embodiment of the present invention and does not limit the patent scope of the present invention. Any equivalent structural or procedural transformations made based on the content of the present invention's specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of the present invention.

Claims

1. A coating device for preventing calcification of concrete slopes in power transmission and transformation projects, characterized in that, include: Assembly main board (1) and paint spraying mechanism (2), material coating mechanism (3) and side auxiliary wheel mechanism (4) set on the assembly main board (1); The paint spraying mechanism (2) includes a storage tank (201), a booster pump (208), a manifold (209), and a row of spray guns (214). The output port of the row of spray guns (214) is aligned with the roller (310) of the material coating mechanism (3). The storage tank (201) and the manifold (209) are connected by the booster pump (208), and the liquid inlet of each spray gun (214) is connected to the manifold (209) through a diversion pipe (217). The storage bin (201) contains a concrete protective agent. The material coating mechanism (3) includes a U-shaped frame (308), a roller (310) rotatably connected to the U-shaped frame (308), and a swing device for controlling the rotation of the U-shaped frame (308). Nylon brushes (311) are uniformly arranged on the outer wall of the roller (310). As the liquid injection volume gradually increases, the liquid content in the storage tank (201) gradually decreases and eventually all of it is collected in the junction box (209). Consequently, the center of gravity of the equipment will shift from back to front, ensuring that the equipment will not tip over during operation.

2. The anti-calcification coating equipment for concrete slopes in power transmission and transformation projects as described in claim 1, characterized in that: The top of the assembly motherboard (1) is fixedly mounted with a bracket (210). The bracket (210) has a pre-set round hole (211). An inner connecting rod (212) is movably inserted into the inner wall of each round hole (211). A locking collar (213) is fixedly sleeved on the outer wall of each inner connecting rod (212). Each spray gun (214) is inserted into the inner wall of the corresponding locking collar (213).

3. The anti-calcification coating equipment for concrete slopes in power transmission and transformation projects as described in claim 2, characterized in that: Two connecting plates (204) are fixedly installed on the top of the assembly motherboard (1). The interior of each of the two connecting plates (204) is pre-set with positioning holes (205). A set of metal rods (206) is fixedly inserted on the opposite side of each of the two connecting plates (204). A connecting collar (207) is fixedly sleeved between the outer walls of the two sets of metal rods (206). The booster pump (208) is inserted between the inner wall of the corresponding positioning hole (205) and the inner wall of the connecting collar (207).

4. The anti-calcification coating equipment for concrete slopes in power transmission and transformation projects as described in claim 3, characterized in that: A one-way valve (202) is installed on the top of the storage box (201), and the outer wall of the one-way valve (202) is fixedly connected to the feed pipe (203).

5. The anti-calcification coating equipment for concrete slopes in power transmission and transformation projects as described in claim 3, characterized in that: The input end of each booster pump (208) is fixedly connected to a primary release pipe (215). The liquid inlet end of each primary release pipe (215) penetrates the rear surface of the storage tank (201) and is connected to the interior of the storage tank (201). The output end of each booster pump (208) is fixedly connected to a secondary release pipe (216). The liquid outlet end of each secondary release pipe (216) penetrates the outer wall of the manifold (209) and is connected to the interior of the manifold (209).

6. The anti-calcification coating equipment for concrete slopes in power transmission and transformation projects as described in claim 1, characterized in that: The swinging device includes a reinforcing plate (301), and two extension joints (302) are fixedly installed at the bottom of the reinforcing plate (301). A first crossbar (303) is fixedly inserted between the two sides of the inner wall of each of the two extension joints (302). A movable frame (304) is movably sleeved on the outer wall of each of the two first crossbars (303). An inner slot (305) is opened at the top of each of the two movable frames (304). The two sides of the inner wall of the inner slot (305) are connected between the two sides of the inner wall. A second crossbar (306) is fixedly inserted. A first pneumatic rod (307) is installed on the assembly main board (1). The output shaft of the first pneumatic rod (307) is movably sleeved on the outer wall of the second crossbar (306). The U-shaped frame (308) is fixed between the outer walls of the two movable frames (304). A linkage rod (309) is movably inserted between the two sides of the inner wall of the U-shaped frame (308). The roller (310) is fixedly sleeved on the outer wall of the linkage rod (309).

7. The anti-calcification coating equipment for concrete slopes in power transmission and transformation projects as described in claim 1, characterized in that: The side auxiliary wheel mechanism (4) includes a first base (401), which is fixedly installed at the bottom of the assembly main board (1). The inner wall of the first base (401) is provided with a slide (402), and a movable plate (405) is movably inserted between the inner surface walls of each set of slides (402). The outer wall of the movable plate (405) is welded with an L-shaped connector (406). The L-shaped connector (406) has an annular groove (407) inside. An external rod (408) is fixedly inserted at the center of the L-shaped connector (406). The outer wall of the external rod (408) is movably fitted with a longitudinal wheel (409). The longitudinal wheel (409) is placed inside the corresponding annular groove (407).

8. The anti-calcification coating equipment for concrete slopes in power transmission and transformation projects as described in claim 7, characterized in that: The first base (401) has mounting holes (403) inside. A second pneumatic rod (404) is fixedly inserted into the inner wall of the mounting hole (403). The output end of the second pneumatic rod (404) is connected to the movable plate (405).

9. The anti-calcification coating equipment for concrete slopes in power transmission and transformation projects as described in claim 1, characterized in that: The bottom of the assembly motherboard (1) is fixedly installed with a second base (5). The outer walls of the second base (5) are provided with rectangular grooves (6). The interiors of the two rectangular grooves (6) are fixedly installed with drive motors (7). The output ends of the drive motors (7) are fixedly connected with transmission rods (8). The outer walls of the transmission rods (8) are fixedly fitted with transverse wheels (9).

10. The anti-calcification coating equipment for concrete slopes in power transmission and transformation projects as described in claim 1, characterized in that: The fair-faced concrete protective agent comprises fluorocarbon resin emulsion, silane modifier, film-forming aid, and water.