River ecological slope protection module
By using detachable and modular protective netting and irrigation mechanisms, the problem of localized repair of slope protection netting in existing technologies has been solved, enabling flexible installation and efficient maintenance, and enhancing the stability and ecological restoration effect of riverbank ecological protection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ANHUI ZHENGYOU CONSTRUCTION CO LTD
- Filing Date
- 2025-04-21
- Publication Date
- 2026-05-19
AI Technical Summary
Existing technologies use large-area netting for covering, which makes it inconvenient to repair locally later. It is also impossible to open up a portion of the slope protection netting as needed, resulting in maintenance difficulties.
The system employs detachable and modular protective netting, which allows for flexible splicing and individual replacement of the netting through connecting and disassembly mechanisms. Combined with an irrigation system, it ensures plant growth and enhances slope stability.
It enables flexible combination and local repair of protective netting, reduces maintenance costs, enhances slope stability and ecological restoration, and improves installation efficiency and plant survival rate.
Smart Images

Figure CN224259269U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of ecological slope protection technology, specifically to a river ecological slope protection module. Background Technology
[0002] Ecological slope protection is a slope protection technology that integrates engineering mechanics, soil science, ecology, and botany to support slopes or side slopes, forming a comprehensive slope protection system composed of plants or a combination of engineering and plants. After the slope is excavated, plants are planted to protect and reinforce the slope surface through the interaction between the plants and the rock and soil. This method not only meets the requirements for slope surface stability but also restores the damaged natural ecological environment, making it an effective means of slope protection and stabilization.
[0003] A search revealed that Chinese patent application CN218291816U discloses a river ecological slope protection structure. This invention, through the coordinated use of a servo motor, take-up roller, movable arm, guide roller, cavity, first threaded rod, threaded block, connecting rod, movable plate, mounting plate, second threaded rod, throttle, pressure plate, base plate, and controller, offers advantages in terms of ease of adjustment and installation.
[0004] However, the following technical problems still exist when implementing the above technical solutions: directly using a large area of netting for covering makes it inconvenient to repair local areas later, and it is impossible to open a part of the slope protection netting according to actual needs.
[0005] Therefore, the problem that this utility model urgently needs to solve is to provide a river ecological slope protection module that can be conveniently repaired in local areas during use and can also open a part of the slope protection net according to actual needs. Utility Model Content
[0006] To address the aforementioned technical problems, the purpose of this utility model is to overcome the shortcomings of existing technologies that directly use large-area nets for covering, which makes it inconvenient to repair local areas later and to open up a portion of the slope protection net as needed. Therefore, this utility model provides a river ecological slope protection module that allows for convenient repair of local areas during use and also allows for the opening up of a portion of the slope protection net as needed.
[0007] To achieve the above objectives, this utility model provides a riverbank ecological slope protection module. The ecological slope protection module includes: a slope body, which consists of a retaining wall near the river and a sloping surface away from the river. Multiple sets of detachable and interlocking protective netting are installed on the retaining wall. Baffles are fixedly installed at intervals on the sloping surface, with trees planted between every two sets of baffles.
[0008] Each pair of protective nets is spliced together by a connecting mechanism. The left and right sides of the protective net are respectively provided with sliding grooves and sliding rods that cooperate with the sliding grooves. The protective net is also provided with a disassembly and assembly mechanism for detaching and installing each pair of protective nets.
[0009] Preferably, the connecting mechanism includes: a splicing block, a first spring, and a limiting block; wherein,
[0010] The protective net has splicing blocks fixedly installed on its side. Each end of the splicing block has a first mounting groove. Each set of first mounting grooves has a first spring fixedly installed in it. One end of the first spring is fixedly connected to a limiting block that slides with the inner side wall of the first mounting groove. The protective net has a splicing groove on the side away from the splicing block. The two inner side walls of the splicing groove have limiting grooves that cooperate with the limiting block.
[0011] Preferably, the top end of the limiting block is arc-shaped.
[0012] Preferably, the disassembly and assembly mechanism includes: a fixing groove, a fixing plate, and a plug-in block; wherein,
[0013] The protective net is fixedly provided with a fixing groove, and multiple sets of insertion grooves are opened at intervals on the side of the fixing groove. A fixing plate that cooperates with the fixing groove is fixedly provided on the side of the protective net that is away from it. Multiple sets of second mounting grooves are opened in the fixing plate. A second spring is fixedly provided in the second mounting groove. One end of the second spring is fixedly connected to an insertion block that slides with the inner wall of the second mounting groove and corresponds to the insertion groove one by one.
[0014] Preferably, the plug block is further provided with a limiting member for fixing the plug block in the plug slot.
[0015] Preferably, the limiting component includes a third spring and a stop block; the plug block has a third mounting groove, the third spring is fixedly installed in the third mounting groove, and the top end of the third spring is fixedly provided with a stop block that slides in cooperation with the inner wall of the third mounting groove.
[0016] Preferably, the side of the stop block that contacts the side of the fixing groove is a vertical surface parallel to the side of the fixing groove, and the cross-section of the side that is far away from it is wedge-shaped.
[0017] Preferably, the slope surface is provided with an irrigation mechanism for irrigating the plants planted within the baffle.
[0018] Preferably, the irrigation mechanism includes: a water pump, an inlet pipe, and an outlet pipe; wherein,
[0019] A water pump is fixedly installed on the slope. The input end of the water pump is connected to the river through an inlet pipe. The output end of the water pump is fixedly connected to a connecting pipe. A diversion pipe is fixedly connected to the connecting pipe. Multiple sets of outlet pipes for irrigating the plants between each pair of baffles are connected to the diversion pipe. A drainage ditch is opened on the slope along the direction of the slope surface.
[0020] According to the above technical solution, the river ecological slope protection module provided by this utility model has the following beneficial effects in use: The protective netting adopts a detachable splicing method, allowing workers to flexibly combine the protective netting modules according to the actual size and shape of the retaining wall during installation, thus improving installation efficiency. In later maintenance, if a set of protective netting is damaged, it can be disassembled and replaced individually without replacing the entire set, reducing maintenance costs. Multiple sets of protective netting are spliced together to form a large-area protection, fully covering the retaining wall and effectively blocking the direct erosion of the retaining wall by water flow, reducing soil erosion and protecting the stability of the slope. The connecting and disassembly mechanisms ensure that the protective netting is firmly spliced, allowing it to maintain good protective performance even under long-term water flow impact.
[0021] Other features and advantages of this utility model will be described in detail in the following detailed description section; and all parts not covered in this utility model are the same as or can be implemented using existing technology. Attached Figure Description
[0022] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the following detailed description to explain the present invention, but do not constitute a limitation thereof. In the drawings:
[0023] Figure 1 A schematic diagram of the three-dimensional structure of a river ecological slope protection module provided in a preferred embodiment. Figure 1 ;
[0024] Figure 2 A schematic diagram of the three-dimensional structure of a river ecological slope protection module provided in a preferred embodiment. Figure 2 ;
[0025] Figure 3 This is a cross-sectional view of a river ecological slope protection module provided in a preferred embodiment;
[0026] Figure 4 This is a three-dimensional structural diagram of a river ecological slope protection module protective net provided in a preferred embodiment;
[0027] Figure 5 This is a three-dimensional structural diagram of a river ecological slope protection module connection mechanism provided in a preferred embodiment;
[0028] Figure 6This is a partial three-dimensional cross-sectional structural diagram of a river ecological slope protection module connection mechanism provided in a preferred embodiment;
[0029] Figure 7 A plan view of the disassembly and assembly mechanism for a river ecological slope protection module provided in a preferred embodiment;
[0030] Figure 8 yes Figure 7 Sectional view of AA.
[0031] Explanation of reference numerals in the attached figures
[0032] 100. Slope; 101. Inclined slope; 102. Retaining wall; 103. Protective net; 104. Baffle; 106. Slide chute; 107. Slide rod; 200. Irrigation mechanism; 201. Water pump; 202. Inlet pipe; 203. Connecting pipe; 204. Diversion pipe; 205. Outlet pipe; 206. Drainage ditch; 300. Connecting mechanism; 301. Splicing groove; 302. Limiting groove; 303. Splicing block; 304. First mounting groove; 305. First spring; 306. Limiting block; 400. Disassembly and assembly mechanism; 401. Fixing groove; 402. Insertion groove; 403. Fixing plate; 404. Second mounting groove; 405. Second spring; 406. Insertion block; 407. Third mounting groove; 408. Third spring; 409. Stop block. Detailed Implementation
[0033] The specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are for illustration and explanation only and are not intended to limit the scope of this utility model.
[0034] In this utility model, unless otherwise stated, directional words such as "upper," "lower," "inner," and "outer" included in the terminology only represent the orientation of the term in its conventional use or are common terms understood by those skilled in the art, and should not be regarded as limitations on the term.
[0035] Reference Figures 1-8 As shown, a riverbank ecological slope protection module includes a slope 100, which consists of a retaining wall 102 near the river and a sloping surface 101 away from the river. Multiple sets of detachable and interlocking protective netting 103 are installed on the retaining wall 102. Baffles 104 are fixedly installed at intervals on the sloping surface 101, with trees planted between every two sets of baffles 104.
[0036] Each pair of protective nets 103 is spliced together by a connecting mechanism 300. The left and right sides of the protective net 103 are respectively provided with sliding grooves 106 and sliding rods 107 that cooperate with the sliding grooves 106. The protective net 103 is also provided with a disassembly and assembly mechanism 400 for disassembling and detaching each pair of protective nets 103.
[0037] In the above scheme, the retaining wall 102 serves to prevent the river water from eroding the slope 100, while the slope surface 101 provides a foundation for subsequent ecological planting. Protective netting 103 is installed on the retaining wall 102; multiple sets of protective netting 103 are detachable and can be spliced together. The upper and lower sets of protective netting 103 are spliced together via a connecting mechanism 300. The left and right sets of protective netting 103 are initially positioned using sliding rods 107 and sliding grooves 106, and then detached and installed using a disassembly and assembly mechanism 400, thus completing the overall laying of the protective netting 103 on the retaining wall 102, protecting it from collapse. Baffles 104 are fixedly installed at intervals on the slope surface 101 to form planting areas, and trees are planted between every two sets of baffles 104. As the trees grow, their root systems stabilize the soil, further enhancing the stability of the slope and simultaneously achieving ecological greening. The protective netting 103 adopts a detachable and splicable design. During installation, workers can flexibly combine the protective netting 103 modules according to the actual size and shape of the retaining wall 102, improving installation efficiency. In later maintenance, if a set of protective netting 103 is damaged, it can be disassembled and replaced individually without replacing the entire set, reducing maintenance costs.
[0038] Reference Figures 5-6 As shown, the connecting mechanism 300 includes: a splicing block 303, a first spring 305, and a limiting block 306; wherein,
[0039] The protective net 103 has a splicing block 303 fixedly installed on its side. The two ends of the splicing block 303 are respectively provided with a first mounting groove 304. A first spring 305 is fixedly installed in each set of first mounting grooves 304. One end of the first spring 305 is fixedly connected to a limiting block 306 that slides with the inner side wall of the first mounting groove 304. The protective net 103 has a splicing groove 301 that cooperates with the splicing block 303 on its side away from the splicing block 303. The two inner side walls of the splicing groove 301 have limiting grooves 302 that cooperate with the limiting block 306.
[0040] When splicing the upper and lower protective nets 103, the construction workers accurately align the splicing blocks 303 on the side of one set of protective nets 103 with the splicing grooves 301 on the other set of protective nets 103, so that the central axis of the splicing block 303 roughly coincides with the central axis of the splicing groove 301, in preparation for the next insertion operation. When the splicing block 303 is slowly pushed into the splicing groove 301, the inner wall of the splicing groove 301 first contacts the limiting block 306. As the insertion depth increases, the inner wall continuously compresses the limiting block 306. Since the limiting block 306 and the inner wall of the first mounting groove 304 are in a sliding fit relationship, and the first spring 305 is installed in the first mounting groove 304, the limiting block 306 will overcome the elastic force of the first spring 305 and slide into the first mounting groove 304. The first spring 305 is gradually compressed. When the splicing block 303 continues to be inserted until the limiting blocks 306 at both ends reach the position of the upper limit groove 302 on the inner wall of the splicing groove 301, the compressed first spring 305 quickly rebounds, and the elastic force pushes the limiting block 306 to quickly lock into the limiting groove 302. At this time, the splicing block 303 and the splicing groove 301 are tightly fitted, and the limiting block 306 and the limiting groove 302 are locked to each other, completing the splicing and fixing of the upper and lower sets of protective nets 103.
[0041] Reference Figure 6 As shown, the top of the limiting block 306 is arc-shaped.
[0042] In the above scheme, due to the special shape of the arc-shaped top, it can guide the limiting block 306 to slide along a specific trajectory in the splicing groove 301, reducing the jamming and offset phenomena that may be caused by the irregular shape of the top.
[0043] Reference Figures 4-8 As shown, the disassembly and assembly mechanism 400 includes: a fixing groove 401, a fixing plate 403, and a plug-in block 406; wherein,
[0044] The protective net 103 is fixedly provided with a fixing groove 401. Multiple sets of insertion grooves 402 are opened at intervals on the side of the fixing groove 401. A fixing plate 403 that cooperates with the fixing groove 401 is fixedly provided on the side of the protective net 103 that is away from it. Multiple sets of second mounting grooves 404 are opened in the fixing plate 403. A second spring 405 is fixedly provided in the second mounting groove 404. One end of the second spring 405 is fixedly connected to an insertion block 406 that slides with the inner wall of the second mounting groove 404 and corresponds to the insertion groove 402.
[0045] During installation, the workers align the fixing plate 403 on one set of protective netting 103 with the fixing groove 401 on another set of protective netting 103, ensuring that the central axis of the fixing plate 403 roughly coincides with the central axis of the fixing groove 401. This ensures smooth insertion, and the workers slowly push the fixing plate 403 into the fixing groove 401. During insertion, the inner wall of the fixing groove 401 first contacts the insertion block 406. As the insertion depth increases, the inner wall continuously presses against the insertion block 406. Since the plug-in block 406 and the inner wall of the second mounting groove 404 are in a sliding fit relationship, and the second spring 405 is installed in the second mounting groove 404, the plug-in block 406 overcomes the elastic force of the second spring 405 and slides into the second mounting groove 404. The second spring 405 is gradually compressed. When the fixing plate 403 is continuously inserted until the plug-in block 406 on it corresponds one-to-one with the plug-in groove 402 on the side of the fixing groove 401, the compressed second spring 405 quickly rebounds, and the resulting elastic force pushes the plug-in block 406 to quickly snap into the corresponding plug-in groove 402. At this time, the fixing plate 403 and the fixing groove 401 are tightly fitted, completing the splicing and fixing of the left and right protective nets 103.
[0046] Reference Figure 8 As shown, the plug block 406 is also provided with a limiting member for fixing the plug block 406 in the plug groove 402.
[0047] In the above scheme, the limiting component further strengthens the connection between the plug block 406 and the plug slot 402. Under harsh environments such as long-term water flow impact and frequent slope vibration, the limiting component can effectively prevent the plug block 406 from accidentally popping out due to external force, making the connection between the left and right protective nets 103 more stable and reliable, and greatly improving the stability of the entire protective net 103 system.
[0048] Reference Figure 8 As shown, the limiting component includes a third spring 408 and a stop block 409; a third mounting groove 407 is provided on the plug block 406, a third spring 408 is fixedly provided in the third mounting groove 407, and a stop block 409 that slides and engages with the inner wall of the third mounting groove 407 is fixedly provided at the top end of the third spring 408.
[0049] During installation, the fixing plate 403 is pushed into the fixing groove 401. As insertion proceeds, the inner wall of the fixing groove 401 begins to contact the stop block 409. Since the stop block 409 slides into the inner wall of the third mounting groove 407 and the third spring 408 is installed in the third mounting groove 407, the squeezing force of the inner wall of the fixing groove 401 causes the stop block 409 to overcome the elastic force of the third spring 408 and slide into the third mounting groove 407. The third spring 408 is compressed. As the fixing plate 403 continues to be inserted until the insertion block 406 is engaged in the insertion groove 402 on the side of the fixing groove 401, the stop block 409 also just passes the inner wall of the fixing groove 401. At this time, the compressed third spring 408 quickly rebounds, pushing the stop block 409 out. The stop block 409 is stuck between the inner wall of the fixing groove 401 and the plug block 406, preventing the plug block 406 from coming out of the plug groove 402, thus completing the limiting and fixing of the plug block 406, thereby ensuring that the left and right protective nets 103 are firmly connected.
[0050] Reference Figure 8 As shown, the side of the stop block 409 that contacts the side of the fixing groove 401 is a vertical surface parallel to the side of the fixing groove 401, and the cross-section of the side that is far away from each other is wedge-shaped.
[0051] In the above scheme, since the side of the stop block 409 that contacts the side of the fixing groove 401 is a vertical surface, when the stop block 409 pops out, the vertical surface fits tightly with the side of the fixing groove 401, providing a large contact area and friction, effectively preventing the plug block 406 from coming out of the plug groove 402, and stabilizing the connection of the protective net 103. The wedge-shaped cross-section design of the stop block 409 plays a good guiding role in the initial stage of the insertion of the fixing plate 403, significantly reducing the friction and resistance between the stop block 409 and the side of the fixing groove 401.
[0052] Reference Figures 1-3 As shown, the slope surface 101 is provided with an irrigation mechanism 200 for irrigating the plants planted in the baffle 104.
[0053] In the above scheme, the presence of the irrigation mechanism 200 ensures that the plants planted within the retaining wall 104 can obtain sufficient water in a timely manner. Even in the case of insufficient natural rainfall, it can also ensure normal plant growth, improve plant survival rate, thereby stabilizing the soil of the slope 100 and enhancing the protective effect of ecological slope protection.
[0054] Reference Figures 1-3 As shown, the irrigation mechanism 200 includes: a water pump 201, an inlet pipe 202, and an outlet pipe 205; wherein,
[0055] A water pump 201 is fixedly installed on the slope 100. The input end of the water pump 201 is connected to the river through an inlet pipe 202. The output end of the water pump 201 is fixedly connected to a connecting pipe 203. A diversion pipe 204 is fixedly connected to the connecting pipe 203. Multiple sets of outlet pipes 205 are connected to the diversion pipe 204 for irrigating the plants between each pair of baffles 104. A drainage ditch 206 is opened on the slope 100 along the direction of the slope surface 101.
[0056] In the above scheme, water pump 201 is started, drawing river water from the river channel through inlet pipe 202. Water pump 201 provides power, enabling the river water to overcome gravity and pipe resistance, continuously entering inlet pipe 202. The drawn river water enters connecting pipe 203 through the output end of water pump 201, and connecting pipe 203 transports the water to branch pipe 204. Branch pipe 204, according to preset irrigation needs, distributes water to multiple sets of outlet pipes 205. Outlet pipes 205 disperse water to the plant area between every two baffles 104, irrigating the plants and providing the necessary water for plant growth. During irrigation, excess water is discharged along the slope 101 through drainage ditch 206, preventing water accumulation on the slope.
[0057] In summary, the river ecological slope protection module provided by this utility model, during use, uses the retaining wall 102 to prevent river water from eroding the slope 100, while the slope surface 101 provides a foundation for subsequent ecological planting. A protective net 103 is installed on the retaining wall 102. When splicing the upper and lower sets of protective nets 103, the splicing block 303 on the side of one set of protective nets 103 is aligned with the splicing groove 301 on the other set. The splicing block 303 is pushed into place. During this process, the limiting blocks 306 in the first mounting grooves 304 at both ends of the splicing block 303 are squeezed by the inner wall of the splicing groove 301, compressing the first spring 305 and sliding into the first mounting groove 304. When the splicing block 303 is fully inserted into the splicing groove 301, the limiting block 306 reaches the limiting groove 302 position, the first spring 305 rebounds, pushing the limiting block 306 into the limiting groove 302, completing the upper and lower splicing. Because the top of the limiting block 306 is arc-shaped, the insertion process is smoother and jamming is reduced. When splicing the left and right protective nets 103, align the fixing plate 403 on one side of the protective net 103 with the fixing groove 401 on the other side of the protective net 103. Push the fixing plate 403 into place. The insertion block 406 in the second mounting groove 404 inside the fixing plate 403 is squeezed by the inner wall of the fixing groove 401, compressing the second spring 405 and sliding into the second mounting groove 404. When the fixing plate 403 is inserted into the appropriate position, the insertion block 406 is aligned with the insertion groove 402 on the side of the fixing groove 401. The second spring 405 rebounds, pushing the insertion block 406 into the insertion groove 402. After the insertion block 406 is inserted, the limiting member on it begins to work. The stop block 409 in the limiting member, under the action of the third spring 408, is stuck between the inner wall of the fixing groove 401 and the insertion block 406, preventing the insertion block 406 from coming out. The wedge-shaped side of the stop block 409 serves as a guide in the initial stage of insertion, and the vertical surface provides greater friction when it is in the limiting position, which enhances the stability of the connection. The baffles 104 are fixedly installed at intervals on the slope surface 101 to form planting areas, and then trees are planted between every two sets of baffles 104.
[0058] Water pump 201 starts, drawing river water from the river channel through inlet pipe 202. Pump 201 provides power, enabling the river water to overcome gravity and pipe resistance, continuously flowing into inlet pipe 202. The drawn water enters connecting pipe 203 through the output end of pump 201, and connecting pipe 203 delivers the water to branch pipe 204. Branch pipe 204, according to preset irrigation needs, distributes water to multiple sets of outlet pipes 205. Outlet pipes 205 disperse water into the plant area between every two baffles 104, irrigating the plants and providing the necessary moisture for plant growth. During irrigation, excess water is discharged along the slope 101 via drainage ditch 206, preventing water accumulation on the slope.
[0059] The preferred embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the specific details of the above embodiments. Within the scope of the technical concept of the present invention, various simple modifications can be made to the technical solution of the present invention, and these simple modifications all fall within the protection scope of the present invention.
[0060] It should also be noted that the various specific technical features described in the above specific embodiments can be combined in any suitable way without contradiction. In order to avoid unnecessary repetition, this utility model will not describe the various possible combinations separately.
[0061] Furthermore, various different embodiments of this utility model can be combined in any way, as long as they do not violate the spirit of this utility model, they should also be regarded as the content disclosed by this utility model.
Claims
1. A river ecological slope protection module, characterized in that, The ecological slope protection module includes: a slope (100), which consists of a retaining wall (102) near the river and a sloping surface (101) away from the river. Multiple sets of detachable and interlocking protective netting (103) are installed on the retaining wall (102). Baffles (104) are fixedly installed at intervals on the sloping surface (101), with trees planted between every two sets of baffles (104). Each pair of protective nets (103) are spliced together by a connecting mechanism (300). The left and right sides of the protective net (103) are respectively provided with a sliding groove (106) and a sliding rod (107) that works with the sliding groove (106). The protective net (103) is also provided with a disassembly and assembly mechanism (400) for disassembling and detaching the left and right sides of each pair of protective nets (103).
2. The river ecological slope protection module according to claim 1, characterized in that, The connecting mechanism (300) includes: a splicing block (303), a first spring (305), and a limiting block (306); wherein, The protective net (103) is fixedly provided with splicing blocks (303) on its side. The two ends of the splicing blocks (303) are respectively provided with first mounting grooves (304). Each set of first mounting grooves (304) is fixedly installed with a first spring (305). One end of the first spring (305) is fixedly connected with a limiting block (306) that slides with the inner sidewall of the first mounting groove (304). The protective net (103) is provided with a splicing groove (301) that works with the splicing blocks (303) on its side away from the splicing blocks (303). The two inner sidewalls of the splicing groove (301) are provided with limiting grooves (302) that work with the limiting blocks (306).
3. A river ecological slope protection module according to claim 2, characterized in that, The top of the limiting block (306) is arc-shaped.
4. A river ecological slope protection module according to claim 1, characterized in that, The disassembly and assembly mechanism (400) includes: a fixing groove (401), a fixing plate (403), and a plug-in block (406); wherein, The protective net (103) is fixedly provided with a fixing groove (401), and multiple sets of insertion grooves (402) are opened at intervals on the side of the fixing groove (401). The protective net (103) is fixedly provided with a fixing plate (403) that cooperates with the fixing groove (401) on the side away from it. Multiple sets of second mounting grooves (404) are opened in the fixing plate (403). A second spring (405) is fixedly provided in the second mounting groove (404). One end of the second spring (405) is fixedly connected to an insertion block (406) that slides with the inner wall of the second mounting groove (404) and corresponds to the insertion groove (402) one by one.
5. A river ecological slope protection module according to claim 4, characterized in that, The plug block (406) is also provided with a limiting member for fixing the plug block (406) in the plug groove (402).
6. A river ecological slope protection module according to claim 5, characterized in that, The limiting component includes a third spring (408) and a stop block (409); a third mounting groove (407) is provided on the plug block (406), a third spring (408) is fixedly provided in the third mounting groove (407), and a stop block (409) is fixedly provided at the top of the third spring (408) to slide in cooperation with the inner wall of the third mounting groove (407).
7. A river ecological slope protection module according to claim 6, characterized in that, The side of the stop (409) that contacts the side of the fixing groove (401) is a vertical surface parallel to the side of the fixing groove (401), and the cross section of the side that is far away from each other is wedge-shaped.
8. A river ecological slope protection module according to claim 1, characterized in that, The slope (101) is provided with an irrigation mechanism (200) for irrigating plants planted in the baffle (104).
9. A river ecological slope protection module according to claim 8, characterized in that, The irrigation mechanism (200) includes: a water pump (201), an inlet pipe (202), and an outlet pipe (205); wherein, A water pump (201) is fixedly installed on the slope (100). The input end of the water pump (201) is connected to the river through the inlet pipe (202). The output end of the water pump (201) is fixedly connected to the connecting pipe (203). A diversion pipe (204) is fixedly connected to the connecting pipe (203). Multiple sets of outlet pipes (205) for irrigating the plants between each pair of baffles (104) are connected to the diversion pipe (204). A drainage ditch (206) is opened on the slope (100) along the direction of the slope surface (101).