Carbon fiber reinforced ecological slope protection grid

By using a carbon fiber assembled network and an automatic cleaning system, the problems of insufficient structural adjustment flexibility and lack of photovoltaic panel cleaning function in existing rooted ecological grid slope protection have been solved, realizing diversified slope protection and efficient power generation, and improving construction efficiency and practical value.

CN121781609APending Publication Date: 2026-04-03SOIL & WATER CONSERVATION MONITORING CENT OF THE MINISTRY OF WATER RESOURCES +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-31
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing rooted ecological grid slope protection has obvious defects in terms of insufficient structural adjustment flexibility, lack of photovoltaic panel cleaning function and low construction efficiency, making it difficult to meet the diverse slope protection needs and long-term stable operation requirements.

Method used

The system employs a carbon fiber assembly network, combined with a ring-shaped adjustment assembly mechanism and a telescopic connection mechanism, to achieve flexible adjustment of the grid layout. It is also equipped with a rotating module and a cleaning module to ensure that the orientation of the photovoltaic panels is adjustable and that they are automatically cleaned.

Benefits of technology

It improves grid adaptability and photovoltaic panel power generation efficiency, reduces construction intensity and maintenance costs, and enhances the overall practical value of the device.

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Abstract

The invention relates to the technical field of ecological slope protection, in particular to a carbon fiber reinforced ecological slope protection grid which comprises a carbon fiber assembly network composed of a plurality of annular adjusting assembly mechanisms and a plurality of telescopic connecting mechanisms. The annular adjusting and assembling mechanisms and the telescopic connecting mechanisms are mutually assembled and clamped to form a carbon fiber assembled network, and the top of each telescopic connecting mechanism is fixedly provided with a photovoltaic power generation mechanism. During application of the technical scheme, the annular adjusting and assembling mechanism is matched with the telescopic connecting mechanism, so that the grid structure can be flexibly adjusted to adapt to various side slopes, and the problem of single specification in the prior art is solved; the power module and the cleaning module are driven by wind power to clean the photovoltaic panel, so that low manual efficiency and motor energy consumption are avoided; the rotating module can adjust the orientation of the photovoltaic panel to improve the power generation efficiency, a core component is made of a carbon fiber reinforced material and is durable, adaptation, automatic cleaning and efficient power generation are all considered, and the practical value of ecological slope protection is improved.
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Description

Technical Field

[0001] This application relates to the field of ecological slope protection technology, and in particular to a carbon fiber reinforced ecological slope protection grid. Background Technology

[0002] In the field of ecological protection and slope management, rooted ecological grid slope protection has become an important technical solution for slope protection in highways, railways, and water conservancy projects due to its dual functions of soil and water conservation and environmental improvement. This type of slope protection structure can effectively prevent soil erosion through the constraint of grid units on the slope. Specifically, it reduces pore water pressure on the slope, intercepts rainfall, weakens the splashing effect of rainwater on the slope surface, and controls soil particle loss through the physical barrier effect of the grid. At the same time, its ecological compatibility can restore the damaged slope ecological environment. It can also reduce traffic noise and light pollution through the synergistic effect of vegetation cover and grid structure, further ensuring road traffic safety. It has irreplaceable application value in ecological engineering construction.

[0003] To improve the ease of construction of rooted ecological grid slope protection, many technological improvements have been made in related fields. For example, Chinese patent with publication number "CN116556378B" discloses a rooted ecological grid slope protection. This technology constructs a square grid structure through connecting blocks, transverse slope protection strips, and longitudinal slope protection strips. The bottom of the connecting blocks is equipped with fasteners to fix them in the soil. The connecting blocks are engaged with the T-shaped grooves A of the transverse slope protection strips and the T-shaped grooves B of the longitudinal slope protection strips through T-shaped protrusions, which enables rapid assembly of the three components. This effectively solves the problems of cumbersome construction, high labor and material costs, and long assembly time of traditional rooted ecological grid slope protection, and has made significant progress in improving construction efficiency.

[0004] However, existing rooted ecological grid slope protection technology still has significant defects and shortcomings in practical applications, making it difficult to meet diverse slope protection needs and long-term stable operation requirements. On the one hand, its structural adjustment flexibility is insufficient. In existing technologies, the snap-fit ​​structure of the connecting blocks is fixed, and the lengths of the transverse and longitudinal slope protection strips are also fixed specifications. It is impossible to flexibly adjust the snap-fit ​​position of the connecting blocks or achieve the expansion and contraction adjustment of the slope protection strips according to the different needs of different ecological slope protection projects for grid shape and size. As a result, the grid structure can only be combined into a single specification, with poor adaptability, making it difficult to apply to slope scenarios with complex slope shapes and varying protection areas. On the other hand, the photovoltaic panel cleaning function is lacking, and some rooted ecological grids... Slope protection structures often integrate photovoltaic panels to achieve comprehensive resource utilization. However, existing structures lack an effective cleaning mechanism for the top of the photovoltaic panels. When used outdoors, the surface of the photovoltaic panels is easily blocked by light pollutants such as household waste and fallen leaves blown by the wind, which seriously affects the power generation efficiency of the photovoltaic panels. If manual cleaning is used, large-scale applications suffer from low efficiency and high labor costs, making it extremely impractical. Existing automatic cleaning solutions that rely on motors and cleaning brushes require electronic drive, which not only consumes additional electricity but also increases the maintenance costs and failure risks of electrical components. They fail to meet the requirements of low-cost and low-energy cleaning. It is evident that existing technologies have certain defects and shortcomings, and therefore, they need to be improved and redesigned. Summary of the Invention

[0005] To improve the application flexibility and power generation efficiency of existing technologies, this application provides a carbon fiber reinforced ecological slope protection grid.

[0006] This application provides a carbon fiber reinforced ecological slope protection grid, which adopts the following technical solution: it includes a carbon fiber assembly network, which is composed of several annular adjustment assembly mechanisms and several telescopic connection mechanisms. The annular adjustment assembly mechanisms and telescopic connection mechanisms are assembled and snapped together to form a carbon fiber assembly network. A photovoltaic power generation mechanism is fixedly installed on the top of each telescopic connection mechanism.

[0007] The ring-shaped assembly mechanism includes a fixed plate, an annular groove on the outer side of the fixed plate, a plurality of sliding blocks slidably connected inside the annular groove, a snap-fit ​​module fixedly installed on the outer side of the sliding block, and the outer side of the sliding block snaps into one end of the telescopic connecting mechanism through the snap-fit ​​module, and the snap-fit ​​module and the fixed plate snap into each other.

[0008] Optionally, the top center of the fixing plate has an installation hole, which is a countersunk hole. The fixing plate is fixed to the ecological slope protection by installing anchor rods in the installation hole. The fixing plate is made of carbon fiber reinforced composite material.

[0009] Optionally, the snap-fit ​​module includes a side seat, which is fixedly installed on the outside of the sliding block. A snap-fit ​​component is provided on the top of the side seat near the sliding block. An installation groove is provided on one side of the side seat. The end of the telescopic connecting mechanism is inserted into the interior of the installation groove. The cross-sectional shape of the internal cavity of the installation groove and the internal cavity of the annular groove are both set to a convex shape. The cross-sectional shape of the sliding block is also set to a convex shape.

[0010] Optionally, the telescopic connection mechanism includes a sleeve, with sliding rods slidably connected to both sides of the sleeve. A connecting plate is fixedly installed at the outer end of the sliding rod, and a locking block is fixedly installed on the outer side of the connecting plate. The locking block is inserted into the interior of the mounting groove. The limiting end of the locking assembly engages with the locking block. An installation screw is threadedly connected to the bottom outer end of the sleeve. The end of the installation screw penetrates the sleeve. The installation screw is a hand-tightening screw. Limiting screw holes are linearly arranged at equal intervals at the bottom of the sliding rod. The end of the installation screw penetrates the sleeve and is threadedly connected to the corresponding limiting screw holes. Slope protection netting installation screw holes are linearly arranged at equal intervals on both sides of the sliding rod and both sides of the sleeve.

[0011] Optionally, the snap-fit ​​assembly includes a first snap-fit ​​hole, a second snap-fit ​​hole, and a groove. The groove is located on the top of the side seat near the sliding block. The first snap-fit ​​holes are arranged in a ring at equal intervals on the top of the fixed plate. The first snap-fit ​​holes are also located on the top of the sliding block. The second snap-fit ​​holes are located on the top of the snap-fit ​​block and the side seat. A limit spring is fixedly connected inside the groove. A base block is fixedly connected to the top of the limit spring. A limit plate is fixedly installed on the top of the base block. A first snap-fit ​​pin and a second snap-fit ​​pin are fixedly installed at the bottom two ends of the limit plate, respectively. The first snap-fit ​​pin passes through the first snap-fit ​​hole on the fixed plate and is inserted into the first snap-fit ​​hole on the sliding block. The second snap-fit ​​pin passes through the second snap-fit ​​hole on the side seat and is inserted into the second snap-fit ​​hole on the snap-fit ​​block. The side shape of the snap-fit ​​block and the internal shape of the mounting groove are both convex. Disassembly and assembly slots are provided on both sides of the limit plate. The sleeve and the sliding rod are also made of carbon fiber reinforced composite material.

[0012] Optionally, the photovoltaic power generation mechanism includes a mounting base, which is fixedly installed at the top center of the sleeve. A rotating module is fixedly installed on the top of the mounting base, and a photovoltaic panel is fixedly installed on the top of the rotating module. A cleaning module is fixedly installed on the rear side of the photovoltaic panel, and a power module is fixedly installed on the rear side of the cleaning module. The power module and the cleaning module are connected by a drive, and the cleaning end of the cleaning module is fitted and connected to the top of the photovoltaic panel.

[0013] Optionally, the rotating module includes a rotating base, a turntable rotatably connected to the top of the rotating base, the rotating base being fixedly installed on the top of the mounting base, a support frame being fixedly installed on the top of the turntable, a bearing plate being fixedly installed on the top of the support frame, the photovoltaic panel being fixedly installed on the top of the bearing plate, and a fixing screw threaded in a ring at equal intervals along the outer edge of the top of the turntable, the end of the fixing screw penetrating the turntable, and the fixing screw being a hand-tightening screw.

[0014] Optionally, the cleaning module includes a connecting arm, which is fixedly installed on the upper rear side of the back of the support plate. A mounting plate is fixedly installed on the rear side of the connecting arm. Guide rails are fixedly installed on both sides of the mounting plate. A slider is slidably connected inside the guide rails. A sliding frame is fixedly installed on the top of the slider. A rack is fixedly installed on both sides inside the sliding frame. A half gear is rotatably connected to the top center of the mounting plate. The half gear is intermittently meshed with two racks. A driven gear is fixedly installed on the top of the half gear. The driven gear is connected to the power module for transmission. Cleaning brushes are fixedly installed at both ends of the top of the sliding frame.

[0015] Optionally, the cleaning brush assembly includes a fixed arm, which is fixedly installed on both sides of the top of the sliding frame. An installation rail is fixedly installed on the upper end of the fixed arm. An installation strip is slidably connected inside the installation rail. A limit screw is threaded to the front end of the installation rail. The end of the limit screw passes through the installation rail and is threadedly connected to the installation strip. A cleaning brush plate is fixedly installed on the side of the installation strip near the photovoltaic panel. The cleaning bristles of the cleaning brush plate are in close contact with the outer side of the photovoltaic panel.

[0016] Optionally, the power module includes a mounting base, which is fixedly installed on the center of the back of the mounting plate. A wind turbine is fixedly installed at the bottom of the mounting base. A support shaft is fixedly installed through the top shaft end of the wind turbine. A vertical axis wind turbine impeller is fixedly installed at the top of the support shaft. A support frame is fixedly installed at the lower end of the outer surface of the support shaft. An active gear ring is fixedly installed on the outer side of the support frame. The outer side of the active gear ring meshes with a driven gear.

[0017] In summary, this application includes the following beneficial technical effects:

[0018] 1. During the application of this technical solution, the combination of a ring-shaped adjustment assembly mechanism and a telescopic connection mechanism allows for flexible adjustment of the grid layout and overall size according to the slope characteristics and protection area requirements of different ecological slopes. This enables the grid to be combined into a carbon fiber assembly network that adapts to various slope scenarios, thereby comprehensively improving the grid's adaptability. This solves the problem that existing ecological slope protection grids can only form a single specification and cannot meet the needs of complex slope protection. At the same time, the core components of both mechanisms are made of carbon fiber reinforced composite materials, which can effectively resist the harsh environment of outdoor slopes such as corrosion and ultraviolet radiation, significantly extending the overall service life. Moreover, the adjustment process is simple to operate and does not require complex tools, further reducing construction intensity and ensuring the construction quality and progress efficiency of ecological slope protection projects, making the grid protection function more in line with actual engineering needs.

[0019] 2. During the application of this technical solution, by setting up a rotating module in conjunction with the photovoltaic power generation mechanism, the orientation of the photovoltaic panels can be adjusted at any time according to the changes in the sunlight angle of the slope area. This ensures that the photovoltaic panels are always in the optimal position to receive sunlight efficiently, thereby significantly improving the light energy conversion efficiency and stabilizing power generation output. This solves the problems of existing technologies where photovoltaic panels are mostly fixed in orientation, cannot adapt to different times or regional sunlight differences, and have low sunlight utilization efficiency. In addition, the rotating module can provide a stable support structure for the photovoltaic panels, effectively preventing the photovoltaic panels from deforming or being damaged by external wind, impact, and other factors. This ensures the long-term stable operation of the photovoltaic power generation mechanism, reduces maintenance frequency and cost, and allows the photovoltaic function to form a good synergy with the protection needs of ecological slope protection, further enhancing the comprehensive practical value of the device.

[0020] 3. During the application of this technical solution, by setting up a power module and a cleaning module in coordination, the cleaning structure can be driven to rotate by natural wind power during use. This drives the cleaning components to reciprocate and clean the surface of the photovoltaic panels, efficiently removing obstructions such as fallen leaves and household waste. This ensures the cleanliness of the photovoltaic panel surface and maintains stable power generation efficiency. It solves the problems of low efficiency due to manual labor or high maintenance costs due to the reliance on motors for photovoltaic panel cleaning in existing technologies. At the same time, relying on the coordinated adjustment capabilities of the annular adjustment assembly mechanism and the telescopic connection mechanism, the entire device can flexibly adjust the grid layout and the position of the photovoltaic modules according to the actual slope shape and protection range of the slope. This achieves the effect of balancing automatic cleaning function and adaptability to complex slopes, solving the problem that existing devices cannot simultaneously meet cleaning needs and diverse slope adaptation requirements. This further enhances the applicability and practical value of the device in ecological slope protection projects. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the overall structure in an embodiment of this application;

[0022] Figure 2 This is a bottom-view structural diagram of an embodiment of this application;

[0023] Figure 3 This is a top view of the structure in an embodiment of this application;

[0024] Figure 4 This is a rear view schematic diagram of the photovoltaic power generation mechanism in the embodiments of this application;

[0025] Figure 5 This is a bottom-view structural diagram of the photovoltaic power generation mechanism in the embodiments of this application;

[0026] Figure 6 This is a schematic diagram of the overall structure of the power module and the cleaning module in the embodiments of this application;

[0027] Figure 7 This is a schematic diagram of the split state structure of the power module and the cleaning module in the embodiments of this application;

[0028] Figure 8 This is a schematic diagram of the overall structure of the annular adjustment assembly mechanism and the telescopic connection mechanism in the embodiments of this application;

[0029] Figure 9 This is a schematic diagram of the disassembled state structure of the annular adjustment assembly mechanism and the telescopic connection mechanism in the embodiments of this application;

[0030] Figure 10 This is an embodiment of the present application. Figure 2 A magnified structural diagram at point A;

[0031] Figure 11 This is an embodiment of the present application. Figure 9 A magnified structural diagram at point B.

[0032] Reference numerals: 1. Carbon fiber assembly network; 11. Annular adjustment assembly mechanism; 111. Fixing plate; 112. Annular groove; 113. Sliding block; 114. Mounting hole; 115. Snap-fit ​​module; 1151. Side seat; 1152. Snap-fit ​​assembly; 11521. First snap-fit ​​hole; 11522. Second snap-fit ​​hole; 11523. Groove; 11524. Limiting spring; 11525. Base block; 11526. Limiting plate; 11527. First snap-fit ​​pin; 11528. Second snap-fit ​​pin; 11529. Disassembly and assembly slot; 1153. Mounting groove; 12. Telescopic connection mechanism; 121. Sleeve; 122. Sliding rod; 123. Connecting plate; 124. Snap-fit ​​block; 125. Mounting screw; 126. Limiting screw hole; 127. Slope protection net mounting screw hole; 2. Light Photovoltaic power generation mechanism; 21. Mounting base; 22. Rotating module; 221. Rotating base; 222. Turntable; 223. Support frame; 224. Bearing plate; 225. Fixing screw; 23. Photovoltaic panel; 24. Cleaning module; 241. Connecting arm; 242. Mounting plate; 243. Guide rail; 244. Slider; 245. Sliding frame; 246. Rack; 247. Half gear; 248. Driven gear; 249. Cleaning brush assembly; 2491. Fixing arm; 2492. Mounting rail; 2493. Mounting strip; 2494. Limiting screw; 2495. Cleaning brush plate; 25. Power module; 251. Fixing base; 252. Wind turbine; 253. Support shaft; 254. Vertical axis wind turbine impeller; 255. Supporting base; 256. Active gear ring. Detailed Implementation

[0033] The following is in conjunction with the appendix Figure 1-11 This application will be described in further detail.

[0034] This application discloses a carbon fiber reinforced ecological slope protection grid. For example... Figure 1-11 As shown, it includes a carbon fiber assembly network 1, which is composed of several annular adjustment assembly mechanisms 11 and several telescopic connection mechanisms 12. The annular adjustment assembly mechanisms 11 and the telescopic connection mechanisms 12 are assembled and snapped together to form the carbon fiber assembly network 1. A photovoltaic power generation mechanism 2 is fixedly installed on the top of each telescopic connection mechanism 12.

[0035] The annular assembly mechanism includes a fixed disk 111. An annular groove 112 is formed on the outer side of the fixed disk 111. Several sliding blocks 113 are slidably connected inside the annular groove 112. A snap-fit ​​module 115 is fixedly installed on the outer side of each sliding block 113. The outer side of each sliding block 113 is snapped into one end of a telescopic connection mechanism 12 via the snap-fit ​​module 115. The snap-fit ​​module 115 and the fixed disk 111 are interlocked. During application, this device utilizes a carbon fiber assembly network 1 composed of several annular adjustment assembly mechanisms 11 and several telescopic connection mechanisms 12, and a photovoltaic power generation mechanism 2 is fixedly installed on the top of each telescopic connection mechanism 12. This allows the sliding blocks 113 to slide inside the annular groove 112 on the outer side of the fixed disk 111 in the annular adjustment assembly mechanism 11. Then, the snap-fit ​​module 115 on the outer side of the sliding block 113 connects the sliding block 113 to the telescopic connection mechanism. One end of 12 is snapped in place, and the snap-fit ​​module 115 is snapped in place with the fixed plate 111. This allows several annular adjustment assembly mechanisms 11 and several telescopic connection mechanisms 12 to be assembled and snapped in place, ultimately forming a complete carbon fiber assembly network 1. This meets the basic protection requirements of ecological slope protection. The photovoltaic power generation mechanism 2 on the top of the telescopic connection mechanism 12 can simultaneously absorb and utilize light energy during the slope protection process. This structural design not only improves the assembly flexibility of the carbon fiber assembly network 1 through the cooperation of the annular adjustment assembly mechanism 11 and the telescopic connection mechanism 12, which can better adapt to the laying requirements of ecological slope protection in different areas, but also increases the functional diversity of the device with the help of the photovoltaic power generation mechanism 2. It can make full use of clean energy while achieving slope protection, and the carbon fiber assembly network itself can also ensure the durability and stability of the structure, effectively improving the practical value of the device in ecological slope protection scenarios.

[0036] Please refer to Figures 1-3 and Figures 8-9The top center of the fixing plate 111 has a countersunk hole 114. Anchor rods are installed within the mounting hole 114 to fix the fixing plate 111 to the ecological slope. The fixing plate 111 is made of carbon fiber reinforced composite material. During application, the installation hole 114 in the center of the top of the fixing plate 111, which is countersunk, and the carbon fiber reinforced composite material used in the fixing plate 111, allows the anchor rods to be installed within the mounting hole 114, securing the fixing plate 111 firmly to the ecological slope. This completes the installation and positioning of the fixing plate 111 and the slope. The countersunk hole design ensures that the end of the anchor rod does not protrude from the surface of the fixing plate 111 after installation, preventing interference with subsequent structural work. The assembly of the structure is not hindered, so the installation operation is ensured to proceed smoothly. At the same time, the carbon fiber reinforced composite material used in the fixing plate 111 has good structural strength and outdoor weather resistance, which can adapt to the complex outdoor environment of the ecological slope protection. For example, it can resist long-term wind and rain erosion and aging loss caused by ultraviolet radiation, reduce the risk of structural damage during use, and ensure that the fixing plate 111 remains stable for a long time. This design not only achieves reliable fixation of the fixing plate 111 on the slope through the cooperation of the anchor rod and the mounting hole 114, but also optimizes the convenience of the installation process with the countersunk hole. In addition, the durability of the fixing plate 111 is improved by the use of specific materials, which provides a stable foundation for the subsequent construction of the entire ecological slope protection grid and avoids the overall slope protection effect from being affected by the loosening or premature damage of the fixing plate 111.

[0037] Please refer to Figures 1-3 and Figures 8-11The snap-fit ​​module 115 includes a side seat 1151, which is fixedly installed on the outside of the sliding block 113. A snap-fit ​​component 1152 is provided on the top of the side seat 1151 near the sliding block 113. A mounting groove 1153 is provided on one side of the side seat 1151. The end of the telescopic connecting mechanism 12 is inserted into the mounting groove 1153. The cross-sectional shape of the internal cavity of the mounting groove 1153 and the internal cavity of the annular groove 112 are both convex. The cross-sectional shape of the sliding block 113 is also convex. The telescopic connecting mechanism 12 includes a sleeve 121. Sliding rods 122 are slidably connected to both sides of the sleeve 121. A connecting plate 123 is fixedly installed on the outer end of the sliding rod 122. A locking block 124 is fixedly installed on the outer side of the connecting plate 123. 124 is inserted into the installation groove 1153. The limiting end of the snap-fit ​​assembly 1152 snaps into the snap-fit ​​block 124. The bottom outer end of the sleeve 121 is threaded with an installation screw 125. The end of the installation screw 125 passes through the sleeve 121. The installation screw 125 is a hand-tightening screw. The bottom of the slide rod 122 has limit screw holes 126 arranged linearly at equal intervals. The end of the installation screw 125 passes through the sleeve 121 and is threaded into the limit screw holes 126 at the corresponding positions. The two sides of the slide rod 122 and the two sides of the sleeve 121 have slope protection net installation screw holes 127 arranged linearly at equal intervals. The snap-fit ​​assembly 1152 includes a first snap hole 11521, a second snap hole 11522, and a groove 11523. The groove 11523 is opened on the side seat 1. On the top of the fixed plate 111, near the sliding block 113, the first locking holes 11521 are arranged in a ring at equal intervals on the top of the fixed plate 111. The first locking holes 11521 are also opened on the top of the sliding block 113. The second locking holes 11522 are opened on the top of the locking block 124 and the side seat 1151. A limit spring 11524 is fixedly connected inside the groove 11523. A base block 11525 is fixedly connected to the top of the limit spring 11524. A limit plate 11526 is fixedly installed on the top of the base block 11525. A first locking pin 11527 and a second locking pin 11528 are fixedly installed at the bottom ends of the limit plate 11526, respectively. The first locking pin 11527 passes through the first locking hole 11521 on the fixed plate 111 and is inserted into the sliding block 113. Inside the first locking hole 11521 on the side seat 1151, the second locking pin 11528 passes through the second locking hole 11522 on the side seat 1151 and is inserted into the second locking hole 11522 of the locking block 124. The side shape of the locking block 124 and the internal shape of the mounting groove 1153 are also set as convex. The two sides of the limiting plate 11526 are provided with disassembly and assembly slots 11529. The sleeve 121 and the slide rod 122 are also made of carbon fiber reinforced composite material. During the application of this device, it cooperates with the telescopic connection mechanism 12 by setting the locking module 115, and the internal cavity of the mounting groove 1153, the annular groove 112, the sliding block 113, and the locking block 124 are all set as convex. At the same time, the sleeve 121 and the slide rod 122 are made of carbon fiber reinforced composite material.The snap-fit ​​module 115 also includes a snap-fit ​​assembly 1152 with a limit spring 11524, a base block 11525, a limit plate 11526, and a disassembly / removal slot 11529. The telescopic connection mechanism 12 is equipped with a hand-tightening mounting screw 125 and a limit screw hole 126. Slope protection net mounting screw holes 127 are provided on both sides of the slide rod 122 and the sleeve 121. This allows the snap-fit ​​block 124 at the end of the telescopic connection mechanism 12 to be inserted into the mounting groove 1153 of the side seat 1151 during use. The convex structure prevents the snap-fit ​​block 124 from dislodging from the mounting groove 1153. Then, the limit plate... The disassembly and assembly slots 11529 on both sides of 11526 lift the limiting plate 11526, causing the base block 11525 to pull the limiting spring 11524 in the groove 11523, so that the first locking pin 11527 disengages from the first locking hole 11521 on the fixed plate 111 and the sliding block 113, and the second locking pin 11528 disengages from the side seat 1151 and the second locking hole 11522 on the locking block 124. At this time, the position of the sliding block 113 can be adjusted or the locking block 124 can be disassembled or assembled. After the adjustment is completed, the limiting plate 11526 is released, the limiting spring 11524 returns to its original position, and pushes the locking pin to re-insert into the corresponding locking hole. To complete the snap-fit ​​fixation, when adjusting the length of the telescopic connecting mechanism 12, simply loosen the hand-tightening installation screw 125 to disengage it from the limiting screw hole 126 at the bottom of the slide rod 122, slide the slide rod 122 to the appropriate length, and then tighten the installation screw 125 to fix the telescopic length. Subsequently, the slope protection net can be installed through the slope protection net installation screw holes 127 on both sides of the sleeve 121 via the slide rod 122. This design not only improves the stability of the fit between the components through the convex structure, preventing loosening and detachment during use, but also utilizes the elastic locking pin of the snap-fit ​​component 1152 and the disassembly and assembly slot 11529 for engagement. This design allows for rapid adjustment and disassembly without the need for complex tools. The hand-tightening installation screw 125 makes adjusting the telescopic length more convenient. The carbon fiber reinforced composite material of the sleeve 121 and slide rod 122 enhances structural strength and weather resistance, adapting to the complex environments of outdoor slope protection, including wind, rain, and ultraviolet radiation, thus extending its service life. The installation screw holes 127 for the slope protection net also facilitate the addition of the slope protection net, further strengthening the protective effect of ecological slope protection. This effectively improves upon the problems of poor connection structure stability and inconvenient adjustment and installation in existing technologies, making the device more flexible and durable in use, and better meeting the needs of ecological slope protection.

[0038] Please refer to Figures 1-6The photovoltaic power generation mechanism 2 includes a mounting base 21, which is fixedly installed at the top center of the sleeve 121. A rotating module 22 is fixedly installed on the top of the mounting base 21, and a photovoltaic panel 23 is fixedly installed on the top of the rotating module 22. A cleaning module 24 is fixedly installed on the rear side of the photovoltaic panel 23, and a power module 25 is fixedly installed on the rear side of the cleaning module 24. The power module 25 and the cleaning module 24 are connected by a transmission. The cleaning end of the cleaning module 24 is fitted and connected to the top of the photovoltaic panel 23. The rotating module 22 includes a rotating base 221, and a turntable 222 is rotatably connected to the top of the rotating base 221. The rotating base 221 is fixedly installed on the top of the mounting base 21, and the turntable 222... A support frame 223 is fixedly installed on the top of the photovoltaic panel 222. A bearing plate 224 is fixedly installed on the top of the support frame 223. The photovoltaic panel 23 is fixedly installed on the top of the bearing plate 224. A fixed screw 225 is threadedly connected to the outer edge of the top of the turntable 222 in a ring at equal intervals. The end of the fixed screw 225 passes through the turntable 222. The fixed screw 225 is a hand-tight screw. During the application of this device, the photovoltaic power generation mechanism 2 includes a mounting base 21, a rotating module 22, a photovoltaic panel 23, a cleaning module 24, and a power module 25. The rotating module 22 is equipped with a rotating base 221, a turntable 222, a support frame 223, a bearing plate 224, and a hand-tight screw. The fixed screw 225 simultaneously connects the power module 25 and the cleaning module 24, with the cleaning end of the cleaning module 24 adhering to the top of the photovoltaic panel 23. This allows the photovoltaic power generation mechanism 2 to be first fixed to the top of the sleeve 121 using the mounting base 21. Then, the turntable 222 is rotated according to the actual sunlight conditions. The turntable 222 will adjust the orientation of the top support frame 223, the carrier plate 224, and the photovoltaic panel 23. Once the photovoltaic panel 23 is rotated to a position where it can better receive sunlight, the hand-tightened fixing screw 225 on the outer edge of the turntable 222 is tightened, allowing the end of the fixing screw 225 to penetrate the turntable 222 for positioning, preventing the photovoltaic panel 23 from shifting during subsequent use. During the operation of the photovoltaic panel 23, the power module 25 drives the cleaning module 24 to operate. Because the cleaning end of the cleaning module 24 is attached to the top of the photovoltaic panel 23, it can clean the impurities on the surface of the photovoltaic panel 23, preventing impurities from blocking the power generation efficiency. This design makes it easier to adjust the orientation of the photovoltaic panel 23 through the cooperation of the rotating module 22 and the hand-tightening fixing screw 225, and can be fixed without relying on complicated tools. It can easily adapt to the changes in sunlight at different times or in different areas, and help the photovoltaic panel 23 receive more sunlight. At the same time, the transmission cooperation between the power module 25 and the cleaning module 24 can clean the photovoltaic panel 23 in a timely manner, ensuring its stable power generation effect.Meanwhile, the support frame 223 and the bearing plate 224 in the rotating module 22 provide stable support for the photovoltaic panel 23, preventing deformation or damage to the photovoltaic panel 23 due to external forces in the outdoor environment. The mounting base 21 ensures the reliability of the connection between the photovoltaic power generation mechanism 2 and the sleeve 121, allowing the photovoltaic power generation function to be stably used in conjunction with the ecological slope protection grid. This achieves slope protection while efficiently utilizing solar energy, further enhancing the overall practical value of the device.

[0039] Please refer to Figures 4-7The cleaning module 24 includes a connecting arm 241, which is fixedly installed on the upper rear side of the back of the support plate 224. A mounting plate 242 is fixedly installed on the rear side of the connecting arm 241. Guide rails 243 are fixedly installed on both sides of the mounting plate 242. A slider 244 is slidably connected inside the guide rails 243. A sliding frame 245 is fixedly installed on the top of the slider 244. Racks 246 are fixedly installed on both sides of the sliding frame 245. A half-gear 247 is rotatably connected to the top center of the mounting plate 242. The half-gear 247 intermittently meshes with two racks 246. A driven gear 248 is fixedly installed on the top of the half-gear 247, and the driven gear 248 is connected to the power module 25. Cleaning elements are fixedly installed at both ends of the top of the sliding frame 245. The cleaning brush assembly 249 includes fixed arms 2491, which are fixedly installed on both sides of the top of the sliding frame 245. An installation rail 2492 is fixedly installed at the upper end of the fixed arms 2491. An installation strip 2493 is slidably connected inside the installation rail 2492. A limit screw 2494 is threadedly connected to the front end of the installation rail 2492. The end of the limit screw 2494 passes through the installation rail 2492 and the installation strip 2493 and is threadedly connected. A cleaning brush plate 2495 is fixedly installed on the side of the installation strip 2493 near the photovoltaic panel 23. The cleaning bristles of the cleaning brush plate 2495 are in close contact with the outer side of the photovoltaic panel 23. The power module 25 includes a fixing seat 251, which is fixedly installed in the middle of the back of the mounting plate 242. A wind turbine 252 is fixedly installed at the bottom of the 251. A support shaft 253 is fixedly installed at the top shaft end of the wind turbine 252 through the fixed seat 251. A vertical axis wind turbine impeller 254 is fixedly installed at the top of the support shaft 253. A support base 255 is fixedly installed at the lower end of the outer surface of the support shaft 253. An active gear ring 256 is fixedly installed on the outer side of the support base 255. The outer side of the active gear ring 256 meshes with the driven gear 248. During the application of this device, it cooperates with the power module 25 through the setting of a cleaning module 24. The cleaning module 24 is equipped with a connecting arm 241, a mounting plate 242, a guide rail 243, a slider 244, a sliding frame 245, a rack 246, a half gear 247, a driven gear 248, and a cleaning brush assembly 24. 9. The cleaning brush assembly 249 includes a fixed arm 2491, a mounting rail 2492, a mounting strip 2493, a limit screw 2494, and a cleaning brush plate 2495. The power module 25 includes a fixed base 251, a wind turbine generator 252, a support shaft 253, a vertical axis wind turbine impeller 254, a support frame 255, and a drive gear ring 256. The drive gear ring 256 meshes with the driven gear 248, and the bristles of the cleaning brush plate 2495 are in contact with the outer side of the photovoltaic panel 23. When in use, if there is wind outdoors, the wind will drive the vertical axis wind turbine impeller 254 to rotate. The impeller drives the support shaft 253 to rotate, and the support shaft 253 simultaneously drives the support frame 255 and the drive gear ring 256 to rotate. The drive gear ring 256, through meshing, drives the driven gear 248 to rotate.Driven gear 248 drives half gear 247 to rotate. Half gear 247 intermittently meshes with racks 246 on both sides inside sliding frame 245, pushing sliding frame 245 to reciprocate along guide rails 243 on both sides of mounting plate 242 via slider 244. When sliding frame 245 slides, it drives cleaning brush assemblies 249 at both ends of the top to move synchronously. The fixed arm 2491, mounting rail 2492, and mounting strip 2493 of cleaning brush assembly 249 move with sliding frame 245. The cleaning brush plate 2495 on mounting strip 2493 cleans the surface impurities of photovoltaic panel 23 by adhering to the bristles. When the cleaning brush bristles are worn, the limiting screw 2494 at the front end of mounting rail 2492 can be loosened to disengage the screw end from mounting strip 2493, and mounting strip 2493 can be removed from mounting rail 2492 for replacement. After replacement, the limiting screw 2494 is tightened to fix the mounting strip. The mounting strip 2493, along with the support shaft 253, rotates and drives the wind turbine 252 to generate electricity. This design utilizes wind energy to power the cleaning action, eliminating the need for additional electrical energy consumption and avoiding the energy consumption and maintenance costs associated with motor-driven cleaning. The wind turbine 252 can also simultaneously generate electricity from wind power, improving resource utilization. The engagement of the half-gear 247 and rack 246 allows the sliding frame 245 to reciprocate, ensuring that the cleaning brush 2495 thoroughly cleans the surface of the photovoltaic panel 23, preventing impurities from obstructing power generation efficiency. The detachable mounting strip 2493, in conjunction with the limiting screw 2494, simplifies brush replacement and reduces maintenance difficulty. The design of the cleaning brush 2495's bristles adhering to the photovoltaic panel 23 ensures effective cleaning, allowing the photovoltaic panel 23 to continuously and stably receive solar energy, further guaranteeing the efficient operation of the photovoltaic power generation function.

[0040] The implementation principle of the carbon fiber reinforced ecological slope protection grid in this application embodiment is as follows: When using this technical solution, firstly, the ring-shaped adjustment and assembly mechanism 11 is installed and its position is adjusted. The fixing plate 111, which is made of carbon fiber reinforced composite material, is placed in the preset position of the ecological slope protection. Anchor rods are inserted through the mounting hole 114 in the middle of the top of the fixing plate 111, and the fixing plate 111 is fixed on the ecological slope protection with the help of the anchor rods. The countersunk design of the mounting hole 114 can avoid the anchor rod end protruding and affecting the subsequent structural installation. When the disassembly and assembly slots 11529 on both sides of the limiting plate 11526 in the operating snap-fit ​​module 115 are opened, the limiting plate 11526 is lifted upward, which will drive the limiting spring 11524 in the stretching groove 11523 of the base block 11525, so that the limiting plate 11526 is lifted upward. The first locking pin 11527 at the bottom of the position plate 11526 disengages from the first locking hole 11521 at the top of the sliding block 113. At this time, the sliding block 113, which has a convex cross section, can slide along the annular groove 112, which also has a convex cross section, on the outside of the fixed plate 111. The convex structure can ensure that the sliding block 113 does not disengage during the sliding process. After the sliding block 113 moves to the required position, the limiting plate 11526 is released. The limiting spring 11524 resets and pulls the base block 11525 and the limiting plate 11526 down, so that the first locking pin 11527 passes through the first locking hole 11521 at the top of the fixed plate 111 and is inserted into the first locking hole 11521 at the top of the sliding block 113, thereby achieving relative fixation between the sliding block 113 and the fixed plate 111.

[0041] After adjusting the annular adjustment assembly mechanism 11, the next step is to assemble the telescopic connection mechanism 12 and build the carbon fiber assembly network 1. Both the sleeve 121 and the slide rod 122 of the telescopic connection mechanism 12 are made of carbon fiber reinforced composite material. First, the length of the telescopic connection mechanism 12 is adjusted by loosening the hand-tightening mounting screw 125 at the bottom outer end of the sleeve 121, so that the end of the mounting screw 125 disengages from the limiting screw hole 126 at the bottom of the slide rod 122. At this time, the slide rod 122 can move along the sleeve... The tube 121 slides on both sides inside. The sliding rod 122 is pulled according to the specifications of the ecological slope protection grid. After the length is determined, a hand-tightening installation screw 125 is screwed in, allowing the end of the installation screw 125 to pass through the sleeve 121 and be screwed into the corresponding limiting screw hole 126 at the bottom of the sliding rod 122, thus fixing the sliding rod 122 and the sleeve 121 relatively. Then, the locking block 124 on the connecting plate 123 at the outer end of the sliding rod 122 is inserted into the mounting groove 1153 of the side seat 1151 of the locking module 115. The convex-shaped engagement between block 153 and latch 124 prevents block 124 from dislodging. Then, by disassembling and reassembling slot 11529, the limiting plate 11526 is lifted. The limiting plate 11526 causes the base block 11525 to stretch the limiting spring 11524, aligning the second latch 11528 at the bottom of the limiting plate 11526 with the side seat 1151 and the second latch hole 11522 at the top of the latch 124. After releasing the limiting plate 11526, the limiting spring 11524 returns to its original position, pulling the base block 11525 and the limiting plate 11526 back together. 1526 moves down, the second locking pin 11528 passes through the second locking hole 11522 of the side seat 1151 and is inserted into the second locking hole 11522 of the locking block 124, so as to realize the locking and fixing of the telescopic connection mechanism 12 and the annular adjustment assembly mechanism 11. Repeat the above steps to assemble several annular adjustment assembly mechanisms 11 and telescopic connection mechanisms 12 in sequence. At the same time, the slope protection net is installed using the slope protection net mounting screw holes 127 on both sides of the sleeve 121 and the slide rod 122, and finally a complete carbon fiber assembly network 1 is formed.

[0042] After the carbon fiber assembly network 1 is completed, the photovoltaic power generation mechanism 2 is installed and the orientation of the photovoltaic panels 23 is adjusted. The mounting base 21 is fixed at the top center of the sleeve 121 of the telescopic connection mechanism 12. The rotating base 221 of the rotating module 22 is fixedly installed on the top of the mounting base 21. Since the turntable 222 can rotate on the top of the rotating base 221, the support frame 223 is fixed on the top of the turntable 222, and then the bearing plate 224 is fixed on the top of the support frame 223. Finally, the photovoltaic panels 23 are fixedly installed on the top of the bearing plate 224, completing the base of the photovoltaic power generation mechanism 2. For basic installation, based on the sunlight conditions of the area where the ecological slope protection is located, rotate the turntable 222 to adjust the orientation of the photovoltaic panel 23. When the photovoltaic panel 23 is in the position to receive the optimal sunlight, tighten the hand-tight fixing screw 225 on the outer edge of the top of the turntable 222 so that the end of the fixing screw 225 passes through the turntable 222 and fits tightly with the rotating base 221, thereby achieving relative fixation between the turntable 222 and the rotating base 221 and completing the adjustment of the orientation of the photovoltaic panel 23. The support frame 223 and the bearing plate 224 can provide stable support for the photovoltaic panel 23 and prevent the photovoltaic panel 23 from deforming due to external forces.

[0043] After the photovoltaic power generation mechanism 2 is debugged, the cleaning function of this technical solution can be used to automatically clean the photovoltaic panel 23. The mounting base 251 of the power module 25 is fixed to the middle of the back of the mounting plate 242 of the cleaning module 24. The wind turbine 252 at the bottom of the mounting base 251 works in conjunction with the vertical axis wind turbine rotor 254 at the top. When there is wind outside, the wind will drive the vertical axis wind turbine rotor 254 to rotate. The rotor drives the support shaft 253 to rotate, and the support shaft 253 simultaneously drives the wind turbine 252 to operate and generate electricity. The support base 255 at the lower end of the outer surface rotates synchronously with the support shaft 253. The drive gear ring 256 on the outer side of the support base 255 also rotates accordingly. The drive gear ring 256 meshes with the driven gear 248 on the top of the half gear 247 in the cleaning module 24. Therefore, the rotation of the drive gear ring 256 will drive the driven gear 248 to rotate, which in turn will drive the half gear 247 to rotate. The half gear 247 intermittently meshes with the racks 246 on both sides inside the sliding frame 245. When the half gear 247 meshes with one side of the rack 246, it will push the sliding frame 245 along the mounting plate 2. The guide rails 243 on both sides of the 42 slide in one direction. The cooperation between the guide rails 243 and the slider 244 ensures the stability of the sliding trajectory of the sliding frame 245. When the half gear 247 rotates to mesh with the rack 246 on the other side, it pushes the sliding frame 245 to slide in the opposite direction along the guide rails 243, realizing the reciprocating sliding of the sliding frame 245. The fixed arms 2491 at both ends of the top of the sliding frame 245 will drive the mounting rail 2492 to move back and forth synchronously. The mounting strip 2493 inside the mounting rail 2492 moves with the mounting rail 2492 and approaches the photovoltaic panel. The cleaning brush plate 2495 on one side of the photovoltaic panel 23 also moves synchronously. Since the bristles of the cleaning brush plate 2495 are in contact with the outer side of the photovoltaic panel 23, they can clean the pollutants such as household garbage and fallen leaves on the surface of the photovoltaic panel 23 during the reciprocating movement. If the cleaning brush bristles are worn, loosen the limiting screw 2494 at the front end of the mounting rail 2492 so that the end of the limiting screw 2494 can be dislodged from the mounting strip 2493. Then the mounting strip 2493 can be removed from the mounting rail 2492 and replaced. After replacement, the limiting screw 2494 is screwed back in to fix the mounting strip 2493.

[0044] This technical solution achieves multiple practical effects through the above-described usage process. The cooperation between the sliding block 113 and the annular groove 112 in the annular adjustment assembly mechanism 11, combined with the length adjustment of the sliding rod 122 and the sleeve 121 in the telescopic connection mechanism 12, allows the carbon fiber assembly network 1 to be combined into various specifications according to the shape and size requirements of different slopes, solving the problem that traditional ecological slope protection grids can only form a single specification and have poor adaptability. The orientation of the photovoltaic panel 23 can be flexibly adjusted via the turntable 222, adapting to different areas and different time periods of sunlight, ensuring that the photovoltaic panel 23 is always in the optimal state of sunlight reception, improving light energy absorption efficiency. The cleaning function utilizes wind power to drive the vertical... The direct-axis wind turbine rotor 254 provides power without requiring additional electrical energy or electronic components such as motors, thus avoiding the energy consumption and maintenance costs associated with motor cleaning. The detachable mounting strip 2493 facilitates cleaning and brush replacement, reducing the difficulty of later maintenance. The fixing plate 111, sleeve 121, and slide rod 122 are made of carbon fiber reinforced composite material, which can withstand harsh environments such as corrosion and ultraviolet radiation on outdoor slopes, extending the overall service life. The hand-tightening screw design allows for operation without complex tools, simplifying the construction process and improving efficiency. The installation of the slope protection net further enhances the mesh's ability to constrain the soil, ensuring effective soil and water conservation.

[0045] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A carbon fiber reinforced ecological slope protection grid, characterized in that; The carbon fiber assembly network (1) is composed of several annular adjustment assembly mechanisms (11) and several telescopic connection mechanisms (12). The annular adjustment assembly mechanisms (11) and the telescopic connection mechanisms (12) are assembled and snapped together to form the carbon fiber assembly network (1). A photovoltaic power generation mechanism (2) is fixedly installed on the top of each telescopic connection mechanism (12). The ring-shaped assembly mechanism includes a fixed plate (111), an annular groove (112) is provided on the outer side of the fixed plate (111), and a plurality of sliding blocks (113) are slidably connected inside the annular groove (112). A snap-fit ​​module (115) is fixedly installed on the outer side of the sliding block (113). The outer side of the sliding block (113) is snapped with one end of the telescopic connecting mechanism (12) through the snap-fit ​​module (115). The snap-fit ​​module (115) and the fixed plate (111) are snapped together.

2. The carbon fiber reinforced ecological slope protection grid according to claim 1, characterized in that: The top center of the fixing plate (111) is provided with an installation hole (114), which is a countersunk hole. The fixing plate (111) is fixed to the ecological slope protection by installing an anchor rod in the installation hole (114). The fixing plate (111) is made of carbon fiber reinforced composite material.

3. The carbon fiber reinforced ecological slope protection grid according to claim 2, characterized in that: The snap-fit ​​module (115) includes a side seat (1151), which is fixedly installed on the outside of the sliding block (113). A snap-fit ​​component (1152) is provided on the top of the side seat (1151) near the sliding block (113). An installation groove (1153) is provided on one side of the side seat (1151). The end of the telescopic connecting mechanism (12) is inserted into the interior of the installation groove (1153). The cross-sectional shape of the internal cavity of the installation groove (1153) and the internal cavity of the annular groove (112) are both set to a convex shape. The cross-sectional shape of the sliding block (113) is also set to a convex shape.

4. The carbon fiber reinforced ecological slope protection grid according to claim 3, characterized in that: The telescopic connection mechanism (12) includes a sleeve (121), with sliding rods (122) slidably connected to both sides of the inner side of the sleeve (121). A connecting plate (123) is fixedly installed at the outer end of the sliding rod (122), and a locking block (124) is fixedly installed on the outer side of the connecting plate (123). The locking block (124) is inserted into the interior of the mounting groove (1153). The limiting end of the locking assembly (1152) is engaged with the locking block (124). An installation screw is threaded to the bottom outer end of the sleeve (121). The rod (125) has its end passing through the sleeve (121). The mounting screw (125) is a hand-tightening screw. The bottom of the slide rod (122) has limit screw holes (126) arranged linearly at equal intervals. The end of the mounting screw (125) passes through the sleeve (121) and is threaded to the limit screw holes (126) at the corresponding positions. The two sides of the slide rod (122) and the two sides of the sleeve (121) have slope protection net mounting screw holes (127) arranged linearly at equal intervals.

5. The carbon fiber reinforced ecological slope protection grid according to claim 4, characterized in that: The snap-fit ​​assembly (1152) includes a first snap-fit ​​hole (11521), a second snap-fit ​​hole (11522), and a groove (11523). The groove (11523) is located on the top of the side seat (1151) near the sliding block (113). The first snap-fit ​​holes (11521) are arranged in a ring at equal intervals on the top of the fixed plate (111). The first snap-fit ​​holes (11521) are also located on the top of the sliding block (113). The second snap-fit ​​holes (11522) are located on the top of the snap-fit ​​block (124) and the side seat (1151). A limit spring (11524) is fixedly connected inside the groove (11523). A base block (11525) is fixedly connected to the top of the limit spring (11524). A limit plate (115) is fixedly installed on the top of the base block (11525). 26), the bottom ends of the limiting plate (11526) are respectively fixedly installed with a first locking pin (11527) and a second locking pin (11528). The first locking pin (11527) passes through the first locking hole (11521) on the fixed plate (111) and is inserted into the first locking hole (11521) on the sliding block (113). The second locking pin (11528) passes through the second locking hole (11522) on the side seat (1151) and is inserted into the second locking hole (11522) on the locking block (124). The side shape of the locking block (124) and the internal shape of the mounting groove (1153) are also set as convex. The two sides of the limiting plate (11526) are provided with disassembly and assembly slots (11529). The sleeve (121) and the slide rod (122) are also made of carbon fiber reinforced composite material.

6. The carbon fiber reinforced ecological slope protection grid according to claim 5, characterized in that: The photovoltaic power generation mechanism (2) includes a mounting base (21), which is fixedly installed at the top center of the sleeve (121). A rotating module (22) is fixedly installed on the top of the mounting base (21), and a photovoltaic panel (23) is fixedly installed on the top of the rotating module (22). A cleaning module (24) is fixedly installed on the rear side of the photovoltaic panel (23), and a power module (25) is fixedly installed on the rear side of the cleaning module (24). The power module (25) and the cleaning module (24) are connected by a transmission. The cleaning end of the cleaning module (24) is attached to the top of the photovoltaic panel (23).

7. The carbon fiber reinforced ecological slope protection grid according to claim 6, characterized in that: The rotating module (22) includes a rotating base (221), a turntable (222) is rotatably connected to the top of the rotating base (221), the rotating base (221) is fixedly installed on the top of the mounting base (21), a support frame (223) is fixedly installed on the top of the turntable (222), a bearing plate (224) is fixedly installed on the top of the support frame (223), the photovoltaic panel (23) is fixedly installed on the top of the bearing plate (224), and a fixing screw (225) is threadedly connected to the outer edge of the top of the turntable (222) in a ring at equal intervals. The end of the fixing screw (225) passes through the turntable (222), and the fixing screw (225) is a hand-tightening screw.

8. The carbon fiber reinforced ecological slope protection grid according to claim 7, characterized in that: The cleaning module (24) includes a connecting arm (241), which is fixedly installed on the upper rear side of the back of the support plate (224). A mounting plate (242) is fixedly installed on the rear side of the connecting arm (241). Guide rails (243) are fixedly installed on both sides of the mounting plate (242). A slider (244) is slidably connected inside the guide rails (243). A sliding frame (245) is fixedly installed on the top of the slider (244). Racks (246) are fixedly installed on both sides of the interior of the mounting plate (242). A half gear (247) is rotatably connected to the top center of the mounting plate (242). The half gear (247) is intermittently meshed with the two racks (246). A driven gear (248) is fixedly installed on the top of the half gear (247). The driven gear (248) is connected to the power module (25) for transmission. Cleaning brushes (249) are fixedly installed at both ends of the top of the sliding frame (245).

9. A carbon fiber reinforced ecological slope protection grid according to claim 8, characterized in that: The cleaning brush assembly (249) includes a fixed arm (2491), which is fixedly installed on both sides of the top of the sliding frame (245). An installation rail (2492) is fixedly installed on the upper end of the fixed arm (2491). An installation strip (2493) is slidably connected inside the installation rail (2492). A limit screw (2494) is threadedly connected to the front end of the installation rail (2492). The end of the limit screw (2494) passes through the installation rail (2492) and the installation strip (2493) and is threadedly connected. A cleaning brush plate (2495) is fixedly installed on the side of the installation strip (2493) near the photovoltaic panel (23). The cleaning bristles of the cleaning brush plate (2495) are attached to the outer side of the photovoltaic panel (23).

10. A carbon fiber reinforced ecological slope protection grid according to claim 9, characterized in that: The power module (25) includes a fixed base (251), which is fixedly installed on the middle of the back of the mounting plate (242). A wind turbine generator (252) is fixedly installed at the bottom of the fixed base (251). A support shaft (253) is fixedly installed through the fixed base (251) at the top shaft end of the wind turbine generator (252). A vertical axis wind turbine impeller (254) is fixedly installed at the top of the support shaft (253). A support base frame (255) is fixedly installed at the lower end of the outer surface of the support shaft (253). An active gear ring (256) is fixedly installed on the outer side of the support base frame (255). The outer side of the active gear ring (256) is meshed with a driven gear (248).

Citation Information

Patent Citations

  • A root-type ecological grid slope protection

    CN116556378B