Synchronous spraying device for epoxy anti-skid wearing layer
By designing a synchronous spraying device for epoxy anti-slip wear layer, the entire process of material processing is automated, which solves the problem of reduced adhesion between epoxy resin and crushed stone, improves recycling efficiency and paving quality, reduces production costs, and meets green and environmental protection requirements.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- CHONGQINGSHI ZHIXIANG PAVING TECH ENG CO LTD
- Filing Date
- 2026-03-02
- Publication Date
- 2026-04-17
AI Technical Summary
When laying an epoxy anti-slip wear layer, the adhesion between the epoxy resin and the crushed stone decreases due to prolonged placement, affecting the overall performance and service life.
An epoxy anti-slip wear layer synchronous spraying device was designed, including a feeding rack, a crushing rack, a processing mechanism and a hot gas control mechanism, to realize the fully automated processing of material collection, crushing, storage, uniform feeding, heating activation and impurity screening. The stability and consistency of material performance are ensured through precise temperature control and rotary activation technology.
It improves the recycling efficiency of epoxy anti-slip and wear-resistant layer materials, ensures laying quality, reduces production costs, conforms to the concept of green environmental protection, and provides an efficient and reliable recycling solution.
Smart Images

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Abstract
Description
Technical Field
[0001] This invention relates to the field of engineering construction technology, and more specifically, to a device for synchronous application of epoxy anti-slip wear layer. Background Technology
[0002] Epoxy anti-skid and wear-resistant coating, specifically, refers to a road surface structure that uses epoxy resin as the core bonding material. Based on this, appropriate amounts of aggregates, fillers, and various functional additives are carefully selected and added according to a scientific formula. Through a series of refined processes, including but not limited to uniform mixing, precise paving, and efficient compaction, a road surface structure with excellent anti-skid performance and superior wear resistance is ultimately formed. This carefully designed structure not only significantly improves the road surface's coefficient of friction, thereby effectively enhancing vehicle stability and safety during driving and reducing the probability of traffic accidents, but its excellent wear resistance also greatly extends the actual service life of the road surface, reducing the high maintenance costs caused by frequent repairs and replacements, and providing great convenience and economic benefits for road management and maintenance.
[0003] According to patent document CN102296514B, an anti-slip and wear-resistant layer for epoxy anti-slip and wear-resistant paving material and its preparation method are disclosed. This anti-slip and wear-resistant layer is formed by curing epoxy resin and gravel sprinkled on the surface of the epoxy resin, with a total thickness of 1-2 mm. The upper surface of the anti-slip and wear-resistant layer is the exposed portion of the gravel cured in the epoxy resin. The amount of epoxy resin used is 1-1.5 kg / m², and the amount of gravel used is 1-1.2 kg / m². This invention utilizes the epoxy resin and gravel layer to effectively resist slip and wear, while also structurally healing cracks in the epoxy anti-slip and wear-resistant paving material, thus improving the anti-slip effect of the paving surface.
[0004] Epoxy anti-skid wear-resistant layer is typically formed by mixing epoxy anti-skid wear-resistant layer material with epoxy resin in a specific ratio, then evenly spreading crushed stone of a specified particle size and amount, and finally compacting and curing it using specialized equipment. This synchronous spreading device can precisely control the amount and uniformity of epoxy resin and crushed stone spreading, ensuring consistent performance in all parts of the anti-skid wear-resistant layer, effectively improving the anti-skid and wear-resistant capabilities of the road surface, and providing reliable protection for driving safety. However, during installation, the bond between the epoxy resin and the crushed stone may decrease due to prolonged placement of the finished epoxy anti-skid wear-resistant layer, thereby affecting the overall performance and service life of the anti-skid wear-resistant layer. Summary of the Invention
[0005] In order to overcome the above-mentioned defects of the prior art, the present invention provides a synchronous spraying device for epoxy anti-slip wear layer. The technical problem to be solved by the present invention is that during the laying process, the finished epoxy anti-slip wear layer may experience a decrease in the bonding force between the epoxy resin and the crushed stone due to prolonged placement, thereby affecting the overall performance and service life of the anti-slip wear layer.
[0006] To solve the above-mentioned technical problems, the technical solution adopted by the present invention is as follows: A synchronous spraying device for epoxy anti-slip wear layer includes a feeding frame, a crushing frame fixedly connected to the top of the feeding frame, a processing mechanism fixedly connected to the left side of the feeding frame, and a hot air control mechanism fixedly connected to both the front and rear sides of the processing mechanism. The unloading rack includes an unloading rack connecting base frame, and an unloading control component is fixedly connected to the top right side of the unloading rack connecting base frame; The crushing frame includes a storage pipe, and a connecting collar is fixedly connected to the top of the outer wall of the storage pipe; The processing mechanism includes two Z-shaped side plates, and a storage frame is fixedly connected between the inner bottom of the two Z-shaped side plates; Both of the aforementioned hot gas control mechanisms include an air extraction chamber connecting plate, and the top and bottom of the outer right side of both of the aforementioned air extraction chamber connecting plates are fixedly connected to air extraction control component guide side plates.
[0007] As a further embodiment of the present invention: the unloading rack connecting base includes two side uprights, and a horizontal connecting plate is fixedly connected to the bottom right side of each of the two side uprights. A transmission component connecting plate is fixedly connected between the right sides of the two horizontal connecting plates. An inverted L-shaped side plate is fixedly connected to the bottom outer side of each of the two horizontal connecting plates. A connecting crossbar is fixedly connected to the bottom left side of each of the two inverted L-shaped side plates. A sleeve block is fixedly connected to the outer side of each of the two connecting crossbars. A columnar guide rod connecting block is fixedly connected to the bottom right side of each of the two connecting crossbars. A columnar guide rod is fixedly connected to the bottom left side of each of the two columnar guide rod connecting blocks. A horizontal C-shaped columnar guide rod connecting plate is fixedly connected to the bottom inner side of each of the two columnar guide rod connecting blocks. The left ends of the two columnar guide rods are respectively fixedly connected to the inner side of the two horizontal C-shaped columnar guide rod connecting plates near the columnar guide rod connecting blocks.
[0008] As a further embodiment of the present invention: Z-shaped support rods are fixedly connected to the outer sides of the two inverted L-shaped side plates and the front and rear sides of the transmission component connecting plate; L-shaped side plates are fixedly connected to the top of the inner sides of the two sets of Z-shaped support rods; a motor connecting plate is fixedly connected to the rear side of the right side of the transmission component connecting plate; a motor connecting plate is fixedly connected to the top of the left side of the motor connecting plate; a motor is fixedly connected to the top of the motor connecting plate; the output end of the motor extends to the bottom of the motor connecting plate; columnar rotating rods are rotatably connected to the front and rear sides of the top of the transmission component connecting plate; the top of the rear columnar rotating rod is fixedly connected to the output end of the motor; a transmission disc is fixedly connected to the top of the outer wall of the two columnar rotating rods; a track is fitted between the outer walls of the two transmission discs; a second transmission disc is fixedly connected to the bottom of the outer wall of the two columnar rotating rods; a second track is fitted to the outer wall of the two second transmission discs; a third transmission disc is fitted to the inner wall of the two second tracks away from the second transmission discs; the bottom center of the two third transmission discs is vertically aligned with the top center of the two sleeve blocks, respectively.
[0009] As a further embodiment of the present invention: the feeding control component includes two L-shaped side plates, the bottom of the two L-shaped side plates are respectively fixedly connected to the top of the two side plates, a feeding tube sleeve is fixedly connected between the inner sides of the two L-shaped side plates, a horizontal connecting plate is fixedly connected to the right side of each of the two L-shaped side plates, a guide block connecting rod is fixedly connected to the top of the two L-shaped side plates and the top of the two horizontal connecting plates, a guide block is fixedly connected to the top of each of the two sets of guide block connecting rods, a T-shaped side plate is fixedly connected between the inner sides of the front and rear sets of guide blocks, a spring connecting block is fixedly connected to the top right side of each of the two right guide blocks, a dual-axis motor connecting block is fixedly connected between the middle of the inner sides of the two T-shaped side plates, a dual-axis motor is fixedly connected to the bottom of the dual-axis motor connecting block, the front and rear output ends of the dual-axis motor extend to the outer sides of the two T-shaped side plates respectively and are fixedly connected to rotating rods, and a stop block is rotatably connected to the top of the outer sides of the two rotating rods.
[0010] As a further aspect of the present invention: A movable crossbar is slidably connected between the interiors of the front and rear sets of guide blocks. A movable crossbar spring connecting block is fixedly connected to the top center of each of the two movable crossbars. A spring is fixedly connected to the right side of each of the two movable crossbar spring connecting blocks. The right ends of the two springs are respectively fixedly connected to the left side of the two spring connecting blocks. An elliptical slide plate is fixedly connected to the bottom center of each of the two movable crossbars. The inner walls of the two elliptical slide plates are respectively rotatably connected to the outer walls of the two abutment blocks. The right sides of the two movable crossbars extend to the right outer side of the two guide blocks on the right side, and a T-shaped push-pull plate is fixedly connected between their bottoms. A columnar push-pull crossbar is fixedly connected to the bottom left side of the T-shaped push-pull plate. Two abutment discs are fixedly connected to the left side of the outer wall of the columnar push-pull crossbar.
[0011] As a further embodiment of the present invention: U-shaped connecting plates are fixedly connected to both the left and right sides of the outer wall of the connecting collar; L-shaped supporting side plates are fixedly connected to the top of the front and rear sides of the two U-shaped connecting plates; a crusher connecting plate is fixedly connected between the tops of the four L-shaped supporting side plates; the middle portions of the front and rear sides of the bottom of the crusher connecting plate are respectively fixedly connected to the tops of the two L-shaped side plates; a crusher is fixedly connected to the top of the crusher connecting plate; the bottom of the crusher extends to the bottom of the crusher connecting plate and is fixedly connected to a discharge hopper. The bottom of the discharge funnel is aligned and connected to the top of the storage pipe. A storage pipe base plate is fixedly connected to the bottom of the storage pipe. A feed pipe is fixedly connected to the bottom right side of the outer wall of the storage pipe. The outer wall of the feed pipe is fixedly connected to the inner wall of the discharge pipe sleeve. A discharge pipe is fixedly connected to the left side of the bottom of the feed pipe. The bottom end of the discharge pipe extends to the bottom of the storage pipe base plate. The inner wall of the feed pipe is fitted onto the outer wall of the columnar push-pull crossbar. A vent valve is fixedly connected to the left side of the outer wall of the storage pipe. Pipes are fixedly connected to both the front and rear sides of the vent valve.
[0012] As a further aspect of the present invention: A connecting side plate is fixedly connected to the inner top of each of the two Z-shaped side plates; a second motor connecting block is fixedly connected between the inner sides of the two connecting side plates; a second motor is fixedly connected to the top center of the second motor connecting block; a processing mechanism horizontal connecting plate is fixedly connected to the bottom right side of each of the two connecting side plates; a semi-circular support plate connecting plate is fixedly connected to the inner right side of each of the two processing mechanism horizontal connecting plates; a semi-circular support plate is fixedly connected between the inner bottom of the two semi-circular support plates; a columnar processing chamber discharge pipe is fixedly connected to the inner side of the semi-circular support plate; a hot air blower is fixedly connected to the right end of the columnar processing chamber discharge pipe; the top two sides of the hot air blower are respectively fixedly connected to the bottom of the two horizontal connecting plates; a receiving funnel is fixedly connected to the top of the outer wall of the columnar processing chamber discharge pipe; the top of the receiving funnel is aligned and connected to the bottom of the discharge pipe; the columnar processing chamber discharge pipe... A conical feeding sleeve is fixedly connected to the left side of the outer wall of the material pipe. A workpiece ventilation valve is fixedly connected to the bottom of the outer wall of the columnar processing chamber feeding pipe. The top of the inner sides of the two semi-circular pallet connecting plates are fixedly connected to the right sides of the front and rear sides of the bottom plate of the storage pipe, respectively. A columnar processing chamber is rotatably connected to the left side of the columnar processing chamber feeding pipe. A columnar filter screen is fixedly connected to the middle of the outer wall of the columnar processing chamber. The inner wall of the conical feeding sleeve is fitted onto the outer walls of the columnar processing chamber and the columnar filter screen. A processing chamber drive disc is fixedly connected to the left end of the columnar processing chamber. A third track is fitted onto the outer wall of the processing chamber drive disc. A second processing chamber drive disc is fitted onto the inner wall of the third track on the side away from the processing chamber drive disc. The right side of the second processing chamber drive disc is fixedly connected to the output end of the second motor. Material passage pipes are fixedly connected to the front and rear sides of the left side of the storage frame. A laying plate is fixedly connected between the ends of the two material passage pipes away from the storage frame.
[0013] As a further aspect of the present invention: the inner sides of the two suction chamber connecting plates are respectively fixedly connected to the outer sides of the two processing mechanism horizontal connecting plates; a columnar suction chamber is fixedly connected to the left side of the outer side of each of the two suction chamber connecting plates; a pipe interface is fixedly connected to the left side of the top of the outer wall of each of the two columnar suction chambers; the top ends of the two pipe interfaces are respectively fixedly connected to the ends of the two pipes away from the vent valve; a second pipe is fixedly connected to the left end of each of the two columnar suction chambers; the ends of the two second pipes away from the columnar suction chambers are respectively fixedly connected to the front and rear sides of the processing workpiece vent valve.
[0014] As a further embodiment of the present invention: Connecting sleeve blocks are fixedly connected to the top and bottom of the right side of the two outer sides of the two suction chamber connecting plates; elliptical rotating block columnar rotating rods are rotatably connected inside the two sets of connecting sleeve blocks; the top ends of the two elliptical rotating block columnar rotating rods at the top extend to the top outer sides of the two connecting sleeve blocks at the top and are fixedly connected to the bottom center of the two third transmission discs; the inner ends of the two sets of elliptical rotating block columnar rotating rods at the front and rear extend to the inner sides of the two sets of connecting sleeve blocks and are fixedly connected to elliptical rotating blocks; elliptical connecting blocks are rotatably connected between the left sides of the inner sides of the two sets of elliptical rotating blocks at the front and rear; push-pull block connecting rods are fixedly connected to the left sides of the two elliptical connecting blocks; push-pull blocks are rotatably connected to the left ends of the two push-pull block connecting rods; the outer walls of the two push-pull blocks are slidably connected to the inner sides of the two sets of suction control component guide side plates; piston connecting pipes are fixedly connected to the left sides of the two push-pull blocks; the left ends of the two piston connecting pipes extend to the interior of the two columnar suction chambers and are fixedly connected to pistons.
[0015] As a further embodiment of the present invention: the bottom ends of the two elliptical rotating block columnar rods at the bottom extend to the outer sides of the two connecting sleeve blocks at the bottom and are fixedly connected to the turntable columnar connecting rods. The bottom ends of the two turntable columnar connecting rods are fixedly connected to the turntables. The outer walls of the two turntable columnar connecting rods are rotatably connected to the inner walls of the two sleeve blocks. The bottom left side of the two turntables is rotatably connected to the shaking control block. The bottom of the outer wall of the two shaking control block is rotatably connected to the screen moving block. The left side of the two screen moving blocks is fixedly connected to the screen columnar push-pull crossbar. The inner sides of the two screen moving blocks are slidably connected to the outer walls of the two columnar guide rods. The left ends of the two screen columnar push-pull crossbars are fixedly connected to the screen. The front and rear sides of the screen are slidably connected to the inner sides of the two Z-shaped side plates and located on one side of the top of the storage frame. The bottom of the screen is slidably connected to the top of the storage frame.
[0016] The beneficial effects of this invention are as follows: This invention, by incorporating a feeding rack, crushing rack, processing mechanism, and hot gas control mechanism, automates the entire process of epoxy anti-slip and wear-resistant layer material processing, from collection, crushing, storage, uniform feeding, heating activation, impurity removal to final laying. This innovative design not only significantly improves the recycling efficiency of epoxy anti-slip and wear-resistant layer material but also ensures the stability and consistency of material performance through precise temperature control and rotary activation technology. Simultaneously, the device effectively avoids the impact of impurities such as stones on subsequent laying work, improving laying quality. Furthermore, the hot gas recycling system maximizes energy utilization, reduces production costs, and aligns with green and environmentally friendly production concepts. Overall, the implementation of this invention provides an efficient, reliable, and environmentally friendly solution for the recycling of epoxy anti-slip and wear-resistant layer material. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the main three-dimensional structure of the present invention; Figure 2 This is a schematic diagram of the three-dimensional separation structure of the main body of the present invention; Figure 3 This is a schematic diagram of the three-dimensional separation structure of the main body of the present invention; Figure 4 This is a three-dimensional structural diagram of the unloading rack of the present invention; Figure 5 This is a schematic diagram of the three-dimensional separation structure of the feeding rack connecting base frame of the present invention; Figure 6 This is a three-dimensional structural diagram of the feeding control component of the present invention; Figure 7 This is a schematic diagram of the three-dimensional structure of the crusher frame of the present invention; Figure 8 This is a three-dimensional structural diagram of the processing mechanism and the hot air control mechanism of the present invention; Figure 9 This is a schematic diagram of the three-dimensional separation structure of the processing mechanism of the present invention; Figure 10 This is a schematic diagram of the three-dimensional separation structure of the hot gas control mechanism of the present invention.
[0018] In the diagram: 1. Unloading rack; 11. Unloading rack connecting base frame; 111. Side upright plate; 112. Transmission component connecting plate; 113. Horizontal connecting plate; 114. Inverted L-shaped side plate; 115. Connecting crossbar; 116. Columnar guide rod connecting block; 117. Sleeve block; 118. Columnar guide rod; 119. Horizontal C-shaped columnar guide rod connecting plate; 1110. Z-shaped support upright; 1111. L-shaped side plate; 1112. Motor connecting upright plate; 1113. Motor connecting plate; 1114. Motor; 1115. Columnar vertical rotating rod; 1116. Transmission disc; 1117. Track; 1119. Second transmission disc; 1120. Second track; 1121. Third transmission disc; 12. Lower Material control components; 121, L-shaped side upright plate; 122, feed pipe sleeve; 123, horizontal connecting plate; 124, guide block connecting rod; 125, guide block; 126, T-shaped side plate; 127, spring connecting block; 128, dual-axis motor connecting block; 129, dual-axis motor; 1210, rotating rod; 1211, stop block; 1212, moving crossbar; 1213, elliptical slide plate; 1214, moving crossbar spring connecting block; 1215, spring; 1216, T-shaped push-pull plate; 1217, columnar push-pull crossbar; 1218, stop plate; 2, crushing frame; 21, storage pipe; 22, connecting collar; 23, side U-shaped connecting plate; 24, L-shaped support side plate; 2 5. Crusher connecting plate; 26. Crusher; 27. Feed hopper; 28. Vent valve; 29. Pipeline; 210. Feed pipe; 211. Storage pipe bottom plate; 212. Feed pipe; 3. Processing mechanism; 31. Z-shaped side plate; 32. Storage frame; 33. Connecting side plate; 34. Second motor connecting block; 35. Second motor; 36. Processing mechanism horizontal connecting plate; 37. Semi-circular pallet connecting plate; 38. Semi-circular pallet; 39. Columnar processing bin feed pipe; 310. Receiving hopper; 311. Hot air blower; 312. Processed part vent valve; 313. Conical feed sleeve; 314. Columnar processing bin; 315. Columnar filter screen; 316. Processing bin transmission disc; 317. 3. Tracks; 318. Second processing chamber drive plate; 319. Material passage pipe; 3110. Laying plate; 4. Hot air control mechanism; 41. Air extraction chamber connecting plate; 42. Air extraction control component guide side plate; 43. Columnar air extraction chamber; 44. Pipe interface; 45. Second pipe; 46. Push-pull block; 47. Piston connecting pipe; 48. Piston; 49. Push-pull block connecting rod; 410. Elliptical connecting block; 411. Elliptical rotating block; 412. Elliptical rotating block columnar rotating rod; 413. Connecting sleeve block; 414. Turntable columnar connecting upright; 415. Turntable; 416. Vibration control stop block; 417. Screen moving block; 418. Screen columnar push-pull crossbar; 419. Screen. Detailed Implementation
[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0020] like Figure 1 , Figure 2 , Figure 3 and Figure 8 As shown, the present invention provides a synchronous spraying device for epoxy anti-slip wear layer, including a feeding frame 1, a crushing frame 2 fixedly connected to the top of the feeding frame 1, a processing mechanism 3 fixedly connected to the left side of the feeding frame 1, and a hot air control mechanism 4 fixedly connected to both the front and rear sides of the processing mechanism 3.
[0021] like Figure 7 As shown, the crushing frame 2 includes a storage pipe 21. A connecting collar 22 is fixedly connected to the top of the outer wall of the storage pipe 21. Side U-shaped connecting plates 23 are fixedly connected to both the left and right sides of the outer wall of the connecting collar 22. L-shaped support side plates 24 are fixedly connected to the top of the front and rear sides of the two side U-shaped connecting plates 23. A crusher connecting plate 25 is fixedly connected between the tops of the four L-shaped support side plates 24. The middle parts of the front and rear sides of the bottom of the crusher connecting plate 25 are respectively fixedly connected to the tops of the two L-shaped side plates 1111. A crusher 26 is fixedly connected to the top of the crusher connecting plate 25. The bottom of the crusher 26 extends to the bottom of the crusher connecting plate 25 and is fixedly connected to a feeder. The bottom of the feeding funnel 27 is aligned and connected to the top of the storage pipe 21. The bottom of the storage pipe 21 is fixedly connected to the storage pipe bottom plate 211. The bottom right side of the outer wall of the storage pipe 21 is fixedly connected to the feed pipe 210. The outer wall of the feed pipe 210 is fixedly connected to the inner wall of the feeding pipe sleeve 122. The bottom left side of the bottom of the outer wall of the feed pipe 210 is fixedly connected to the feeding pipe 212. The bottom end of the feeding pipe 212 extends to the bottom of the storage pipe bottom plate 211. The inner wall of the feed pipe 210 is sleeved on the outer wall of the columnar push-pull crossbar 1217. The left side of the outer wall of the storage pipe 21 is fixedly connected to the vent valve 28. Pipes 29 are fixedly connected to both the front and rear sides of the vent valve 28.
[0022] Before laying, the epoxy anti-slip and wear-resistant layer material is first poured into the crusher 26 and crushed by the crusher 26. After being crushed, it is discharged through the feeding funnel 27 into the storage pipe 21 for storage. During feeding, part of the crushed epoxy anti-slip and wear-resistant layer material stored in the storage pipe 21 is discharged through the feed pipe 210 to the feeding pipe 212. The feeding pipe 212 then discharges it to the next process. The vent valve 28 can transfer excess heat to the storage pipe 21 through the pipe 29 to preheat the epoxy anti-slip and wear-resistant layer material stored in the storage pipe 21.
[0023] like Figure 4-5 As shown, the unloading rack 1 includes an unloading rack connecting base 11, and an unloading control component 12 is fixedly connected to the top right side of the unloading rack connecting base 11. The unloading rack connecting base 11 includes two side uprights 111, and a horizontal connecting plate 113 is fixedly connected to the bottom right side of each of the two side uprights 111. A transmission component connecting plate 112 is fixedly connected between the right sides of the two horizontal connecting plates 113. An inverted L-shaped side plate 114 is fixedly connected to the bottom outer side of each of the two horizontal connecting plates 113. A connecting crossbar 115 is fixedly connected to the bottom left side of each of the two inverted L-shaped side plates 114, and a sleeve block 11 is fixedly connected to the outer side of each of the two connecting crossbars 115. 7. A columnar guide rod connecting block 116 is fixedly connected to the bottom right side of each of the two connecting crossbars 115. A columnar guide rod 118 is fixedly connected to the bottom inner side of each of the two columnar guide rod connecting blocks 116. A horizontal C-shaped columnar guide rod connecting plate 119 is fixedly connected to the rear side of each of the two columnar guide rod connecting blocks 116. The left ends of the two columnar guide rods 118 are fixedly connected to the inner side of the two horizontal C-shaped columnar guide rod connecting plates 119 near the columnar guide rod connecting block 116.
[0024] Two inverted L-shaped side plates 114 are fixedly connected to Z-shaped support rods 1110 on the outer sides and the front and rear sides of the transmission component connecting plate 112. L-shaped side plates 1111 are fixedly connected to the top inner sides of the two sets of Z-shaped support rods 1110. A motor connecting plate 1112 is fixedly connected to the rear right side of the transmission component connecting plate 112. A motor connecting plate 1113 is fixedly connected to the top left side of the motor connecting plate 1112. A motor 1114 is fixedly connected to the top of the motor connecting plate 1113. The output end of the motor 1114 extends to the bottom of the motor connecting plate 1113. Columnar supports are rotatably connected to the front and rear sides of the top of the transmission component connecting plate 112. The top of the rear columnar rotating rod 1115 is fixedly connected to the output end of the motor 1114. The top of the outer wall of each of the two columnar rotating rods 1115 is fixedly connected to a transmission disc 1116. A track 1117 is fitted between the outer walls of the two transmission discs 1116. The bottom of the outer wall of each of the two columnar rotating rods 1115 is fixedly connected to a second transmission disc 1119. The outer wall of each of the two second transmission discs 1119 is fitted with a second track 1120. The inner wall of each of the two second tracks 1120 away from the second transmission discs 1119 is fitted with a third transmission disc 1121. The bottom of each of the two third transmission discs 1121 is aligned vertically with the top of each of the two sleeve blocks 117.
[0025] like Figure 6As shown, the feeding control assembly 12 includes two L-shaped side plates 121. The bottoms of the two L-shaped side plates 121 are fixedly connected to the tops of the two side plates 111, respectively. A feeding tube sleeve 122 is fixedly connected between the inner sides of the two L-shaped side plates 121. A horizontal connecting plate 123 is fixedly connected to the right side of each of the two L-shaped side plates 121. Guide block connecting rods 124 are fixedly connected to the tops of the two L-shaped side plates 121 and the tops of the two horizontal connecting plates 123. Guide blocks 125 are fixedly connected to the tops of the two sets of guide block connecting rods 124. The front and rear sets of guide blocks 125 are also fixedly connected to the tops of the two sets of guide blocks 125. T-shaped side plates 126 are fixedly connected to the inner sides of the guide blocks 125. Spring connecting blocks 127 are fixedly connected to the top right side of the two guide blocks 125 on the right side. A dual-axis motor connecting block 128 is fixedly connected between the middle of the inner sides of the two T-shaped side plates 126. A dual-axis motor 129 is fixedly connected to the bottom of the dual-axis motor connecting block 128. The front and rear output ends of the dual-axis motor 129 extend to the outer sides of the two T-shaped side plates 126 respectively and are fixedly connected to rotating rods 1210. A stop block 1211 is rotatably connected to the top of the outer sides of the two rotating rods 1210.
[0026] Both sets of guide blocks 125 are slidably connected to each other with a moving crossbar 1212. The top center of each moving crossbar 1212 is fixedly connected to a moving crossbar spring connecting block 1214. The right side of each moving crossbar spring connecting block 1214 is fixedly connected to a spring 1215. The right ends of each spring 1215 are fixedly connected to the left side of each spring connecting block 127. The bottom center of each moving crossbar 1212 is fixedly connected to an elliptical slide plate 1213. The inner walls of each elliptical slide plate 1213 are rotatably connected to the outer walls of each abutment block 1211. The right sides of each moving crossbar 1212 extend to the right outer side of each of the two guide blocks 125 on the right side and are fixedly connected to each other with a T-shaped push-pull plate 1216 at the bottom. The left bottom of the T-shaped push-pull plate 1216 is fixedly connected to a columnar push-pull crossbar 1217. The left side of the outer wall of the columnar push-pull crossbar 1217 is fixedly connected to two abutment plates 1218.
[0027] In use, when it is necessary to feed the epoxy anti-slip and wear-resistant layer material inside the storage tube 21, the dual-axis motor 129 is started. The output end of the dual-axis motor 129 drives the rotating rod 1210 to rotate. During the rotation of the rotating rod 1210, the abutment block 1211 rotates. During the rotation of the abutment block 1211, the elliptical slide plate 1213 moves. During the movement of the elliptical slide plate 1213, the moving crossbar 1212 slides inside the guide block 125. At the same time, the moving crossbar 1212 compresses the spring 12 through the moving crossbar spring connecting block 1214. 15. Spring 1215 deforms under force; simultaneously, the moving crossbar 1212 drives the T-shaped push-pull plate 1216 to move. During the movement of the T-shaped push-pull plate 1216, the columnar push-pull crossbar 1217 moves. During the movement of the columnar push-pull crossbar 1217, it pushes the epoxy anti-slip and wear-resistant layer material in the storage pipe 21 through the material feeding pipe 212 to the next process through the material feeding pipe 212 via the material abutment plate 1218. This achieves the purpose of uniformly feeding the epoxy anti-slip and wear-resistant layer material and avoids the problem of blockage caused by feeding a large amount of epoxy anti-slip and wear-resistant layer material at once. In addition, when processing the epoxy anti-slip and wear-resistant layer material is required, the motor 1114 can be started. The output end of the motor 1114 drives the rear columnar rotating rod 1115 to rotate. During the rotation of the rear columnar rotating rod 1115, the front columnar rotating rod 1115 is driven to rotate through the track 1117. During the rotation of both columnar rotating rods 1115, the transmission disc 1116 and the second transmission disc 1119 are driven to rotate. During the rotation of the second transmission disc 1119, the third transmission disc 1121 is driven to rotate through the second track 1120.
[0028] like Figure 9As shown, the processing mechanism 3 includes two Z-shaped side plates 31. A storage frame 32 is fixedly connected to the inner bottom of each of the two Z-shaped side plates 31. A connecting side plate 33 is fixedly connected to the inner top of each of the two Z-shaped side plates 31. A second motor connecting block 34 is fixedly connected between the inner sides of the two connecting side plates 33. A second motor 35 is fixedly connected to the top center of the second motor connecting block 34. A processing mechanism horizontal connecting plate 36 is fixedly connected to the bottom right side of each of the two connecting side plates 33. A semi-circular pallet connecting plate 37 is fixedly connected to the inner right side of each of the two processing mechanism horizontal connecting plates 36. A semi-circular pallet 38 is fixedly connected between the inner bottom of the two semi-circular pallet connecting plates 37. A columnar processing chamber discharge pipe 39 is fixedly connected to the inner side. A hot air blower 311 is fixedly connected to the right end of the columnar processing chamber discharge pipe 39. The top two sides of the hot air blower 311 are fixedly connected to the bottom of two horizontal connecting plates 113 respectively. A receiving funnel 310 is fixedly connected to the top of the outer wall of the columnar processing chamber discharge pipe 39. The top of the receiving funnel 310 is aligned and connected to the bottom of the discharge pipe 212. A conical discharge sleeve 313 is fixedly connected to the left side of the outer wall of the columnar processing chamber discharge pipe 39. A processing workpiece vent valve 312 is fixedly connected to the bottom of the outer wall of the columnar processing chamber discharge pipe 39. The inner tops of two semi-circular pallet connecting plates 37 are fixedly connected to the right sides of the front and rear sides of the storage pipe bottom plate 211 respectively.
[0029] A columnar processing chamber 314 is rotatably connected to the left side of the columnar processing chamber discharge pipe 39. A columnar filter screen 315 is fixedly connected to the middle of the outer wall of the columnar processing chamber 314. The inner wall of the conical discharge sleeve 313 is fitted onto the outer walls of the columnar processing chamber 314 and the columnar filter screen 315. A processing chamber drive disc 316 is fixedly connected to the left end of the columnar processing chamber 314. A third track 317 is fitted onto the outer wall of the processing chamber drive disc 316. A second processing chamber drive disc 318 is fitted onto the inner wall of the side of the third track 317 away from the processing chamber drive disc 316. The right side of the second processing chamber drive disc 318 is fixedly connected to the output end of the second motor 35. Both the front and rear sides of the left side of the storage frame 32 are fixedly connected to the material passage pipes 319. A laying plate 3110 is fixedly connected between the ends of the two material passage pipes 319 away from the storage frame 32.
[0030] In use, the epoxy anti-slip and wear-resistant layer material is fed into the columnar processing bin's feed pipe 39 through the feed pipe 212 and receiving funnel 310, and then conveyed into the columnar processing bin 314 through the feed pipe 39. At this time, the hot air blower 311 and the second motor 35 are started. After the hot air blower 311 starts, hot air is continuously blown into the columnar processing bin 314 to heat and activate the epoxy anti-slip and wear-resistant layer material in the bin, effectively improving the regeneration effect of the epoxy anti-slip and wear-resistant layer material. At the same time, the second motor 35 drives the second processing bin transmission disc 318 to rotate, which in turn drives the processing bin transmission disc 316 and the connected columnar processing bin through the third track 317. The 314 rotation design not only promotes uniform heating of the epoxy anti-slip and wear-resistant layer material within the columnar processing chamber 314, but also enhances the activation and regeneration efficiency of the epoxy anti-slip and wear-resistant layer material. The heated epoxy anti-slip and wear-resistant layer material, now in a solution state, is then flung through the columnar filter 315 into the conical discharge sleeve 313 as the columnar processing chamber 314 rotates. Guided by the conical discharge sleeve 313, it is then collected inside the storage frame 32. Since stones are not soluble, they remain within the columnar processing chamber 314 under the filtration of the columnar filter 315, preventing impurities such as stones from entering the storage frame 32 and ensuring the purity of the regenerated epoxy anti-slip and wear-resistant layer material. After the epoxy anti-skid and wear-resistant layer material in the columnar processing chamber 314 has been processed, the hot air blower 311 and the second motor 35 are turned off, and the discharge port at the bottom of the columnar processing chamber 314 is opened to discharge the remaining stones and impurities for the next epoxy anti-skid and wear-resistant layer material activation and regeneration treatment. In addition, when the columnar processing chamber 314 heats the epoxy anti-skid and wear-resistant layer material, the excess heat generated is discharged outward through the processing part vent valve 312. When paving is required, the processed epoxy anti-skid and wear-resistant layer material solution is transported to the paving slab 3110 through the material passage pipe 319 on the material storage frame 32. Because the paving slab 3110 is specially designed with uniformly distributed micro-pores on its surface, these pores allow the solution to flow out at a relatively uniform flow rate and thickness, ensuring that the epoxy anti-skid and wear-resistant layer material can be smoothly covered on the target road surface during the paving process.
[0031] like Figure 10As shown, both hot gas control mechanisms 4 include a vacuum chamber connecting plate 41. The top and bottom of the right side of the two vacuum chamber connecting plates 41 are fixedly connected to a vacuum control component guide plate 42. The inner sides of the two vacuum chamber connecting plates 41 are fixedly connected to the outer sides of the two processing mechanism horizontal connecting plates 36. The left side of the outer side of the two vacuum chamber connecting plates 41 is fixedly connected to a columnar vacuum chamber 43. The left side of the top of the outer wall of the two columnar vacuum chambers 43 is fixedly connected to a pipe interface 44. The top of the two pipe interfaces 44 is fixedly connected to the end of the two pipes 29 away from the vent valve 28. The left end of the two columnar vacuum chambers 43 is fixedly connected to a second pipe 45. The end of the two second pipes 45 away from the columnar vacuum chambers 43 is fixedly connected to the front and rear sides of the processing component vent valve 312.
[0032] Connecting sleeves 413 are fixedly connected to the top and bottom of the outer right side of the two air extraction chamber connecting plates 41. Elliptical rotating block columnar rods 412 are rotatably connected inside each of the two sets of connecting sleeves 413. The top ends of the two elliptical rotating block columnar rods 412 at the top extend to the outer top of the two connecting sleeves 413 and are fixedly connected to the bottom center of the two third transmission discs 1121. The inner ends of the two sets of elliptical rotating block columnar rods 412 at the front and rear extend to the inner side of the two sets of connecting sleeves 413 and are fixedly connected to elliptical rotating blocks 411. Elliptical connecting blocks 410 are rotatably connected to the left side of the inner side of the two sets of elliptical rotating blocks 411. Push-pull block connecting rods 49 are fixedly connected between the left sides of the two elliptical connecting blocks 410. Push-pull blocks 46 are rotatably connected to the left ends of the two push-pull block connecting rods 49. The outer walls of the two push-pull blocks 46 are slidably connected to the inner side of the two sets of air extraction control component guide side plates 42. Piston connecting pipes 47 are fixedly connected to the left side of the two push-pull blocks 46. The left ends of the two piston connecting pipes 47 extend into the interior of the two columnar air extraction chambers 43 and are fixedly connected to pistons 48.
[0033] The bottom ends of the two elliptical rotating block columnar rotating rods 412 at the bottom extend to the outer sides of the two connecting sleeve blocks 413 at the bottom, and are fixedly connected to the turntable columnar connecting rods 414. The bottom ends of the two turntable columnar connecting rods 414 are fixedly connected to the turntables 415. The outer walls of the two turntable columnar connecting rods 414 are rotatably connected to the inner walls of the two sleeve blocks 117. The bottom left side of the two turntables 415 is rotatably connected to the vibration control blocks 416. The bottom of the outer walls of the two vibration control blocks 416 are rotatably connected to the turntables 415. A screen moving block 417 is connected. A screen column push-pull crossbar 418 is fixedly connected to the left side of each of the two screen moving blocks 417. The inner sides of the two screen moving blocks 417 are slidably connected to the outer walls of the two column guide rods 118. A screen 419 is fixedly connected between the left ends of the two screen column push-pull crossbars 418. The front and rear sides of the screen 419 are slidably connected to the inner sides of the two Z-shaped side plates 31 and located on one side of the top of the storage frame 32. The bottom of the screen 419 is slidably connected to the top of the storage frame 32. When hot air needs to be transported, the motor 1114 starts, and its output drives the rear columnar rotating rod 1115 to rotate. This rotational power is transmitted to the front columnar rotating rod 1115 through the track 1117, achieving synchronous rotation of the two columnar rotating rods 1115. As the columnar rotating rod 1115 rotates, the transmission disc 1116 and the second transmission disc 1119 on it also rotate. The second transmission disc 1119 further drives the third transmission disc 1121 to rotate through the second track 1120. At this time, the third transmission disc 1121 not only serves as a transmission component but also undertakes the driving task of the elliptical rotating block columnar rotating rod 412 in the hot air control mechanism 4. Next, the elliptical rotating block columnar rotating rod 412 rotates with the rotation of the third transmission disk 1121. The elliptical rotating block 411 on it moves in a circular trajectory within the connecting sleeve block 413. The movement of the elliptical rotating block 411 is transmitted to the push-pull block connecting rod 49 through the elliptical connecting block 410, which in turn pushes the push-pull block 46 to slide within the guide side plate 42 of the air extraction control component. The movement of the push-pull block 46 drives the piston connecting pipe 47 and the piston 48 to reciprocate within the columnar air extraction chamber 43, thereby realizing the extraction and transportation of hot air. Then, the hot air is transported to the inside of the storage pipe 21 through the pipe interface 44 and the pipe 29, thereby preheating the epoxy anti-slip and wear-resistant layer material that has not yet been processed and has been crushed in the storage pipe 21, so that the subsequent heating and melting process of the epoxy anti-slip and wear-resistant layer material is more efficient. The two columnar air extraction chambers 43 extract excess hot air from the inside of the columnar processing chamber discharge pipe 39 through the two second pipes 45, avoiding energy waste. Meanwhile, the turntable columnar connecting rod 414 rotates along with the rotation of the bottom elliptical rotating block columnar rotating rod 412. As a result, the shaking control block 416 on the turntable 415 moves periodically left and right. The shaking control block 416 pushes the screen columnar push-pull crossbar 418 through the screen moving block 417, causing the screen 419 to reciprocate on the inside of the Z-shaped side plate 31 and the top of the storage frame 32. This helps to further remove impurities from the epoxy anti-skid and wear-resistant layer material that falls into the storage frame 32, ensuring the high quality of the recycled epoxy anti-skid and wear-resistant layer material. Through the above linkage mechanism, the entire epoxy anti-skid and wear-resistant layer material road surface epoxy anti-skid and wear-resistant layer material activation and regeneration device realizes an efficient and automated epoxy anti-skid and wear-resistant layer material regeneration process.
[0034] The working principle of this invention is as follows: First, the epoxy anti-slip and wear-resistant layer material is poured into the crusher 26. After being crushed by the crusher 26, it is discharged through the feeding funnel 27 into the storage pipe 21 for storage. During the discharge, a portion of the crushed material is stored in the storage pipe 21. When it is necessary to discharge the epoxy anti-slip and wear-resistant layer material inside the storage pipe 21, the dual-shaft motor 129 is started. The output end of the dual-shaft motor 129 drives the rotating rod 1210 to rotate. During the rotation of the rotating rod 1210, the abutment block 1211 rotates. During the rotation of the abutment block 1211, the abutment block 1211 pushes the elliptical slide plate 1213 to move. During the movement of the elliptical slide plate 1213, the abutment block 1211 pushes the elliptical slide plate 1213 to move. The movable crossbar 1212 slides inside the guide block 125. At the same time, the movable crossbar 1212 compresses the spring 1215 through the movable crossbar spring connecting block 1214, and the spring 1215 deforms after being subjected to force. Simultaneously, the movable crossbar 1212 drives the T-shaped push-pull plate 1216 to move. During the movement of the T-shaped push-pull plate 1216, the columnar push-pull crossbar 1217 moves. During the movement of the columnar push-pull crossbar 1217, it pushes the epoxy anti-slip and wear-resistant layer material in the storage pipe 21 through the material feeding pipe 212 to the next process through the material feeding pipe 212 via the material abutment plate 1218 inside the material feeding pipe 210, thereby achieving the purpose of uniformly feeding the epoxy anti-slip and wear-resistant layer material. When the epoxy anti-slip and wear-resistant layer material is fed into the columnar processing chamber feed pipe 39 through the feed pipe 212 and receiving funnel 310, and then conveyed to the columnar processing chamber 314 through the feed pipe 39, the hot air blower 311 and the second motor 35 are started. After the hot air blower 311 starts, it continuously blows hot air into the columnar processing chamber 314 to heat and activate the epoxy anti-slip and wear-resistant layer material inside the chamber. At the same time, the second motor 35 drives the second processing chamber transmission disc 318 to rotate, and then through the third... The track 317 drives the processing chamber transmission disc 316 and the connected cylindrical processing chamber 314 to rotate. The epoxy anti-slip and wear-resistant layer material, which is heated and becomes a solution, is thrown into the interior of the conical discharge sleeve 313 through the cylindrical filter screen 315 when the cylindrical processing chamber 314 rotates as a whole. It is then guided by the conical discharge sleeve 313 to be discharged into the interior of the storage frame 32 and collected. Since the stones are not soluble, they will remain in the cylindrical processing chamber 314 under the filtering effect of the cylindrical filter screen 315, preventing stones and other impurities from entering the storage frame 32. In addition, when the epoxy anti-slip and wear-resistant layer material is heated in the columnar processing chamber 314, the excess heat generated is discharged outward through the workpiece vent valve 312. At the same time, the motor 1114 starts, and the output end of the motor 1114 drives the rear columnar vertical rotating rod 1115 to rotate. This rotational power is transmitted to the front columnar vertical rotating rod 1115 through the track 1117, realizing the synchronous rotation of the two columnar vertical rotating rods 1115. As the columnar vertical rotating rod 1115 rotates, the transmission disc 1116 and the second transmission disc 1119 on it also rotate. The second transmission disc 1119 further drives the third transmission disc 1121 to rotate through the second track 1120. The elliptical rotating block columnar rotating rod 412 rotates with the rotation of the third transmission disc 1121, and the elliptical rotating block 411 on it rotates in the engagement... The connecting block 413 moves in a circular trajectory. The movement of the elliptical rotating block 411 is transmitted to the push-pull block connecting rod 49 through the elliptical connecting block 410, which in turn pushes the push-pull block 46 to slide in the guide side plate 42 of the air extraction control component. The movement of the push-pull block 46 drives the piston connecting pipe 47 and the piston 48 to reciprocate in the columnar air extraction chamber 43, thereby realizing the extraction and transportation of hot air. The hot air is transported to the inside of the storage pipe 21 through the pipe interface 44 and the pipe 29, thereby preheating the epoxy anti-slip and wear-resistant layer material that has not yet been processed and has been crushed in the storage pipe 21, so that the subsequent heating and melting process of the epoxy anti-slip and wear-resistant layer material is more efficient. The two columnar air extraction chambers 43 extract excess hot air from the inside of the columnar processing chamber discharge pipe 39 through two second pipes 45 to avoid energy waste. Meanwhile, the turntable columnar connecting rod 414 rotates along with the rotation of the bottom elliptical rotating block columnar rotating rod 412. This causes the vibration control block 416 on the turntable 415 to move periodically left and right. The vibration control block 416 pushes the screen columnar push-pull crossbar 418 via the screen moving block 417, causing the screen 419 to reciprocate within the Z-shaped side plate 31 and on top of the storage frame 32. This facilitates the screening of the epoxy anti-slip and wear-resistant layer material falling into the storage frame 32. One-step impurity removal; after the epoxy anti-skid and wear-resistant layer material in the columnar processing chamber 314 has been processed, the above-mentioned components are closed, the discharge port at the bottom of the columnar processing chamber 314 is opened, and the remaining stones and impurities are discharged; when paving is required, the processed epoxy anti-skid and wear-resistant layer material solution is transported to the paving plate 3110 through the material passage pipe 319 on the material storage frame 32, and the epoxy anti-skid and wear-resistant layer material can be smoothly covered on the target road surface through the paving plate 3110.
[0035] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of this invention is defined by the appended claims and their equivalents.
Claims
1. A synchronous spraying device for epoxy anti-slip wear layer, comprising a feeding rack (1), characterized in that: The top of the feeding rack (1) is fixedly connected to a crushing rack (2), the left side of the feeding rack (1) is fixedly connected to a processing mechanism (3), and the front and rear sides of the processing mechanism (3) are fixedly connected to a hot air control mechanism (4). The unloading rack (1) includes an unloading rack connecting base (11), and an unloading control component (12) is fixedly connected to the top right side of the unloading rack connecting base (11). The crushing frame (2) includes a storage pipe (21), and a connecting collar (22) is fixedly connected to the top of the outer wall of the storage pipe (21). The processing mechanism (3) includes two Z-shaped side plates (31), and a storage frame (32) is fixedly connected between the inner bottom of the two Z-shaped side plates (31). Both of the hot gas control mechanisms (4) include a vacuum chamber connecting plate (41), and the top and bottom of the outer right side of the two vacuum chamber connecting plates (41) are fixedly connected with a vacuum control component guide plate (42).
2. The epoxy anti-slip wear layer synchronous spraying device according to claim 1, characterized in that: The unloading rack connecting base (11) includes two side uprights (111). A horizontal connecting plate (113) is fixedly connected to the bottom right side of each of the two side uprights (111). A transmission component connecting plate (112) is fixedly connected between the right sides of the two horizontal connecting plates (113). An inverted L-shaped side plate (114) is fixedly connected to the bottom of the outer side of each of the two horizontal connecting plates (113). A connecting crossbar (115) is fixedly connected to the bottom of the left side of each of the two inverted L-shaped side plates (114). A sleeve block is fixedly connected to the outer side of each of the two connecting crossbars (115). (117) A columnar guide rod connecting block (116) is fixedly connected to the bottom right side of each of the two connecting crossbars (115). A columnar guide rod (118) is fixedly connected to the bottom left side of each of the two columnar guide rod connecting blocks (116). A horizontal C-shaped columnar guide rod connecting plate (119) is fixedly connected to the bottom inner side of each of the two columnar guide rod connecting blocks (116). The left ends of the two columnar guide rods (118) are respectively fixedly connected to the inner side of the two horizontal C-shaped columnar guide rod connecting plates (119) near the columnar guide rod connecting block (116).
3. The epoxy anti-slip wear layer synchronous spraying device according to claim 2, characterized in that: Z-shaped support rods (1110) are fixedly connected to the outer sides of the two inverted L-shaped side plates (114) and the front and rear sides of the transmission component connecting plate (112). L-shaped side plates (1111) are fixedly connected to the top of the inner sides of the two sets of Z-shaped support rods (1110). A motor connecting plate (1112) is fixedly connected to the rear right side of the transmission component connecting plate (112). A motor connecting plate (1113) is fixedly connected to the top left side of the motor connecting plate (1112). A motor (1114) is fixedly connected to the top of the motor connecting plate (1113). The output end of the motor (1114) extends to the bottom of the motor connecting plate (1113). Columnar rotating rods (1114) are rotatably connected to the front and rear sides of the top of the transmission component connecting plate (112). 115), the top of the columnar rotating rod (1115) on the rear side is fixedly connected to the output end of the motor (1114), the top of the outer wall of the two columnar rotating rods (1115) is fixedly connected to the transmission disc (1116), the outer wall of the two transmission discs (1116) is fitted with a track (1117), the bottom of the outer wall of the two columnar rotating rods (1115) is fixedly connected to the second transmission disc (1119), the outer wall of the two second transmission discs (1119) is fitted with the second track (1120), the inner wall of the two second tracks (1120) away from the second transmission disc (1119) is fitted with the third transmission disc (1121), the bottom center of the two third transmission discs (1121) is aligned vertically with the top center of the two sleeve blocks (117).
4. The epoxy anti-slip wear layer synchronous spraying device according to claim 1, characterized in that: The feeding control component (12) includes two L-shaped side plates (121). The bottoms of the two L-shaped side plates (121) are fixedly connected to the tops of the two side plates (111). A feeding tube sleeve (122) is fixedly connected between the inner sides of the two L-shaped side plates (121). A horizontal connecting plate (123) is fixedly connected to the right side of each of the two L-shaped side plates (121). A guide block connecting rod (124) is fixedly connected to the top of each of the two L-shaped side plates (121) and the top of each of the two horizontal connecting plates (123). A guide block (125) is fixedly connected to the top of each of the two sets of guide block connecting rods (124). The front and rear sets of guide blocks are connected together. T-shaped side plates (126) are fixedly connected to the inner sides of the guide blocks (125). Spring connecting blocks (127) are fixedly connected to the top right side of the two guide blocks (125) on the right side. A dual-axis motor connecting block (128) is fixedly connected between the middle of the inner sides of the two T-shaped side plates (126). A dual-axis motor (129) is fixedly connected to the bottom of the dual-axis motor connecting block (128). The front and rear output ends of the dual-axis motor (129) extend to the outer sides of the two T-shaped side plates (126) and are fixedly connected to rotating rods (1210). A stop block (1211) is rotatably connected to the top of the outer sides of the two rotating rods (1210).
5. The epoxy anti-slip wear layer synchronous spraying device according to claim 4, characterized in that: Both sets of guide blocks (125) are slidably connected to each other by a movable crossbar (1212). A movable crossbar spring connecting block (1214) is fixedly connected to the top center of each of the two movable crossbars (1212). A spring (1215) is fixedly connected to the right side of each of the two movable crossbar spring connecting blocks (1214). The right ends of the two springs (1215) are respectively fixedly connected to the left side of the two spring connecting blocks (127). An elliptical groove is fixedly connected to the bottom center of each of the two movable crossbars (1212). The inner walls of the two elliptical sliding plates (1213) are rotatably connected to the outer walls of the two abutment blocks (1211). The right sides of the two moving crossbars (1212) extend to the right outer side of the two guide blocks (125) on the right side and are fixedly connected to the bottom of the T-shaped push-pull plate (1216). The bottom left side of the T-shaped push-pull plate (1216) is fixedly connected to the columnar push-pull crossbar (1217). The left side of the outer wall of the columnar push-pull crossbar (1217) is fixedly connected to two abutment discs (1218).
6. The epoxy anti-slip wear layer synchronous spraying device according to claim 1, characterized in that: The left and right sides of the outer wall of the connecting collar (22) are fixedly connected with side U-shaped connecting plates (23). The top of the front and rear sides of the two side U-shaped connecting plates (23) are fixedly connected with L-shaped support side plates (24). The top of the four L-shaped support side plates (24) are fixedly connected with a crusher connecting plate (25). The middle part of the bottom front and rear sides of the crusher connecting plate (25) is fixedly connected to the top of the two L-shaped side plates (1111). The top of the crusher connecting plate (25) is fixedly connected with a crusher (26). The bottom of the crusher (26) extends to the bottom of the crusher connecting plate (25) and is fixedly connected with a discharge hopper (27). The bottom of the discharge hopper (27) is connected to the storage pipe (21). The top of the storage tube (21) is aligned and connected. The bottom of the storage tube (21) is fixedly connected to the storage tube bottom plate (211). The bottom of the right side of the outer wall of the storage tube (21) is fixedly connected to the feed tube (210). The outer wall of the feed tube (210) is fixedly connected to the inner wall of the feed tube sleeve (122). The left side of the bottom of the outer wall of the feed tube (210) is fixedly connected to the feed tube (212). The bottom end of the feed tube (212) extends to the bottom of the storage tube bottom plate (211). The inner wall of the feed tube (210) is sleeved on the outer wall of the columnar push-pull crossbar (1217). The left side of the outer wall of the storage tube (21) is fixedly connected to the vent valve (28). The front and rear sides of the vent valve (28) are both fixedly connected to pipes (29).
7. The epoxy anti-slip wear layer synchronous spraying device according to claim 1, characterized in that: A connecting side plate (33) is fixedly connected to the inner top of each of the two Z-shaped side plates (31). A second motor connecting block (34) is fixedly connected between the inner sides of the two connecting side plates (33). A second motor (35) is fixedly connected to the top center of the second motor connecting block (34). A processing mechanism horizontal connecting plate (36) is fixedly connected to the bottom right side of each of the two connecting side plates (33). A semi-circular pallet connecting plate (37) is fixedly connected to the right side of the inner side of each of the two processing mechanism horizontal connecting plates (36). A semi-circular pallet connecting plate (37) is fixedly connected between the inner bottom of the two semi-circular pallet connecting plates (37). A semi-circular pallet (38) is fixedly connected to a columnar processing chamber discharge pipe (39) on its inner side. A hot air blower (311) is fixedly connected to the right end of the columnar processing chamber discharge pipe (39). The top two sides of the hot air blower (311) are fixedly connected to the bottom of two horizontal connecting plates (113). A receiving funnel (310) is fixedly connected to the top of the outer wall of the columnar processing chamber discharge pipe (39). The top of the receiving funnel (310) is aligned and connected to the bottom of the discharge pipe (212). A conical discharge sleeve is fixedly connected to the left side of the outer wall of the columnar processing chamber discharge pipe (39). 313), the bottom of the outer wall of the columnar processing chamber discharge pipe (39) is fixedly connected to a workpiece ventilation valve (312), the top of the inner side of the two semi-circular pallet connecting plates (37) is fixedly connected to the right side of the front and rear sides of the storage pipe bottom plate (211), the columnar processing chamber (314) is rotatably connected to the left side of the columnar processing chamber discharge pipe (39), the columnar processing chamber (314) is fixedly connected to the middle of the outer wall of the columnar processing chamber (314), the inner wall of the conical discharge sleeve (313) is sleeved on the outer wall of the columnar processing chamber (314) and the columnar filter (315), the columnar processing chamber (314) is fixedly connected to the middle of the outer wall of the columnar processing chamber (314) and the columnar filter (315), the columnar processing chamber (314) is fixedly connected to the bottom ...). 4) is fixedly connected to the left end of the processing chamber drive disc (316). The outer wall of the processing chamber drive disc (316) is fitted with a third track (317). The inner wall of the third track (317) away from the processing chamber drive disc (316) is fitted with a second processing chamber drive disc (318). The right side of the second processing chamber drive disc (318) is fixedly connected to the output end of the second motor (35). The front and rear sides of the left side of the storage frame (32) are fixedly connected with material passage pipes (319). The two ends of the material passage pipes (319) away from the storage frame (32) are fixedly connected with a laying plate (3110).
8. The epoxy anti-slip wear layer synchronous spraying device according to claim 1, characterized in that: The inner sides of the two suction chamber connecting plates (41) are respectively fixedly connected to the outer sides of the two processing mechanism horizontal connecting plates (36). The left side of the outer side of the two suction chamber connecting plates (41) is fixedly connected to a columnar suction chamber (43). The left side of the top of the outer wall of the two columnar suction chambers (43) is fixedly connected to a pipe interface (44). The top of the two pipe interfaces (44) is respectively fixedly connected to the end of the two pipes (29) away from the vent valve (28). The left end of the two columnar suction chambers (43) is fixedly connected to a second pipe (45). The end of the two second pipes (45) away from the columnar suction chambers (43) is respectively fixedly connected to the front and rear sides of the processing workpiece vent valve (312).
9. The epoxy anti-slip wear layer synchronous spraying device according to claim 8, characterized in that: Connecting sleeves (413) are fixedly connected to the top and bottom of the outer right side of the two air extraction chamber connecting plates (41). Elliptical rotating block columnar rotating rods (412) are rotatably connected inside the two sets of connecting sleeves (413). The top ends of the two elliptical rotating block columnar rotating rods (412) at the top extend to the top outer side of the two connecting sleeves (413) at the top and are fixedly connected to the bottom center of the two third transmission discs (1121). The inner ends of the two sets of elliptical rotating block columnar rotating rods (412) at the front and rear extend to the inner side of the two sets of connecting sleeves (413) and are fixedly connected to elliptical rotating blocks (411). Elliptical connecting blocks (410) are rotatably connected to the left side of the inner side of the elliptical rotating block (411). Push-pull block connecting rods (49) are fixedly connected to the left side of the two elliptical connecting blocks (410). Push-pull blocks (46) are rotatably connected to the left end of the two push-pull block connecting rods (49). The outer walls of the two push-pull blocks (46) are slidably connected to the inner side of the two sets of air extraction control component guide side plates (42). Piston connecting pipes (47) are fixedly connected to the left side of the two push-pull blocks (46). The left ends of the two piston connecting pipes (47) extend into the interior of the two columnar air extraction chambers (43) and are fixedly connected to pistons (48).
10. The epoxy anti-slip wear layer synchronous spraying device according to claim 9, characterized in that: The bottom ends of the two elliptical rotating block columnar rotating rods (412) at the bottom extend to the outer sides of the two connecting sleeves (413) at the bottom and are fixedly connected to the turntable columnar connecting rods (414). The bottom ends of the two turntable columnar connecting rods (414) are fixedly connected to the turntables (415). The outer walls of the two turntable columnar connecting rods (414) are rotatably connected to the inner walls of the two sleeves (117). The bottom left side of the two turntables (415) is rotatably connected to the vibration control blocks (416). The bottom of the outer walls of the two vibration control blocks (416) are rotatably connected to the inner walls of the two sleeves (117). There is a screen moving block (417), and screen column push-pull crossbars (418) are fixedly connected to the left side of each of the two screen moving blocks (417). The inner sides of the two screen moving blocks (417) are slidably connected to the outer walls of the two column guide rods (118). A screen (419) is fixedly connected between the left ends of the two screen column push-pull crossbars (418). The front and rear sides of the screen (419) are slidably connected to the inner sides of the two Z-shaped side plates (31) and located on one side of the top of the storage frame (32). The bottom of the screen (419) is slidably connected to the top of the storage frame (32).
Citation Information
Patent Citations
Anti-skating wearing layer of epoxy asphalt pavement and preparation method thereof
CN102296514B