Ecological protection slope for river regulation
By setting up collection grooves and dialing structures on the river channel ecological slope protection, and using wind and rain sensors and motors to control the dialing rotation, the problem of river pollution is solved and the automatic collection and emission of debris is achieved.
Patent Information
- Application Number
- CN202510766685.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-10
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2045-06-10
AI Technical Summary
River channel management Debris on ecological slope protection is prone to enter the river channel under the erosion of rainwater, resulting in river pollution.
The collection groove and dialing structure are set up on the slope protection surface. The rotation of the dialing plate is controlled by wind and rain sensors and motors. Rainwater washes the debris into the collection groove and discharges it into the slope through the leakage hole. Combining the scraper and spring structure to ensure the debris collection effect.
Effectively reduce debris entering the river channel, reduce the risk of river pollution, and realize the automatic collection and emission of debris.
Smart Images

Figure CN120273305A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of water conservancy projects, and particularly to an ecological slope protection for river regulation. Background Art
[0002] The ecological slope protection for river regulation is a slope built on both banks of the river, which is used to prevent the river slope from collapsing due to river erosion and has the function of protecting the safety of bridges and embankments. The ecological slope protection for river regulation is an inclined slope body, and the slope surface of the slope body gradually inclines towards the direction close to the river from top to bottom.
[0003] Since the ecological slope protection is inclined, sundries on the road surface are likely to remain on the slope protection. When it rains, the rainwater is likely to wash the sundries on the slope protection along the inclined slope surface into the river, resulting in the sundries remaining in the river and polluting the river. Summary of the Invention
[0004] In order to reduce the pollution of the river, this application provides an ecological slope protection for river regulation.
[0005] This application provides an ecological slope protection for river regulation adopting the following technical scheme: An ecological slope protection for river regulation, including a slope body, wherein a plurality of groups of collection grooves are formed on the slope surface of the slope body. The plurality of groups of collection grooves are arranged along the length direction of the slope body. The number of collection grooves in each group is multiple, and the multiple collection grooves in one group are arranged along the inclined direction of the slope surface of the slope body. The groove walls of the collection grooves are hardened, and a plurality of water leakage holes are formed on the groove walls of the collection grooves; A flap for blocking the collection groove is rotatably connected in each collection groove. The rotation axis of the flap is arranged along the length direction of the slope body. Two sliders are hinged to one side of the lower surface of the flap. The two sliders are arranged along the rotation axis of the flap. A chute adapted to the slider is formed on the groove wall of the collection groove. One end of the chute close to the slider inclines upwards, and the end of the chute far from the slider inclines downwards; A support member for supporting the flap is arranged in the collection groove, and the support member makes the upper surface of the flap flush with the slope surface of the slope body. A control component for controlling the rotation of the flap is further arranged in the slope body, and the number of the control components is the same as the number of groups of the collection grooves.
[0006] By adopting the above technical solution, in the initial state, the support member supports the dial plate, making the dial plate flush with the slope surface of the slope body, thereby blocking the collection groove. At this time, the sundries on the slope body are retained on the dial plate. When it rains, the controller controls the dial plate to rotate continuously and reset. When the dial plate rotates, the control component makes the side of the dial plate close to the slider move downward. The chute guides the slider, and the cooperation between the chute and the slider makes the side of the dial plate close to the slider rotate downward, and the collection groove opens. As the rainwater flows, the rainwater washes the sundries on the dial plate, causing the sundries to fall into the collection groove for collection. The rainwater in the collection groove seeps into the slope body through the water leakage holes; every time the dial plate rotates and tilts, the sundries on the slope body are dumped and collected once, reducing the occurrence of the situation where sundries enter the river channel and cause river channel pollution.
[0007] Optionally, a connecting rod is provided between the two sliders. Both ends of the connecting rod are fixed to the corresponding sliders. The transmission member includes a plugging rod perpendicular to the connecting rod. The plugging rod penetrates through the connecting rod and is slidably plugged with it. The plugging rod is slidably connected to the groove wall of the collection groove. The sliding direction of the plugging rod is arranged along the height direction of the slope body. Both ends of the plugging rod are fixedly connected with support springs, and the lower ends of the support springs are fixed to the bottom groove wall of the collection groove.
[0008] By adopting the above technical solution, the cooperation between the plugging rod and the support spring can support the connecting rod, making the connecting rod and the slider located at the upper end of the chute, thereby supporting the dial plate and making the dial plate flush with the slope surface of the slope body; when it is necessary to make the dial plate rotate and tilt, the control component controls the plugging rod to move downward and compress the support spring at the same time. The downward movement of the plugging rod drives the connecting rod and the slider to move. The cooperation between the slider and the chute makes the side of the dial plate close to the slider rotate downward, and at the same time, the plugging rod and the connecting rod move relatively; when it is necessary to make the dial plate reset, the control component controls the support spring to restore its deformation and pushes the plugging rod, the connecting rod and the slider to move upward. The cooperation between the slider and the chute makes the dial plate gradually reset. When the support spring returns to its initial state, the dial plate resets.
[0009] Optionally, the control component includes a horizontally arranged cross bar. The length direction of the cross bar is arranged along the arrangement direction of a group of collection grooves. Vertically fixed to the cross bar are vertical rods corresponding to the plugging rods one by one. The upper ends of the vertical rods are fixed to one ends of the corresponding plugging rods. The vertical rods are slidably plugged with the slope body. A cavity for accommodating the cross bar to move vertically is also opened in the slope body. The bottom of the cross bar is connected with a reset spring, and the lower end of the reset spring is fixed to the bottom cavity wall of the cavity; The control component further includes a wind and rain sensor installed on the slope body, and a motor installed in the slope body. A coaxial cam is fixedly connected to the output shaft of the motor. The axial direction of the cam is arranged along the width direction of the slope body. A vertical rod fixed to the cross bar is also provided below the cam, and this vertical rod is always in contact with the circumferential side wall of the cam. A cavity for accommodating the motor and the cam is opened in the slope body.
[0010] By adopting the above technical solution, in the initial state, the side with the minimum radius of the cam faces downward. The reset spring cooperates with the cross bar to make the corresponding vertical bar abut against the side wall of the cam. At this time, the cross bar cooperates with the vertical bar, and the support spring cooperates with the insertion rod to support the connecting rod and the slider, making the deflector flush with the slope surface of the slope body; when it rains, the wind and rain sensor transmits a signal to the controller, and the controller controls the motor to work, making the cam rotate continuously; when the side with the larger radius of the cam rotates downward, the cam pushes the corresponding vertical bar and the cross bar downward. The movement of the cross bar compresses the reset spring. At the same time, the cross bar drives the other vertical bars to move, so that the vertical bars drive the corresponding insertion rods to move downward. The downward movement of the insertion rods makes the side of the deflector close to the slider rotate downward. As the cam continues to rotate, the side with the larger radius of the cam rotates upward. At this time, the reset spring recovers its deformation and pushes the cross bar and the vertical bar upward. At the same time, the support spring recovers its deformation and pushes the insertion rod, the connecting rod and the slider upward, making the deflector gradually reset.
[0011] Each time the cam rotates one week, it drives the deflector to rotate and reset once. When the rain stops, the wind and rain sensor transmits a signal to the controller, and the controller controls the motor to work. When the side with the smaller radius of the cam faces downward, the controller controls the motor to stop working.
[0012] Optionally, a scraping assembly for pushing debris into the collection groove is further provided on the deflector.
[0013] By adopting the above technical solution, when the deflector rotates and tilts, the scraping assembly works to scrape the debris on the deflector into the collection groove, so that the debris can be better collected.
[0014] Optionally, the scraping assembly includes a scraping rod slidably connected to the deflector. The sliding direction of the scraping rod is arranged along the inclination direction of the slope surface of the slope body. A limiting spring is connected to the scraping rod. The end of the limiting spring away from the scraping rod is fixed to the deflector. The limiting spring makes the scraping rod located on the side of the deflector away from the slider. The sliding end of the scraping rod is located below the deflector. A pull rope is connected to the sliding end of the scraping rod. The end of the pull rope away from the scraping rod is fixed to the bottom of the groove wall on the side of the collection groove close to the slider.
[0015] By adopting the above technical solution, in the initial state, the deflector is flush with the slope surface of the slope body. The limiting spring and the pull rope cooperate to make the scraping rod located on the side of the deflector away from the slider. When the insertion rod moves downward to make the deflector rotate, the side of the deflector away from the slider rotates upward, so that the pull rope pulls the scraping rod to move in the direction close to the slider, so that the scraping rod scrapes the debris on the deflector, and at the same time compresses the limiting spring; when the insertion rod moves upward to make the deflector reset, the limiting spring recovers its deformation and pushes the scraping rod to move in the direction away from the slider. The scraping rod drives the corresponding end of the pull rope to move. When the deflector resets, the limiting spring returns to the initial state, and the scraping rod also moves to the initial position.
[0016] Optionally, a U-shaped sliding block is fixedly connected to the lower end of the scraping rod. A sliding hole adapted to the sliding block is formed in the dial plate. The length direction of the sliding hole is arranged along the inclination direction of the slope surface of the slope body. The sliding block is movably inserted into the sliding hole, and the dial plate is located between the upper and lower wing plates of the sliding block.
[0017] By adopting the above technical solution, the sliding block cooperates with the sliding hole, so that the scraping rod is slidably connected to the dial plate.
[0018] Optionally, a U-shaped support groove is fixedly connected to the upper end of the vertical rod corresponding to the cam. The cam is inserted into the support groove, and both end faces of the cam are in contact with the corresponding groove walls of the support groove.
[0019] By adopting the above technical solution, the support groove cooperates with the cam, so that the cam can better cooperate with the corresponding vertical rod.
[0020] In summary, the present application includes at least one of the following beneficial technical effects: By providing a slope body, a collection groove, a water leakage hole, a dial plate, a slider, a sliding groove, a support member and a control component, the situation of sundries entering the river channel and causing river channel pollution is reduced; By providing a wind and rain sensor, a controller, a motor, a cam, a vertical rod, a cross rod and a return spring, when it rains, the dial plate can be controlled to rotate continuously and reset, so as to continuously collect the sundries on the slope body; By providing a scraping rod, a pulling rope and a limiting spring, the sundries can be better collected. Description of the Drawings
[0021] Figure 1 It is a schematic diagram showing the overall structure of the ecological slope protection in the embodiment of the present application.
[0022] Figure 2 It is a cross-sectional view showing the overall structure of the ecological slope protection in the embodiment of the present application.
[0023] Figure 3 It is a cross-sectional view showing the structure of the support member in the embodiment of the present application.
[0024] Figure 4 It is a cross-sectional view showing a partial structure of the control component in the embodiment of the present application.
[0025] Figure 5 It is a cross-sectional view showing the structure of the scraping and sweeping component in the embodiment of the present application.
[0026] Description of reference numerals: 1, slope body; 11, collection groove; 12, water leakage hole; 13, sliding groove; 14, connection groove; 15, cavity; 2, baffle plate; 21, slider; 22, connecting rod; 23, sliding hole; 3, support member; 31, insertion rod; 32, connection block; 33, support spring; 4, control assembly; 41, cross bar; 42, return spring; 43, vertical rod; 44, motor; 45, cam; 46, support groove; 47, wind and rain sensor; 5, scraping assembly; 51, scraping rod; 52, sliding block; 53, limiting spring; 54, pulling rope. Detailed implementation manners
[0027] The following further elaborates on this application in conjunction with Figures 1-5 accompanying drawings.
[0028] The embodiment of this application discloses an ecological slope protection for river regulation. Refer to Figure 1 and Figure 2 , which includes a slope body 1. The slope body 1 has an inclined slope surface, and the slope surface of the slope body 1 gradually inclines towards the direction close to the river from top to bottom; a plurality of groups of collection grooves 11 are opened on the slope surface of the slope body 1. The plurality of groups of collection grooves 11 are arranged along the length direction of the slope body 1. The number of collection grooves 11 in each group is multiple, and the multiple collection grooves 11 in one group are arranged along the inclined direction of the slope body 1. In this embodiment, the number of collection grooves 11 in each group is three.
[0029] Refer to Figure 2 and Figure 3 , the groove wall of the collection groove 11 is hardened, and a plurality of water leakage holes 12 are opened on the groove wall of the collection groove 11. The water in the collection groove 11 can flow to the soil of the slope body 1 through the water leakage holes 12, so as to drain the water in the collection groove 11; a baffle plate 2 is rotatably connected in each collection groove 11. The baffle plate 2 is located at the top of the collection groove 11. The baffle plate 2 is used to block the top opening of the collection groove 11. The rotation axis of the baffle plate 2 is located in the middle of the baffle plate 2, and the rotation axis direction of the baffle plate 2 is arranged along the length direction of the slope body 1.
[0030] One side edge of the lower surface of the baffle plate 2 is hinged with two sliders 21. The two sliders 21 are arranged along the rotation axis direction of the baffle plate 2, that is, along the length direction of the slope body 1. A connecting rod 22 is arranged between the two sliders 21. Both ends of the connecting rod 22 are fixed to the corresponding sliders 21; sliding grooves 13 are opened on the two groove walls of the collection groove 11 corresponding to the sliders 21. The sliding grooves 13 are adapted to the sliders 21. One end of the sliding groove 13 close to the slider 21 inclines upwards, and one end of the sliding groove 13 far from the slider 21 inclines downwards and away from the slider 21.
[0031] A support member 3 for supporting the deflector 2 is provided in the collection groove 11. The support member 3 includes an insertion rod 31 perpendicular to the connecting rod 22. The insertion rod 31 penetrates through the connecting rod 22 and is slidably inserted therein. Connection blocks 32 are fixedly connected to both ends of the insertion rod 31. Connection grooves 14 corresponding to the connection blocks 32 one by one are formed on the groove wall of the collection groove 11. The length direction of the connection groove 14 is arranged along the height direction of the slope body 1; a support spring 33 is fixedly connected to the lower surface of the connection block 32. The support spring 33 is located in the connection groove 14, and the lower end of the support spring 33 is fixedly connected to the lower end wall of the connection groove 14.
[0032] The support spring 33 supports the connection block 32, the insertion rod 31 and the connecting rod 22, so that the connecting rod 22 and the slider 21 are located at the highest end of the chute 13. At this time, the slider 21 supports the deflector 2, so that the inclination angle of the deflector 2 is the same as the inclination angle of the slope surface of the slope body 1. At this time, the deflector 2 seals the top opening of the collection groove 11.
[0033] Refer to Figure 2 、 Figure 3 And Figure 4 At the slope body 1, a control assembly 4 for controlling the rotation of the deflector 2 is also provided. Each group of collection grooves 11 corresponds to a control assembly 4. The control assembly 4 includes a horizontally arranged cross bar 41. The cross bar 41 is located below the corresponding group of collection grooves 11. The length direction of the cross bar 41 is arranged along the width direction of the slope body 1. A cavity 15 for accommodating the cross bar 41 to move along the height direction of the slope body 1 is also provided in the slope body 1; a return spring 42 is fixedly connected to the lower side of the cross bar 41. In this embodiment, the number of the return springs 42 is two. The two return springs 42 are arranged along the length direction of the cross bar 41. The lower end of the return spring 42 is fixed on the bottom wall of the cavity 15. The return spring 42 supports the cross bar 41.
[0034] Vertically fixed to the cross bar 41 are vertical rods 43 corresponding to the insertion rods 31 one by one. All the vertical rods 43 are located at the same end of the insertion rods 31. The vertical rods 43 are slidably inserted into the slope body 1 and extend into the corresponding collection grooves 11. The upper end of the vertical rod 43 is fixedly connected to the lower surface of the corresponding connection block 32.
[0035] Another vertical rod 43 is also fixedly connected to the cross bar 41. This vertical rod 43 is located on the side of the other vertical rods 43 closer to the higher part of the slope body 1. A cavity is provided above the slope body 1 where this vertical rod 43 is located. A motor 44 is installed in the cavity. A coaxial cam 45 is fixedly connected to the output shaft of the motor 44. The axial direction of the cam 45 is arranged along the width direction of the slope body 1; a support groove 46 is fixedly connected to the top end of the vertical rod 43 corresponding to the cam 45. Opposite side walls of the support groove 46 are in contact with the corresponding end faces of the cam 45. The return spring 42 makes the cam 45 always abut against the inner bottom wall of the support groove 46.
[0036] When the minimum radius of the cam 45 faces downward, the return spring 42 and the support spring 33 are in their initial states. At this time, the slider 21 is at the highest end of the chute 13, making the dial 2 flush with the slope surface of the slope body 1 and closing the top opening of the collection tank 11. The control component 4 further includes a controller (not shown in the figure) and a wind and rain sensor 47 installed on the surface of the slope body 1. The controller is electrically connected to both the motor 44 and the wind and rain sensor 47.
[0037] When it is not raining, the cam 45 cooperates with the corresponding vertical rod 43, horizontal rod 41, and return spring 42 to make the dial 2 flush with the slope surface of the slope body 1, which is the initial state. When it is raining, the wind and rain sensor 47 receives a signal and transmits the signal to the controller. The controller controls the motor 44 to operate. The motor 44 drives the cam 45 to rotate. When the side with the larger radius of the cam 45 rotates downward, the cam 45 pushes the support groove 46 and the corresponding vertical rod 43 downward. This vertical rod 43 presses the horizontal rod 41 and the other vertical rods 43 downward, and at the same time compresses the return spring 42.
[0038] The vertical rod 43 moves and pulls the corresponding insertion rod 31 to move. The insertion rod 31 drives the corresponding connecting block 32 and the connecting rod 22 to move, and at the same time compresses the support spring 33. The connecting rod 22 drives the slider 21 to move downward. At the same time, the chute 13 guides the slider 21 and the connecting rod 22, so that the connecting rod 22 and the slider 21 move downward and away from the vertical rod 43, thereby causing the corresponding side of the dial 2 to rotate downward. The dial 2 gradually tilts, and the rain washes the debris on the dial 2 into the collection tank 11. The debris is collected in the collection tank 11, and the rainwater seeps into the slope body 1 through the water leakage holes 12; it reduces the situation where rain washes the debris into the river channel, thereby reducing the pollution of the river channel.
[0039] When the side with the larger radius of the cam 45 rotates upward, the return spring 42 restores its deformation and pushes the horizontal rod 41 and the vertical rod 43 upward. The vertical rod 43 drives the corresponding insertion rod 31, connecting block 32, connecting rod 22, and slider 21 to move upward. At the same time, the support spring 33 restores its deformation and pushes the connecting block 32 upward. The chute 13 guides the slider 21, so that the slider 21 also drives the connecting rod 22 to move in the direction closer to the vertical rod 43, thereby causing the dial 2 to gradually rotate to be flush with the slope surface of the slope body 1; every time the cam 45 rotates one week, the dial 2 rotates and tilts and then resets once, thereby completing the collection of debris once. When the rain stops, the wind and rain sensor 47 receives a signal, and the controller controls the motor 44 to operate until the dial 2 rotates to be flush with the slope surface of the slope body 1, at which time the motor 44 stops operating.
[0040] Refer to Figure 2 、 Figure 3 And Figure 5In order to make the debris on the paddle plate 2 fall into the collecting trough 11 better, the paddle plate 2 is also provided with a scraping assembly 5 for moving the debris. The scraping assembly 5 includes a scraper rod 51 slidably connected to the paddle plate 2. In this embodiment, there are two scraper rods 51, which are arranged along the length direction of the connecting rod 22, and the scraper rods 51 are perpendicular to the paddle plate 2; an I-shaped sliding block 52 is fixedly connected to the lower end of the scraper rod 51, and sliding holes 23 corresponding to the sliding blocks 52 are opened on the paddle plate 2. The length direction of the sliding hole 23 is arranged along the inclination direction of the slope surface of the slope body 1, and each sliding block 52 is slidably inserted in the corresponding sliding hole 23, and the paddle plate 2 is located between the upper and lower wing plates of the sliding block 52.
[0041] The scraping assembly 5 also includes a limit spring 53 disposed in the sliding hole 23. The limit spring 53 is located on the side of the sliding block 52 close to the vertical rod 43. One end of the limit spring 53 is fixed to the side wall corresponding to the sliding block 52, and the other end of the limit spring 53 is fixed to the hole wall corresponding to one end of the sliding hole 23. A pull rope 54 is fixedly connected to the lower surface of the sliding block 52. The end of the pull rope 54 away from the sliding block 52 is fixed to the bottom groove wall of the collecting groove 11 close to the slider 21. In the initial state, the limit spring 53 makes the sliding block 52 and the scraping rod 51 located on the side away from the corresponding vertical rod 43, and the pull rope 54 is straight.
[0042] When the connecting block 32 and the connecting rod 22 move downward, the side of the paddle plate 2 corresponding to the scraper rod 51 rotates upward, and at the same time, the pull rope 54 pulls the sliding block 52 and the scraper rod 51 to move in the direction close to the connecting rod 22, that is, the scraper rod 51 slides toward the lower side of the paddle plate 2, and the movement of the sliding block 52 compresses the limit spring 53; the movement of the scraper rod 51 can push the debris on the paddle plate 2 into the collecting groove 11, so as to better collect the debris.
[0043] When the connecting block 32 and the connecting rod 22 move upward, the paddle plate 2 gradually rotates to be flush with the slope surface of the slope body 1, and at the same time, the supporting spring 33 recovers its deformation and pushes the connecting block 32 to move, and the limiting spring 53 also recovers its deformation and pushes the scraper rod 51 to move away from the connecting rod 22; when the paddle plate 2 rotates to the initial state, the scraper rod 51 returns to its initial position, and the limiting spring 53 and the pull rope 54 also return to their initial states.
[0044] The implementation principle of an ecological slope protection for river regulation in an embodiment of this application is as follows: When it does not rain, the baffle 2 is flush with the slope surface of the slope body 1. When it rains, the wind and rain sensor 47 transmits a signal to the controller, and the controller controls the motor 44 to work, so that the baffle 2 rotates continuously and resets. When the baffle 2 rotates downward, the lever moves and scrapes the sundries on the baffle 2 into the collection tank 11. When the baffle 2 resets, the scraping rod 51 also returns to its initial position. After the rain stops, the wind and rain sensor 47 transmits a signal to the controller. When the baffle 2 rotates to be flush with the slope surface of the slope body 1, the controller controls the motor 44 to stop working.
[0045] The above are all preferred embodiments of this application, and the protection scope of this application is not limited thereby. Therefore, all equivalent changes made according to the structure, shape, and principle of this application shall be covered within the protection scope of this application.
Claims
1. An ecological slope protection for river regulation, including a slope body (1), characterized in that: A plurality of sets of collecting grooves (11) are formed on the slope surface of the slope body (1). The plurality of sets of collecting grooves (11) are arranged along the length direction of the slope body (1). The number of collecting grooves (11) in each set is multiple. The multiple collecting grooves (11) in one set are arranged along the inclined direction of the slope surface of the slope body (1). The groove walls of the collecting grooves (11) are hardened, and a plurality of water leakage holes (12) are formed in the groove walls of the collecting grooves (11); A baffle (2) for blocking the collecting groove (11) is rotatably connected in each collecting groove (11). The rotation axis of the baffle (2) is arranged along the length direction of the slope body (1). Two sliders (21) are hinged to one side of the lower surface of the baffle (2). The two sliders (21) are arranged along the rotation axis of the baffle (2). A chute (13) adapted to the slider (21) is formed in the groove wall of the collecting groove (11). One end of the chute (13) close to the slider (21) is inclined upward, and one end of the chute (13) far from the slider (21) is inclined downward; A support member (3) for supporting the baffle (2) is arranged in the collecting groove (11). The support member (3) makes the upper surface of the baffle (2) flush with the slope surface of the slope body (1). A control assembly (4) for controlling the rotation of the baffle (2) is further arranged in the slope body (1). The number of the control assemblies (4) is the same as the number of sets of the collecting grooves (11); A scraping assembly (5) for pushing sundries into the collecting groove (11) is further arranged on the baffle (2). The scraping assembly (5) includes a scraping rod (51) slidably connected to the baffle (2). The sliding direction of the scraping rod (51) is arranged along the inclined direction of the slope surface of the slope body (1). A limiting spring (53) is connected to the scraping rod (51). One end of the limiting spring (53) far from the scraping rod (51) is fixed to the baffle (2). The limiting spring (53) makes the scraping rod (51) located on the side of the baffle (2) far from the slider (21). The sliding end of the scraping rod (51) is located below the baffle (2). A pull rope (54) is connected to the sliding end of the scraping rod (51). One end of the pull rope (54) far from the scraping rod (51) is fixed to the bottom of the groove wall on the side of the collecting groove (11) close to the slider (21).
2. The ecological slope protection for river regulation according to claim 1, characterized in that: A connecting rod (22) is arranged between the two sliders (21). Both ends of the connecting rod (22) are fixed to the corresponding sliders (21); A plugging rod (31) is slidably inserted into the connecting rod (22). The plugging rod (31) is perpendicular to the connecting rod (22) and penetrates through the connecting rod (22). The plugging rod (31) is slidably connected to the groove wall of the collecting groove (11). The sliding direction of the plugging rod (31) is arranged along the height direction of the slope body (1). Support springs (33) are fixedly connected to both ends of the plugging rod (31). The lower ends of the support springs (33) are fixed to the bottom groove wall of the collecting groove (11).
3. The ecological slope protection for river regulation according to claim 2, characterized in that: The control component (4) includes a horizontal cross bar (41) whose length direction is arranged along the arrangement direction of a set of collection grooves (11). Vertically and fixedly connected to the cross bar (41) are vertical bars (43) corresponding to the insertion bars (31) one by one. The upper end of each vertical bar (43) is fixed to one end of the corresponding insertion bar (31). The vertical bars (43) are slidably inserted into the slope body (1). A cavity (15) for accommodating the vertical movement of the cross bar (41) is also formed in the slope body (1). A return spring (42) is connected to the bottom of the cross bar (41), and the lower end of the return spring (42) is fixed to the bottom wall of the cavity (15). The control component (4) further includes a wind and rain sensor (47) installed on the slope body (1) and a motor (44) installed in the slope body (1). A coaxial cam (45) is fixedly connected to the output shaft of the motor (44). The axial direction of the cam (45) is arranged along the width direction of the slope body (1). Below the cam (45) there is also a vertical bar (43) fixed to the cross bar (41), and this vertical bar (43) is always in tight contact with the circumferential side wall of the cam (45). A cavity for accommodating the motor (44) and the cam (45) is formed in the slope body (1).
4. The ecological slope protection for river regulation according to claim 1, characterized in that: The lower end of the scraping bar (51) is fixedly connected with an I-shaped sliding block (52). A sliding hole (23) adapted to the sliding block (52) is formed in the dial plate (2). The length direction of the sliding hole (23) is arranged along the inclination direction of the slope surface of the slope body (1). The sliding block (52) is movably inserted into the sliding hole (23), and the dial plate (2) is located between the upper and lower wing plates of the sliding block (52).
5. The ecological slope protection for river regulation according to claim 3, characterized in that: A U-shaped support groove (46) is fixedly connected to the upper end of the vertical bar (43) corresponding to the cam (45). The cam (45) is inserted into the support groove (46), and both end faces of the cam (45) are in contact with the corresponding groove walls of the support groove (46).
Citation Information
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