Mountain wind power road slope protection device

The mountain wind power road slope protection device, designed with a combination of V-shaped base and fixing bolts, solves the problems of insufficient stability and adaptability of existing devices, achieves effective protection of complex terrain and convenient transportation, and enhances impact resistance and service life.

CN121575689AInactive Publication Date: 2026-02-27GUIZHOU WUJIANG HYDROPOWER DEV +1
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Patent Information

Application Number
CN202512005849.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-29
Publication Date
2026-02-27
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing slope protection devices for mountain wind power roads are insufficient in terms of stability and adaptability, especially in winding roads where they are difficult to secure effectively, and traditional connection methods cannot meet the high impact resistance requirements of large operation and maintenance vehicles.

Method used

The design employs a combination of V-shaped base, fixing bolts, square blocks, shielding canopy, fixing mechanism, and connecting mechanism. Through the flexible movement and multi-point fixing of the baffle, combined with the connection of arc-shaped triangular blocks, it achieves adaptive protection against different slopes and road bends. The buffer mechanism reduces impact, and the drainage mechanism reduces load.

Benefits of technology

It improves the stability and adaptability of slope protection devices, effectively blocks falling rocks and soil, fits close to the roadside without occupying road space, adapts to complex terrain, extends service life, and reduces rainwater accumulation and impact load.

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Abstract

The invention relates to a mountain wind power road slope protection device, and relates to the technical field of protection devices.The mountain wind power road slope protection device comprises a V-shaped base, a plurality of fixing bolts are symmetrically and rotationally arranged on the two sides, away from the center, of the V-shaped base, square blocks are symmetrically arranged on the top of the V-shaped base, a shielding shed is arranged on the tops of the square blocks, and a fixing mechanism is slidably arranged between the square blocks; a connecting mechanism is arranged on one side of the outer wall of the square block; through cooperation of the square block and the baffle, the baffle can flexibly move in the vertical direction and is fixed to a proper height position, and therefore wide adaptability and effective protection of slopes with different gradients are achieved; rotation of the square frame is limited through cooperation of a limiting plate and a circular groove, and therefore the square frame is prevented from colliding with the road surface in the moving process; and through cooperation of a fastening rod and a threaded rod, connection of the V-shaped base and the triangular supporting block is achieved, fixation of the V-shaped base is enhanced, and the protection strength of the baffle is enhanced.
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Description

Technical Field

[0001] This invention relates to the field of protective device technology, and in particular to a slope protection device for mountain wind power roads. Background Technology

[0002] With the increasing demand for clean energy, wind power generation, especially mountain wind power generation, has developed rapidly. Mountain wind farms are usually located in complex terrain, requiring the construction of numerous winding roads to transport large wind turbines and meet subsequent operation and maintenance needs. During the excavation and filling process of these roads, a large number of artificial slopes are formed, including cut slopes and fill slopes.

[0003] These mountain wind power road slopes have unique characteristics: First, to meet the transportation needs of large equipment, the roads have large turning radii and steep longitudinal slopes, resulting in slope excavation heights and filling depths that often far exceed those of ordinary mountain roads; second, wind power projects have tight construction cycles and large amounts of slope engineering, making traditional permanent protective structures costly and time-consuming to implement, thus hindering widespread application; third, the loads of large operation and maintenance vehicles during the wind farm's operation period are far greater than those of conventional vehicles, placing higher demands on the stability of the slopes and the impact resistance of the protective structures.

[0004] However, ordinary slope protection devices for mountain wind power roads often have some problems in daily use. With the development of technology, technicians in related fields have also made a lot of optimizations to these devices. For a more accurate comparison, Chinese Patent Publication No. CN220813490U discloses a slope protection device for the reconstruction and expansion of highways. This device includes a main board and an inclined plate set at one end of the main board. A base plate is set at one end of the inclined plate. Cavities are opened inside the main board, the inclined plate, and the base plate. A rain drain plate is set on the top of the main board. This slope protection device for the reconstruction and expansion of highways has openings on one side of the inclined plate and the base plate, and a guide seat for assisting soil loading is set at the opening to facilitate the uniform filling of soil inside the inclined plate and the base plate. The side of the guide seat is provided with a threaded hollow seat, a limiting rod, a threaded sleeve, and a threaded ring for connecting and fixing adjacent protection plates, which facilitates a stable connection between the protection plates after assembly.

[0005] However, the aforementioned slope protection devices for highway reconstruction and expansion have some shortcomings in actual use: 1. The above-mentioned slope protection device for the reconstructed and expanded highway has an opening on one side of the inclined plate and the bottom plate, and a guide seat for auxiliary soil feeding is set at the opening to facilitate the uniform filling of soil inside the inclined plate and the bottom plate. However, simply filling soil cannot effectively improve the stability and blocking effect of the protection device.

[0006] 2. The aforementioned highway slope protection device, through threaded hollow seats, limit rods, threaded sleeves and threaded rings, facilitates a stable connection between the assembled protection plates. However, this connection method can only be used to lay the protection plates in a straight line, while mountain wind power roads are winding and tortuous.

[0007] Therefore, based on the above-mentioned viewpoints, there is still room for improvement in existing slope protection devices for mountain wind power roads. Summary of the Invention

[0008] To address the aforementioned problems, this invention provides a slope protection device for mountain wind power roads, comprising a V-shaped base, with multiple fixing bolts symmetrically and rotatably arranged on both sides of the V-shaped base away from the center, square blocks symmetrically arranged on the top of the V-shaped base, a shielding canopy arranged on the top of the square blocks, a fixing mechanism slidably arranged between the square blocks, and a connecting mechanism arranged on one side of the outer wall of the square blocks.

[0009] Preferably, the fixing mechanism includes a baffle that is slidably disposed between the square blocks, a square through groove for the baffle to move on the V-shaped base, the baffle and the shield being connected by a spring, a strip plate being provided at the bottom of the baffle, a triangular support block being provided at the bottom of the strip plate, and a slotted unit being provided on the outer wall of the V-shaped base.

[0010] Preferably, the fixing mechanism further includes symmetrically arranged slots on the V-shaped base, symmetrically arranged rotating rods in the slots, a square frame located in the slots rotatably mounted on the rotating rods, a fastening rod rotatably arranged inside and through the square frame, a circular groove is opened at the bottom of the inner wall of the slots, a threaded rod with one end in the circular groove is provided near the bottom of the square frame, a limit plate is provided on the side of the square frame away from the threaded rod, and a threaded hole that mates with the threaded rod is opened at the top of the triangular support block.

[0011] Preferably, the slotting unit includes a rotating rod that is rotatably mounted on one side of the outer wall of the V-shaped base via a bracket. A metal strip is symmetrically arranged on one side of the outer wall of the V-shaped base, and the metal strip is fixed to the rotating rod via the top of the baffle.

[0012] Preferably, the grooving unit further includes a drive ring sleeved on the rotating rod, the drive ring and the rotating rod are connected by a fixing plate, a pedal is provided on the outer wall of the drive ring, a push plate is symmetrically rotated on the side of the V-shaped base near the triangular support block, and a spring is provided between the push plate and the triangular support block.

[0013] Preferably, the connecting mechanism includes mounting columns symmetrically arranged on one side of the outer wall of one of the square blocks, a connecting plate sleeved on the mounting column, and a blocking block provided on the side of the mounting column away from the square block.

[0014] Preferably, the connecting mechanism further includes an arc-shaped triangular block symmetrically arranged on one side of the outer wall of another square block. The arc-shaped triangular block has a slot on the side near the connecting plate, and the connecting plate has a snap-fit ​​slot that mates with the arc-shaped triangular block.

[0015] Preferably, a buffer mechanism is provided on the side of the canopy away from the mounting column. The buffer mechanism includes an extension rod provided on the side of the canopy away from the mounting column, a buffer net is provided between the extension rods, and multiple counterweight balls are suspended at the bottom of the buffer net.

[0016] Preferably, a drain outlet is provided through the V-shaped base, and multiple connecting ports that cooperate with the drain outlet are provided on the baffle plate, with a filter screen installed inside the connecting ports.

[0017] Preferably, the V-shaped base has multiple receiving slots.

[0018] In summary, this application includes at least one of the following beneficial technical effects: I. This invention uses a baffle to block soil and rocks falling from above the slope, and also utilizes the combination of square blocks and the baffle. This allows the baffle to move flexibly in the vertical direction and be fixed at a suitable height, thereby achieving wide adaptability and effective protection for slopes with different slope gradients.

[0019] Second, this invention restricts the rotation of the square frame by the cooperation of the limiting plate and the circular groove, thereby preventing the square frame from colliding with the road surface during movement; it also connects the V-shaped base and the triangular support block by the cooperation of the fastening rod and the threaded rod, thereby strengthening the fixation of the V-shaped base and enhancing the protective strength of the baffle.

[0020] Third, the present invention uses the cooperation of arc-shaped triangular blocks and snap-fit ​​grooves to make the inner wall of the snap-fit ​​groove on the arc-shaped triangular block abut against the connecting plate circumferentially connected to the snap-fit ​​groove, so as to connect the device according to the curvature of the road and form a protective belt, so that the device is close to the roadside and does not occupy the road, thereby facilitating the transportation of mountain wind power. Attached Figure Description

[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0022] Figure 1 This is a schematic diagram of the structure of the present invention.

[0023] Figure 2 This is a schematic diagram of the fixing mechanism of the present invention. Figure 1 .

[0024] Figure 3 This is a schematic diagram of the fixing mechanism of the present invention. Figure 2 .

[0025] Figure 4 This is a schematic diagram of the grooving unit of the present invention.

[0026] Figure 5 This is a schematic diagram of the connection mechanism of the present invention.

[0027] Figure 6 This is the present invention. Figure 5 A magnified view of part A.

[0028] Figure 7 This is a schematic diagram of the buffer mechanism of the present invention.

[0029] Figure 8 This is a schematic diagram of the structure of the drain outlet, connecting outlet, filter screen and receiving tank of the present invention.

[0030] In the diagram, 1. V-shaped base; 10. Fixing bolt; 11. Square block; 12. Shelter; 2. Fixing mechanism; 3. Connecting mechanism; 20. Baffle; 201. Square through slot; 202. Spring 1; 21. Strip plate; 22. Triangular support block; 23. Slotted unit; 24. Setting slot; 25. Rotating rod; 26. Square frame; 27. Fastening rod; 270. Circular slot; 271. Threaded rod; 28. Limiting plate; 29. ​​Threaded hole; 230. Rotating rod; 231. Metal strip; 232. Drive ring; 233. Fixing plate; 234. Pedal; 235. Push plate; 236. Spring II; 30. Mounting post; 31. Connecting plate; 32. Blocking block; 33. Arc-shaped triangular block; 34. Slot; 35. Snap-fit ​​slot; 4. Buffer mechanism; 40. Extension rod; 41. Buffer net; 42. Counterweight ball; 5. Drain outlet; 50. Connecting port; 51. Filter screen; 6. Receiving slot. Detailed Implementation

[0031] The following is in conjunction with the appendix Figures 1 to 8 The embodiments of the present invention will be described in detail, but the present invention may be implemented in many different ways as defined and covered by the claims.

[0032] This application discloses a slope protection device for mountain wind power roads. It is described that this application is mainly used in the process of slope protection for mountain wind power roads. Technically, it can block falling rocks and soil on the roadside slope, preventing them from moving onto the road. In particular, during installation, the device can be fixed to the road surface, forming a unified whole, thus better blocking falling rocks and soil. Furthermore, this application can connect the devices according to the curvature of the road to form a protective strip, ensuring the device is close to the roadside without obstructing the road, thereby facilitating transportation of wind power along mountain roads.

[0033] Example 1: Reference Figure 1As shown, a slope protection device for mountain wind power roads includes a V-shaped base 1, fixing bolts 10, square blocks 11, a shielding canopy 12, a fixing mechanism 2, and a connecting mechanism 3. Multiple fixing bolts 10 are symmetrically arranged on both sides of the V-shaped base 1 away from the center, which can fix the position of the V-shaped base 1. Square blocks 11 are symmetrically arranged on the top of the V-shaped base 1, and a shielding canopy 12 is provided on the top of the square blocks 11. The shielding canopy 12 is used to prevent the V-shaped base 1 and square blocks 11 from being exposed to sun and rain, thereby extending the service life of the device. The fixing mechanism 2 is slidably arranged between the square blocks 11, which is used to fix the V-shaped base 1 to the road surface during installation, making the device and the road surface form a whole, thus better blocking falling rocks and mud. A connecting mechanism 3 is provided on one side of the outer wall of the square blocks 11, which is used to quickly and flexibly connect multiple devices, allowing the device to be close to the roadside without occupying the road, thus facilitating transportation of mountain wind power vehicles.

[0034] In the specific implementation process, firstly, multiple devices are quickly and flexibly connected through the connecting mechanism 3, so that the devices are close to the roadside without occupying the road, thus facilitating the transportation of mountain wind power. Then, the position of the V-shaped base 1 is fixed by the fixing bolts 10. Then, the fixing mechanism 2 is used to fix the V-shaped base 1 to the road surface during the installation and fixing process, so that the device and the road surface form an integral whole, which can better block falling rocks and mud. Finally, the canopy 12 is used to prevent the V-shaped base 1 and the square block 11 from being exposed to sun and rain, thereby extending the service life of the device.

[0035] Reference Figure 2 As shown, this is the fixing mechanism 2 in this application; specifically, the fixing mechanism 2 includes a baffle 20, a square through slot 201, a spring 202, a strip plate 21, a triangular support block 22, and a slotted unit 23. The baffle 20 is slidably arranged between the square blocks 11. The baffle 20 can slide within the square blocks 11. The baffle 20 is used to block soil and rocks falling from the slope, and its height within the square blocks 11 can be adjusted as needed, thus adapting to slopes with different inclinations. A square through slot 201 for the baffle 20 to move is provided on the V-shaped base 1. The baffle 20 is connected to the canopy 12 by a spring 202, which can always provide an upward pulling force to the baffle 20; a strip plate 21 is provided at the bottom of the baffle 20, and the baffle 20 can move the strip plate 21 together when it moves; a triangular support block 22 is provided at the bottom of the strip plate 21, and the triangular support block 22 can move together when the strip plate 21 moves; a slotting unit 23 is provided on the outer wall of the V-shaped base 1, and the slotting unit 23 is used to drive the triangular support block 22 to impact downward quickly, so that a slot that can accommodate the triangular support block 22 is opened under the V-shaped base 1.

[0036] In the specific implementation process, after the V-shaped base 1 is fixed, the baffle 20 is used to block the soil and rocks falling from the slope. The baffle 20 is driven to move downward under the restriction of the square block 11 by the slotting unit 23. During the movement of the baffle 20, the strip plate 21 can be moved together. When the strip plate 21 moves, it can be driven to move the triangular support block 22 together. The triangular support block 22 impacts downward quickly, so that a slot that can accommodate the triangular support block 22 is opened under the V-shaped base 1.

[0037] Reference Figure 3 As shown, this is the fixing mechanism 2 in this application; specifically, the fixing mechanism 2 also includes a setting groove 24, a rotating rod 25, a square frame 26, a fastening rod 27, a circular groove 270, a threaded rod 271, a limiting plate 28, and a threaded hole 29. The V-shaped base 1 has symmetrically opened setting grooves 24, and rotating rods 25 are symmetrically arranged within the setting grooves 24. A square frame 26 located within the setting groove 24 is rotatably sleeved on the rotating rod 25. The square frame 26 can rotate under the restriction of the rotating rod 25, and can also slide on the rotating rod 25. A fastening rod 27 is rotatably arranged within and through the square frame 26, and can rotate under the restriction of the square frame 26. The bottom of the inner wall of the setting groove 24... The square frame 26 has a circular groove 270. A threaded rod 271 with one end inside the circular groove 270 is provided near the bottom of the square frame 26. The cooperation between the circular groove 270 and the threaded rod 271 can restrict the rotation of the square frame 26. When the fastening rod 27 rotates, it can drive the threaded rod 271 to rotate together. A limit plate 28 is provided on the side of the square frame 26 away from the threaded rod 271. The limit plate 28 is used to restrict the rotation of the square frame 26 and facilitates the rotation of the square frame 26. The top of the triangular support block 22 has a threaded hole 29 that cooperates with the threaded rod 271. When the triangular support block 22 is inserted into the ground and fixed, the cooperation between the threaded hole 29 and the threaded rod 271 further fixes the V-shaped base 1.

[0038] One point to note is that there is a gap between the top of the fastening rod 27 and the setting groove 24. By pulling the limiting plate 28, the threaded rod 271 can be moved out of the circular groove 270, so that the square frame 26 can rotate.

[0039] In the specific implementation process, when the triangular support block 22 enters the ground and is fixed, the operator pulls the limiting plate 28 to move the limiting plate 28 diagonally upward. When the limiting plate 28 moves, it can drive the square frame 26 to move together. When the square frame 26 moves, it can drive the threaded rod 271 to move out of the circular groove 270. Then, according to the position of the triangular support block 22, the angle and position of the square frame 26 are adjusted so that the threaded rod 271 enters the threaded hole 29. Finally, the fastening rod 27 is rotated. When the fastening rod 27 rotates, it can drive the threaded rod 271 to rotate together, so that the threaded rod 271 is screwed into the threaded hole 29, realizing the connection between the V-shaped base 1 and the triangular support block 22, enhancing the fixation of the V-shaped base 1, and strengthening the protective force of the baffle 20.

[0040] Reference Figure 4 As shown, this is the slotting unit 23 in this application; specifically, the slotting unit 23 includes a rotating rod 230, a metal strip 231, a drive ring 232, a fixing plate 233, a pedal 234, a push plate 235, and a spring 236. A rotating rod 230 is rotatably mounted on one side of the outer wall of the V-shaped base 1 via a bracket, and the rotating rod 230 can rotate under the constraint of the V-shaped base 1. A metal strip 231 is symmetrically arranged on one side of the outer wall of the V-shaped base 1, and the metal strip 231 is fixed to the rotating rod 230 via the top of the baffle 20. When the rotating rod 230 rotates, it can wrap the metal strip 231 around the rotating rod 230. When the metal strip 231 retracts, it will drive the baffle 20 to move downwards. A drive ring 232 is sleeved on the rotating rod 230. The drive ring 232 is connected to the rotating rod 230 by a fixed plate 233. When the drive ring 232 rotates, it can drive the fixed plate 233 to rotate together, and the fixed plate 233 can drive the rotating rod 230 to rotate together. A pedal 234 is provided on the outer wall of the drive ring 232. The operator can drive the drive ring 232 to rotate by stepping on the pedal 234. A push plate 235 is symmetrically rotated on the side of the V-shaped base 1 near the triangular support block 22. When the triangular support block 22 moves downward, it can push the push plate 235 to rotate. A second spring 236 is provided between the push plate 235 and the triangular support block 22. The second spring 236 can always provide an upward pulling force to the push plate 235. When the triangular support block 22 moves upward, the push plate 235 is reset under the action of the second spring 236.

[0041] In the specific implementation process, after the V-shaped base 1 is fixed by the fixing bolt 10, the operator drives the drive ring 232 to rotate by stepping on the pedal 234. When the drive ring 232 rotates, it drives the fixing plate 233 to rotate together. When the fixing plate 233 rotates, it drives the rotating rod 230 to rotate together. When the rotating rod 230 rotates, it can wrap the metal strip 231 around the rotating rod 230. When the metal strip 231 retracts, it will drive the baffle 20 to move downward. When the baffle 20 moves, it will drive the strip plate 21 and the triangular support block 22 to impact downward. At the same time, when the triangular support block 22 moves downward, it can push the push plate 235 to rotate. When the operator stops stepping on the pedal 234, the baffle 20 drives the strip plate 21 and the triangular support block 22 to move upward together under the action of the spring 1 202. When the triangular support block 22 moves upward, the push plate 235 is reset under the action of the spring 236. During the reset process, the push plate 235 will push the soil to fall on the top of the triangular support block 22, realizing the filling of the triangular support block 22.

[0042] Reference Figure 5 and Figure 6 As shown, this is the connecting mechanism 3 in this application. Specifically, the connecting mechanism 3 includes a mounting post 30, a connecting plate 31, a blocking block 32, an arc-shaped triangular block 33, a slot 34, and a snap-fit ​​groove 35. A mounting post 30 is symmetrically arranged on one side of the outer wall of one of the square blocks 11. The connecting plate 31 is fitted onto the mounting post 30. A blocking block 32 is arranged on the side of the mounting post 30 away from the square block 11, and the blocking block 32 is used to fix the connecting plate 31. An arc-shaped triangular block 33 is symmetrically arranged on one side of the outer wall of the other square block 11. When the arc-shaped triangular block 33 abuts against the connecting plate 31, it will cause the connecting plate 31 to bend. A slot 34 is opened on the side of the arc-shaped triangular block 33 near the connecting plate 31. A snap-fit ​​groove 35 is opened on the connecting plate 31 to cooperate with the arc-shaped triangular block 33. When the arc-shaped triangular block 33 moves along the connecting plate 31 into the snap-fit ​​groove 35, the inner wall of the slot 34 on the arc-shaped triangular block 33 abuts against the connecting plate 31 circumferentially around the snap-fit ​​groove 35, thereby fixing the device.

[0043] In the specific implementation process, when it is necessary to connect the devices, the arc-shaped triangular block 33 on one device is brought close to the connecting plate 31 on another device. During this process, when the arc-shaped triangular block 33 abuts against the connecting plate 31, it will cause the connecting plate 31 to bend. When the arc-shaped triangular block 33 moves along the connecting plate 31 into the snap-fit ​​groove 35, the inner wall of the snap-fit ​​groove 34 on the arc-shaped triangular block 33 abuts against the connecting plate 31 circumferentially connected to the snap-fit ​​groove 35, thereby fixing the device.

[0044] Example 2: Reference Figure 7As shown in Embodiment 1, in order to prevent large rocks from directly impacting the baffle 20 and avoid deformation and damage to the baffle 20, in this specific embodiment, a buffer mechanism 4 is provided on the side of the shield 12 away from the mounting column 30. Specifically, the buffer mechanism 4 includes an extension rod 40, a buffer net 41, and counterweight balls 42. An extension rod 40 is provided on the side of the shield 12 away from the mounting column 30, and a buffer net 41 is provided between the extension rods 40. When large rocks fall along the slope, the rocks first come into contact with the buffer net 41, causing the buffer net 41 to deform and reduce the impact of the rocks. Multiple counterweight balls 42 are suspended at the bottom of the buffer net 41, and the counterweight balls 42 are used to keep the buffer net 41 in an open state.

[0045] In the specific implementation process, when large rocks fall along the slope, the rocks first come into contact with the buffer net 41, causing the buffer net 41 to deform and reduce the impact of the falling rocks.

[0046] Example 3: Reference Figure 8 As shown, based on Embodiment 1 and Embodiment 2, in order to prevent rainwater from accumulating on the V-shaped base 1 and increasing the load on the baffle 20, in this specific embodiment, a drain outlet 5 is provided through the V-shaped base 1, and multiple connecting ports 50 that cooperate with the drain outlet 5 are provided on the baffle 20. When the baffle 20 moves downward, the drain outlet 5 connects with the connecting ports 50, and the rainwater accumulated on the V-shaped base 1 is discharged through the drain outlet 5 and the connecting ports 50, thereby reducing the load on the baffle 20; a filter screen 51 is provided inside the connecting port 50, and the filter screen 51 is used to prevent stones from entering the road through the connecting port 50.

[0047] Reference Figure 8 As shown, the V-shaped base 1 has multiple receiving slots 6 inside, which are used to counterweights, thereby further improving the stability of the V-shaped base 1.

[0048] During operation: First, after the V-shaped base 1 is fixed by the fixing bolt 10, the operator drives the drive ring 232 to rotate by stepping on the pedal 234. When the drive ring 232 rotates, it drives the fixing plate 233 to rotate together. When the fixing plate 233 rotates, it drives the rotating rod 230 to rotate together. When the rotating rod 230 rotates, it can wrap the metal strip 231 around the rotating rod 230. When the metal strip 231 retracts, it will drive the baffle 20 to move downward. During the movement of the baffle 20, it can drive the strip plate 21 to move together. When the strip plate 21 moves, it can drive the triangular support block 22 to impact downward. The triangular support block 22 impacts downward quickly, thus creating a groove under the V-shaped base 1 to accommodate the triangular support block 22.

[0049] Step 2: When the triangular support block 22 is inserted into the ground and fixed, the baffle 20 is used to block the soil and rocks falling from the slope. The operator pulls the limiting plate 28 to move the limiting plate 28 diagonally upward. When the limiting plate 28 moves, it can drive the square frame 26 to move together. When the square frame 26 moves, it can drive the threaded rod 271 to move out of the circular groove 270. Then, according to the position of the triangular support block 22, the angle and position of the square frame 26 are adjusted so that the threaded rod 271 enters the threaded hole 29. Finally, the fastening rod 27 is rotated. When the fastening rod 27 rotates, it can drive the threaded rod 271 to rotate together, so that the threaded rod 271 is screwed into the threaded hole 29, realizing the connection between the V-shaped base 1 and the triangular support block 22, strengthening the fixation of the V-shaped base 1, and strengthening the protective force of the baffle 20.

[0050] Step 3: At the same time, when the triangular support block 22 moves downward, it can push the push plate 235 to rotate. When the operator is no longer stepping on the pedal 234, the baffle 20, under the action of the first spring 202, drives the strip plate 21 and the triangular support block 22 to move upward together. When the triangular support block 22 moves upward, the push plate 235 is reset under the action of the second spring 236. During the reset process, the push plate 235 will push the soil to fall on the top of the triangular support block 22, realizing the filling of the triangular support block 22.

[0051] Step 4: When it is necessary to connect the devices, bring the arc-shaped triangular block 33 on one device close to the connecting plate 31 on the other device. During this process, when the arc-shaped triangular block 33 abuts against the connecting plate 31, it will cause the connecting plate 31 to bend. When the arc-shaped triangular block 33 moves along the connecting plate 31 into the snap-fit ​​groove 35, the inner wall of the snap-fit ​​groove 34 on the arc-shaped triangular block 33 abuts against the connecting plate 31 around the snap-fit ​​groove 35, thereby fixing the device.

[0052] Step 5: When large rocks fall down the slope, they first come into contact with the buffer net 41, causing the buffer net 41 to deform and reduce the impact of the falling rocks.

[0053] Step 6: When the baffle 20 moves downward, the drain outlet 5 connects with the connecting port 50, and the rainwater accumulated on the V-shaped base 1 is discharged through the drain outlet 5 and the connecting port 50, thereby reducing the load on the baffle 20.

[0054] Step 7: Weights can also be inserted into the receiving slot 6 to further improve the stability of the V-shaped base 1.

[0055] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0056] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A slope protection device for mountain wind power roads, comprising a V-shaped base (1), characterized in that: The V-shaped base (1) is symmetrically rotated on both sides away from the center with multiple fixing bolts (10). A square block (11) is symmetrically arranged on the top of the V-shaped base (1). A shielding canopy (12) is arranged on the top of the square block (11). A fixing mechanism (2) is slidably arranged between the square blocks (11). A connecting mechanism (3) is arranged on one side of the outer wall of the square block (11).

2. The slope protection device for mountain wind power roads according to claim 1, characterized in that: The fixing mechanism (2) includes a baffle (20) slidably disposed between square blocks (11), a square through groove (201) for the baffle (20) to move on the V-shaped base (1), the baffle (20) and the shield (12) are connected by a spring (202), a strip plate (21) is provided at the bottom of the baffle (20), a triangular support block (22) is provided at the bottom of the strip plate (21), and a slotted unit (23) is provided on the outer wall of the V-shaped base (1).

3. The slope protection device for mountain wind power roads according to claim 2, characterized in that: The fixing mechanism (2) also includes a symmetrically arranged setting groove (24) on the V-shaped base (1). A rotating rod (25) is symmetrically arranged in the setting groove (24). A square frame (26) located in the setting groove (24) is rotatably sleeved on the rotating rod (25). A fastening rod (27) is rotatably arranged inside the square frame (26) and through the square frame (26). A circular groove (270) is opened at the bottom of the inner wall of the setting groove (24). A threaded rod (271) with one end in the circular groove (270) is arranged near the bottom of the square frame (26) on the fastening rod (27). A limit plate (28) is arranged on the side of the square frame (26) away from the threaded rod (271). A threaded hole (29) that mates with the threaded rod (271) is opened at the top of the triangular support block (22).

4. A slope protection device for mountain wind power roads according to claim 2, characterized in that: The slotting unit (23) includes a rotating rod (230) that is rotatably mounted on one side of the outer wall of the V-shaped base (1) via a bracket. A metal strip (231) is symmetrically arranged on one side of the outer wall of the V-shaped base (1), and the metal strip (231) is fixed on the rotating rod (230) via the top of the baffle (20).

5. A slope protection device for mountain wind power roads according to claim 4, characterized in that: The slotting unit (23) also includes a drive ring (232) sleeved on the rotating rod (230). The drive ring (232) and the rotating rod (230) are connected by a fixing plate (233). A pedal (234) is provided on the outer wall of the drive ring (232). A push plate (235) is symmetrically rotated on the side of the V-shaped base (1) near the triangular support block (22). A spring (236) is provided between the push plate (235) and the triangular support block (22).

6. The slope protection device for mountain wind power roads according to claim 1, characterized in that: The connecting mechanism (3) includes a mounting post (30) symmetrically arranged on one side of the outer wall of one of the square blocks (11), a connecting plate (31) is sleeved on the mounting post (30), and a blocking block (32) is provided on the side of the mounting post (30) away from the square block (11).

7. A slope protection device for mountain wind power roads according to claim 2, characterized in that: The connecting mechanism (3) also includes an arc-shaped triangular block (33) symmetrically arranged on one side of the outer wall of another square block (11). The arc-shaped triangular block (33) has a slot (34) on the side near the connecting plate (31), and the connecting plate (31) has a slot (35) that cooperates with the arc-shaped triangular block (33).

8. A slope protection device for mountain wind power roads according to claim 6, characterized in that: A buffer mechanism (4) is provided on the side of the shield (12) away from the mounting column (30). The buffer mechanism (4) includes an extension rod (40) provided on the side of the shield (12) away from the mounting column (30). A buffer net (41) is provided between the extension rods (40). Multiple counterweight balls (42) are suspended at the bottom of the buffer net (41).

9. A slope protection device for mountain wind power roads according to claim 2, characterized in that: The V-shaped base (1) has a through-hole (5) and the baffle (20) has multiple connecting ports (50) that cooperate with the drain port (5). A filter screen (51) is provided in the connecting port (50).

10. A slope protection device for mountain wind power roads according to claim 1, characterized in that: The V-shaped base (1) has multiple receiving slots (6) inside.

Citation Information

Patent Citations

  • Slope protection device for reconstructed and expanded expressway

    CN220813490U