Reinforcing device for slope protection and treatment
By designing a slope reinforcement device including rainproof and drainage mechanism, the problems of slope soil erosion and soil erosion caused by heavy rain are solved, and the stability of the slope is improved.
Patent Information
- Application Number
- CN202510520712.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-24
- Publication Date
- 2025-05-23
- Estimated Expiration
- 2045-04-24
AI Technical Summary
Existing slope reinforcement devices cannot effectively block the erosion of the slope soil by heavy rain, resulting in soil erosion and slope instability.
A reinforcement device including a support frame, a rainproof mechanism and a drainage mechanism is designed. The rainproof mechanism uses the design of a rain collecting box and a U-shaped tube to guide the rainwater into the rain collecting box and discharge it through the U-shaped tube during heavy rain, causing the rainproof curtain to descend and cover the slope; the drainage mechanism ensures that the rainwater can be discharged smoothly and avoids water accumulation through the design of the water connection tank and drain tank.
It effectively avoids direct erosion of the slope soil by rainwater during heavy rain, reduces soil erosion, and improves the stability of the slope.
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Figure CN120026645A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of slope protection, and specifically to a reinforcement device for slope protection and treatment. Background Art
[0002] Slope instability may trigger secondary disasters such as debris flows, washing away farmland and forest land, leading to ecological imbalance. In addition, slope collapses may cause road interruptions and dam failures, resulting in significant economic losses. Therefore, the protection and treatment of slopes are very important; After retrieval, a Chinese patent with the publication number CN111005394B discloses a reinforcement structure for loess slope treatment and protection, which relates to the technical field of loess slope reinforcement and solves the problem of loess slope reinforcement. A reinforcement structure for loess slope treatment and protection includes a base mechanism. Two foundations are installed on the lower end surface of the base mechanism. A water storage tank is installed at one end of the base mechanism. A fence assembly is installed on the outer surface of the other end of the base mechanism. Steps are installed on both sides of the fence assembly. A greening mechanism is installed on the lower end surface of the fence assembly. Two drainage pipes are installed inside the fence assembly. A slope top fixing mechanism A is installed at the upper end of the fence assembly. A mud flow prevention baffle is arranged at one end of the slope top fixing mechanism A. A fixing plate is installed on the lower end surface of the slope top fixing mechanism A; the present invention enables the device to have the functions of rapid installation, rainwater diversion, and plant planting; In the above technology, although the cooperation of the slope top fixing mechanism A and the fence assembly can play a guiding function to avoid rainwater scouring the soil, in the event of heavy rain, the above reinforcement structure cannot prevent rainwater from falling on the slope surface. Under the long-term rainwater scouring, the soil on the slope surface will quickly erode, leading to slope instability, and then may cause major disasters such as debris flows and slope collapses. Summary of the Invention
[0003] The purpose of the present invention is to provide a reinforcement device for slope protection and treatment to solve the problem that the existing slope reinforcement device cannot prevent heavy rain from scouring the slope surface soil.
[0004] To achieve the above purpose, the present invention provides the following technical solution: A reinforcement device for slope protection and treatment includes a support frame. A rain shielding mechanism is arranged on the top of the support frame. The rain shielding mechanism includes a winding drum and a rain shielding curtain. The winding drum is fixedly connected to the top of the support frame. A winding shaft is rotatably connected inside the winding drum. The rain shielding curtain is wound around the middle of the winding shaft and one end extends outside the winding drum. A drainage mechanism is arranged around the support frame. The drainage mechanism includes a water receiving groove and a drainage groove. The water receiving groove is arranged at a position adjacent to the winding drum. The drainage groove is arranged at one end of the bottom of the support frame. Two drain pipes are respectively communicated with both ends of the bottom of the water receiving groove. The drain pipes are communicated with the drainage groove. The anchoring mechanism is evenly arranged on the surface of the support frame.
[0005] Preferably, the rainproof curtain cloth is fixedly connected to a connecting rod at one end outside the winding drum, and both ends of the connecting rod are respectively fixedly connected to mounting blocks, the bottom of the mounting block is rotatably connected to two rollers, and both ends of the support frame are respectively provided with guide grooves, and the rollers are rollingly connected to the guide grooves.
[0006] Preferably, one end of the mounting block is fixedly connected to a rain collecting box, the bottom of the rain collecting box is connected to a connecting pipe, one end of the connecting pipe is connected to a U-shaped pipe, and the opening of the U-shaped pipe is arranged downward.
[0007] Preferably, first volute springs are fixedly connected to both ends of the winding drum, and one end of the first volute spring is fixedly connected to the winding shaft.
[0008] Preferably, a baffle is fixedly connected to the top of the water receiving trough away from one end of the winding drum, a plurality of water holes are provided on the surface of the baffle, and a cover plate is hingedly connected to the water receiving trough at one end of the winding drum.
[0009] Preferably, both ends of the top of the cover plate are fixedly connected with a winding rope, and both ends of the winding shaft extend to the outside of the winding drum and are rotatably connected with a winding wheel, and one end of the winding rope is wound around the winding wheel.
[0010] Preferably, a cavity is provided inside the winding wheel, and a second spiral spring is fixedly connected to the winding wheel in the cavity, and one end of the second spiral spring is fixedly connected to the winding shaft.
[0011] Preferably, the anchoring mechanism comprises an anchor rod, a sleeve and a limit plate, the anchor rod is connected to the support frame by bolts, one end of the anchor rod is fixedly connected to the sleeve, the side wall of the sleeve is provided with four through holes, and the limit plate is arranged in the through holes.
[0012] Preferably, a threaded rod is rotatably connected to one end of the sleeve, and the threaded rod is rotatably connected to the sleeve. The threaded rod is located at one end of the anchor rod and is rotatably connected to a fixed ring, and the fixed ring is fixedly connected to the sleeve. The threaded rod is threadedly connected to a movable ring at one end away from the fixed ring, and one end of the limit plate is hinged to two connecting rods, and the two connecting rods are respectively hinged to the fixed ring and the movable ring.
[0013] Preferably, one end of the threaded rod is fixedly connected to a rotating shaft, one end of the rotating shaft passes through the anchor rod and is rotatably connected to the anchor rod, and one end of the rotating shaft is fixedly connected to a knob.
[0014] Compared with the prior art, the present invention has the following beneficial effects: The present invention receives rainwater through a rain collecting box. When the amount of rainwater in the rain collecting box gradually increases, the gravity of the rain collecting box will increase. When the gravity of the rain collecting box is greater than the elastic force of the first volute spring, the rain collecting box will move downward under the action of gravity, thereby pulling the rain shielding curtain to move, allowing the rain shielding curtain to extend from the inside of the winding drum, thereby covering the soil on the slope surface, thereby preventing rainwater from directly scouring the slope surface soil, preventing soil erosion, and thus ensuring the stability of the slope. The present invention allows the rainwater inside the rain collecting box to be drained smoothly through the design of the connecting pipe and the U-shaped pipe. When the water level inside the rain collecting box is continuously reduced, the weight thereof will be reduced. When the gravity of the rain collecting box is less than the elastic force of the first volute spring, the first volute spring will rebound, thereby driving the reel to rotate, so as to reel up the rainproof curtain, so that the vegetation on the slope can be exposed to sunlight, so that the vegetation can grow better. During the growth process, the vegetation can further reinforce the soil on the slope, so as to avoid soil erosion. The present invention receives rainwater from the top of the slope through a water receiving trough, and can transport the rainwater in the water receiving trough to the drainage trough for discharge through a drainage pipe. In addition, the design of the cover plate can cover the opening of the water receiving trough when it is not raining, thereby preventing external soil, stones and dead branches and leaves from falling into the water receiving trough and blocking the drainage pipe. In addition, the design of the winding wheel, the winding rope and the second volute spring allows the cover plate to be automatically opened in rainy weather and automatically closed when it is not raining. The present invention drives the threaded rod to rotate by rotating the knob, thereby driving the movable ring to move, and then driving the connecting rod to expand outward, thereby driving the limit plate to expand outward, allowing the limit plate to pass through the through hole and insert into the soil, thereby improving the anchoring effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 This is a schematic diagram of the structure of the present invention installed on a slope; Figure 2 It is a schematic diagram of the three-dimensional structure of the present invention; Figure 3 It is a schematic diagram of the connection structure between the rain shield mechanism and the support frame in the present invention; Figure 4 It is a schematic diagram of the structure of the rain shielding mechanism in the present invention; Figure 5 It is a schematic diagram of the side cross-section structure of the winding drum in the present invention; Figure 6 It is a schematic diagram of the drainage mechanism structure in the present invention; Figure 7 It is a schematic diagram of the internal structure of the winding wheel in the present invention; Figure 8 It is a schematic diagram of the structure of the anchoring mechanism in the present invention.
[0016] In the figure: 1, support frame; 101, guide groove; 2, rain shield mechanism; 201, reel; 202, rain shield cloth; 203, reel; 204, connecting rod; 205, mounting block; 206, roller; 207, rain collecting box; 208, connecting pipe; 209, U-shaped pipe; 210, first volute spring; 3, drainage mechanism; 301, water receiving trough; 302, drainage trough; 303, drainage pipe; 304, baffle; 305, water hole; 306, cover plate; 307, reeling rope; 308, reeling wheel; 309, cavity; 310, second volute spring; 4, anchoring mechanism; 401, anchor rod; 402, sleeve; 403, through hole; 404, limit plate; 405, threaded rod; 406, fixed collar; 407, movable collar; 408, connecting rod; 409, rotating shaft; 410, knob. DETAILED DESCRIPTION
[0017] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. The described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0018] Example 1 See also Figure 1-8 The present invention provides a technical solution: a reinforcement device for slope protection and management, including a support frame 1, a rain shield mechanism 2 is arranged on the top of the support frame 1, the rain shield mechanism 2 includes a winding drum 201 and a rain shield cloth 202, the winding drum 201 is fixedly connected to the top of the support frame 1, and a winding shaft 203 is rotatably connected inside the winding drum 201, and the rain shield cloth 202 is wound and arranged in the middle of the winding shaft 203, and one end extends to the outside of the winding drum 201; the rain shield cloth 202 is located outside the winding drum 201 and is fixedly connected to a connecting rod 204 at one end, and the two ends of the connecting rod 204 are respectively A mounting block 205 is fixedly connected, and two rollers 206 are rotatably connected at the bottom of the mounting block 205. Guide grooves 101 are respectively provided at both ends of the support frame 1, and the rollers 206 are rollingly connected to the guide grooves 101; a rain collecting box 207 is fixedly connected at one end of the mounting block 205, and a connecting pipe 208 is connected at the bottom of the rain collecting box 207, and one end of the connecting pipe 208 is connected to a U-shaped tube 209, and the opening of the U-shaped tube 209 is set downward; the first volute springs 210 are fixedly connected at both ends of the winding drum 201, and one end of the first volute spring 210 is fixedly connected to the winding shaft 203; In this embodiment, when encountering heavy rain, the rain collecting box 207 will continuously receive rainwater. When the rainwater inside the rain collecting box 207 continues to increase, the weight of the rain collecting box 207 will increase. When the water level in the rain collecting box 207 exceeds the top of the U-shaped tube 209, the weight of the rain collecting box 207 will exceed the elastic force of the first volute spring 210. At this time, the roller 206 will move along the guide groove 101 to the bottom of the slope, allowing the rain collecting box 207 to move downward smoothly. In the process of the rain collecting box 207 moving downward, it will pull the rain shielding curtain 202 to move, allowing the rain shielding curtain 202 to move from The reel 201 extends out from the inside and covers the soil on the slope surface, thereby preventing rainwater from directly scouring the slope soil and causing soil erosion. In addition, when the water level inside the rain collecting box 207 exceeds the top of the U-shaped tube 209, the rainwater in the rain collecting box 207 will be discharged through the connecting tube 208 and the U-shaped tube 209. In heavy rain weather, the rainwater discharged from the U-shaped tube 209 is much smaller than the rainwater directly falling into the rain collecting box 207, so that the rainwater can be quickly accumulated in the rain collecting box 207 and move downward. In addition, the siphon phenomenon generated when the U-shaped tube 209 is drained can make the rain collecting box 207 The water in the box 207 is completely emptied. When the water level in the rain collecting box 207 is lower than the top of the U-shaped tube 209, the gravity of the rain collecting box 207 will be less than the elastic force of the first scroll spring 210, so that the first scroll spring 210 rebounds, thereby driving the reel 203 to rotate, so as to reel up the rain shield 202. If it rains lightly, the amount of rain falling into the rain collecting box 207 is less than the drainage capacity of the U-shaped tube 209. At this time, the rain collecting box 207 cannot accumulate enough rainwater, so it cannot move downward, and the rain shield 202 cannot cover the slope. Therefore, the drainage flow of the U-shaped tube 209 needs to be designed according to the stability of the slope. When the amount of rainwater falling into the rain collecting box 207 is less than the drainage volume of the U-shaped tube 209, it means that the rain is very small at this time and will not affect the stability of the slope. When the amount of rainwater falling into the rain collecting box 207 is greater than the drainage volume of the U-shaped tube 209, it means that the rain is heavy at this time. At this time, rainwater can be accumulated in the rain collecting box 207, so that it can move downward smoothly and pull the rain shield curtain 202 to move, so that the rain shield curtain 202 can cover the slope in time, thereby ensuring the stability of the slope.
[0019] Example 2 like Figure 6 As shown, a drainage mechanism 3 is arranged around the support frame 1, and the drainage mechanism 3 includes a water receiving groove 301 and a drainage groove 302. The water receiving groove 301 is arranged at a position adjacent to the winding drum 201, and the drainage groove 302 is arranged at one end of the bottom of the support frame 1. The two ends of the bottom of the water receiving groove 301 are respectively connected with drainage pipes 303, and the drainage pipes 303 are connected with the drainage groove 302; a baffle plate 304 is fixedly connected to the end of the top of the water receiving groove 301 away from the winding drum 201, and a plurality of water holes 305 are arranged on the surface of the baffle plate 304. The water receiving groove 301 is located at one end of the winding drum 201 and is hinged with a cover plate 306; In this embodiment, the water receiving trough 301 is arranged on the top of the slope, and the drainage trough 302 is arranged at the bottom of the slope. In rainy weather, the rainwater gathered on the top of the slope will flow into the water receiving trough 301, and flow into the drainage trough 302 through the drainage pipe 303, and finally be discharged through the drainage trough 302, so as to prevent the rainwater gathered on the top of the slope from flowing onto the slope surface, thereby preventing soil erosion on the slope surface. In addition, the baffle 304 can prevent the impurities from flowing into the water receiving trough 301 with the water flow, and the design of the water hole 305 allows the gathered rainwater to flow smoothly into the water receiving trough 301. In addition, the design of the cover plate 306 can cover the opening of the water receiving trough 301 when it is not raining, thereby preventing foreign soil, stones, dead branches and leaves and other impurities from falling into the water receiving trough 301, thereby preventing the drainage pipe 303 from being blocked by impurities.
[0020] Example 3 like Figure 7 As shown, the two ends of the top of the cover plate 306 are respectively fixedly connected with a winding rope 307, the two ends of the winding shaft 203 respectively extend to the outside of the winding drum 201, and are rotatably connected with a winding wheel 308, one end of the winding rope 307 is wound around the winding wheel 308; a cavity 309 is provided inside the winding wheel 308, and the winding wheel 308 is located in the cavity 309 and is fixedly connected with a second volute spring 310, and one end of the second volute spring 310 is fixedly connected to the winding shaft 203; In this embodiment, when the rainwater inside the rain collecting box 207 gradually increases and moves toward the bottom of the slope, the rain shield cloth 202 will gradually extend from the reel 201, thereby driving the reel shaft 203 to rotate. When the reel shaft 203 rotates, it will drive the reel wheel 308 to rotate, thereby reeling in the reel rope 307. When the reel rope 307 is reeled in, the cover plate 306 will gradually open, thereby allowing the opening of the water receiving trough 301 to gradually open, so that the rainwater gathered at the top of the slope can smoothly flow into the water receiving trough 301. When the cover plate 306 is fully opened and the reel rope 307 cannot be further reeled in, and the rain collecting box 207 has not moved to the bottom of the slope at this time, the second scroll spring 310 will gradually shrink, allowing the rain collecting box 207 to continue to move to the bottom of the slope.
[0021] like Figure 8As shown, the surface of the support frame 1 is evenly provided with an anchor mechanism 4; the anchor mechanism 4 includes an anchor rod 401, a sleeve 402 and a limit plate 404, the anchor rod 401 is connected to the support frame 1 by a bolt, one end of the anchor rod 401 is fixedly connected to the sleeve 402, the side wall of the sleeve 402 is provided with four through holes 403, and the limit plate 404 is arranged in the through hole 403; one end of the sleeve 402 is rotatably connected to a threaded rod 405, the threaded rod 405 is rotatably connected to the sleeve 402, and the threaded rod 405 is located at one end of the anchor rod 401 and is rotatably connected to the sleeve 402. A fixed collar 406 is connected, and the fixed collar 406 is fixedly connected to the sleeve 402; one end of the threaded rod 405 away from the fixed collar 406 is threadedly connected to a movable collar 407; one end of the limit plate 404 is hinged to two connecting rods 408, and the two connecting rods 408 are respectively hinged to the fixed collar 406 and the movable collar 407; one end of the threaded rod 405 is fixedly connected to a rotating shaft 409, one end of the rotating shaft 409 passes through the anchor rod 401 and is rotatably connected to the anchor rod 401, and one end of the rotating shaft 409 is fixedly connected to a knob 410; In this embodiment, when reinforcing the slope, it is first necessary to set a reserved hole on the slope surface, then place the support frame 1 on the slope surface, and then insert the anchor rod 401 into the reserved hole, and connect the anchor rod 401 and the support frame 1 together through bolts, so as to fix the support frame 1. When the anchor rod 401 is fully inserted into the reserved hole, the staff can turn the knob 410 to drive the rotating shaft 409 and the threaded rod 405 to rotate. When the threaded rod 405 rotates, it will drive the movable ring 407 to move toward the fixed ring 406. During this process, the angle between the two connecting rods 408 will gradually decrease, thereby driving the limit plate 404 to move, allowing the limit plate 404 to expand outward through the through hole 403 and insert into the soil, thereby improving the anchoring effect.
[0022] Working principle: When in use, when encountering heavy rain, the rain collecting box 207 will continuously collect rainwater. When the rainwater inside the rain collecting box 207 continues to increase, the weight of the rain collecting box 207 will increase. When the water level in the rain collecting box 207 exceeds the top of the U-shaped tube 209, the weight of the rain collecting box 207 will exceed the elastic force of the first volute spring 210. At this time, the roller 206 will move along the guide groove 101 to the bottom of the slope, allowing the rain collecting box 207 to move downward smoothly. In the process of the rain collecting box 207 moving downward, the rain shield cloth 202 will be pulled to move, allowing the rain shield cloth 202 to extend from the winding drum 201 and cover the soil on the slope surface, thereby preventing rainwater from directly eroding the slope surface soil and causing soil erosion. In addition, when the rain collecting box When the water level inside 207 exceeds the top of the U-shaped tube 209, the rainwater in the rain collecting box 207 will be discharged through the connecting tube 208 and the U-shaped tube 209. In rainstorm weather, the rainwater discharged from the U-shaped tube 209 is much smaller than the rainwater directly falling into the rain collecting box 207, so that the rainwater can be quickly accumulated in the rain collecting box 207 and move downward. In addition, the siphon phenomenon generated when the U-shaped tube 209 is drained can completely drain the water in the rain collecting box 207. When the water level in the rain collecting box 207 is lower than the top of the U-shaped tube 209, the gravity of the rain collecting box 207 will be smaller than the elastic force of the first volute spring 210, so that the first volute spring 210 rebounds, thereby driving the reel 203 to rotate, so as to reel up the rain shielding curtain 202. When the rainwater in the rain collecting box 207 gradually increases and moves toward the bottom of the slope, the rainproof curtain 202 will gradually extend from the reel 201, thereby driving the reel shaft 203 to rotate. When the reel shaft 203 rotates, it will drive the reel wheel 308 to rotate, thereby reeling in the reel rope 307. When the reel rope 307 is reeled in, the cover plate 306 will gradually open, thereby allowing the opening of the water receiving trough 301 to gradually open, so that the rainwater collected on the top of the slope can smoothly flow into the water receiving trough 301. The rainwater flowing into the water receiving trough 301 will flow into the drainage trough 302 through the drain pipe 303, and finally be discharged through the drainage trough 302, so as to prevent the rainwater collected on the top of the slope from flowing onto the slope surface, thereby preventing the slope surface from being damaged. In the case of soil erosion, the baffle plate 304 can prevent the impurities from flowing into the water receiving trough 301 with the water flow, and the design of the water through hole 305 allows the collected rainwater to flow smoothly into the water receiving trough 301. In addition, the design of the cover plate 306 can cover the opening of the water receiving trough 301 when it is not raining, thereby preventing foreign soil, stones, dead branches and leaves and other impurities from falling into the water receiving trough 301, thereby preventing the drainage pipe 303 from being blocked by impurities. When the cover plate 306 is fully opened, the winding rope 307 cannot be further wound, and the rain collecting box 207 has not moved to the bottom of the slope at this time, the second volute spring 310 gradually contracts, so that the rain collecting box 207 can continue to move to the bottom of the slope; When reinforcing the slope, it is first necessary to set a reserved hole on the slope surface, then place the support frame 1 on the slope surface, and then insert the anchor rod 401 into the reserved hole, and connect the anchor rod 401 and the support frame 1 together through bolts, so as to fix the support frame 1. When the anchor rod 401 is fully inserted into the reserved hole, the staff can turn the knob 410 to drive the rotating shaft 409 and the threaded rod 405 to rotate. When the threaded rod 405 rotates, it will drive the movable ring 407 to move toward the fixed ring 406. During this process, the angle between the two connecting rods 408 will gradually decrease, thereby driving the limit plate 404 to move, allowing the limit plate 404 to expand outward through the through hole 403 and insert into the soil, thereby improving the anchoring effect.
[0023] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes and modifications may be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A reinforcement device for slope protection and management, comprising a support frame (1), characterized in that: A rain shield mechanism (2) is arranged on the top of the support frame (1), and the rain shield mechanism (2) comprises a reel (201) and a rain shield cloth (202). The reel (201) is fixedly connected to the top of the support frame (1), and a reel shaft (203) is rotatably connected inside the reel (201). The rain shield cloth (202) is wound around the middle of the reel shaft (203), and one end of the reel shaft extends to the outside of the reel (201). A rain shield mechanism (202) is arranged around the support frame (1). A water mechanism (3), the drainage mechanism (3) comprising a water receiving groove (301) and a drainage groove (302), the water receiving groove (301) being arranged at a position adjacent to the winding drum (201), the drainage groove (302) being arranged at one end of the bottom of the support frame (1), the two ends of the bottom of the water receiving groove (301) being respectively connected to drainage pipes (303), the drainage pipes (303) being connected to the drainage groove (302), and the surface of the support frame (1) being evenly provided with anchoring mechanisms (4).
2. A slope protection and management reinforcement device according to claim 1, characterized in that: One end of the rainproof curtain cloth (202) located outside the winding drum (201) is fixedly connected to a connecting rod (204), both ends of the connecting rod (204) are respectively fixedly connected to mounting blocks (205), the bottom of the mounting block (205) is rotatably connected to two rollers (206), and both ends of the support frame (1) are respectively provided with guide grooves (101), and the rollers (206) are rollingly connected to the guide grooves (101).
3. A slope protection and management reinforcement device according to claim 2, characterized in that: One end of the mounting block (205) is fixedly connected to a rain collecting box (207), the bottom of the rain collecting box (207) is connected to a connecting pipe (208), one end of the connecting pipe (208) is connected to a U-shaped pipe (209), and the opening of the U-shaped pipe (209) is arranged downward.
4. A reinforcement device for slope protection and management according to claim 3, characterized in that: The first volute springs (210) are fixedly connected to the two ends of the winding drum (201), and one end of the first volute spring (210) is fixedly connected to the winding shaft (203).
5. A slope protection and management reinforcement device according to claim 4, characterized in that: A baffle (304) is fixedly connected to the top of the water receiving trough (301) at one end away from the winding drum (201), and a plurality of water holes (305) are provided on the surface of the baffle (304). A cover plate (306) is hingedly connected to one end of the water receiving trough (301) located at the winding drum (201).
6. A reinforcement device for slope protection and management according to claim 5, characterized in that: The two ends of the top of the cover plate (306) are respectively fixedly connected with a reeling rope (307), the two ends of the reeling shaft (203) respectively extend to the outside of the reeling drum (201) and are rotatably connected with a reeling wheel (308), and one end of the reeling rope (307) is wound around the reeling wheel (308).
7. A reinforcement device for slope protection and management according to claim 6, characterized in that: A cavity (309) is provided inside the winding wheel (308), and a second volute spring (310) is fixedly connected to the winding wheel (308) located in the cavity (309), and one end of the second volute spring (310) is fixedly connected to the winding shaft (203).
8. A slope protection and management reinforcement device according to claim 7, characterized in that: The anchoring mechanism (4) comprises an anchor rod (401), a sleeve (402) and a limit plate (404); the anchor rod (401) is connected to the support frame (1) via bolts; one end of the anchor rod (401) is fixedly connected to the sleeve (402); a side wall of the sleeve (402) is provided with four through holes (403); and a limit plate (404) is provided in each of the through holes (403).
9. A reinforcement device for slope protection and management according to claim 8, characterized in that: A threaded rod (405) is rotatably connected to one end of the sleeve (402), and the threaded rod (405) is rotatably connected to the sleeve (402). One end of the threaded rod (405) located on the anchor rod (401) is rotatably connected to a fixed collar (406), and the fixed collar (406) is fixedly connected to the sleeve (402). One end of the threaded rod (405) away from the fixed collar (406) is threadedly connected to a movable collar (407). One end of the limit plate (404) is hinged to two connecting rods (408), and the two connecting rods (408) are respectively hinged to the fixed collar (406) and the movable collar (407).
10. A reinforcement device for slope protection and management according to claim 9, characterized in that: One end of the threaded rod (405) is fixedly connected to a rotating shaft (409), one end of the rotating shaft (409) passes through the anchor rod (401) and is rotatably connected to the anchor rod (401), and one end of the rotating shaft (409) is fixedly connected to a knob (410).
Citation Information
Patent Citations
A loess slope treatment and reinforcement structure
CN111005394B
Environmental-friendly type soilless cultivation system
CN104885895A
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CN106449260A
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CN114908779A
Protection device and protection method for slope rock soil treatment
CN117230815A
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