A frame anchoring mechanism for ecological slope paving

By setting up fixed components composed of positioning parts, driving parts, clamping parts and drilling parts, the problem of unstable frames on the slope is solved, the stable fixation of frames is achieved, and the stability and aesthetics of the slope are improved.

CN116856438BActive Publication Date: 2025-09-02RES INST OF HIGHWAY MINIST OF TRANSPORT
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Patent Information

Application Number
CN202310989236.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-08-08
Publication Date
2025-09-02
Estimated Expiration
2043-08-08

AI Technical Summary

Technical Problem

The frames laid on existing ecological slopes need to be fixed when used to prevent them from being displaced or tilted, otherwise they may be washed or blown away by water flow or wind, affecting the stability and aesthetics of the slope.

Method used

Fixing components including positioning parts, drive parts, clamping parts, drilling parts and fixing parts are adopted. Through positioning, driving, clamping and drilling operations, the frame is fixed in the slope soil to ensure its stability.

Benefits of technology

Effectively prevent the frame from shifting or tilting, ensure the stability and aesthetics of the slope project, keep the frames neatly arranged, and enhance the overall effect of the slope.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of slope protection technology, and discloses a lattice anchoring mechanism for ecological slope paving, comprising a main body assembly, including a lattice and a lattice bottom, wherein the lattice bottom is disposed within the lattice; and a fixing assembly, disposed on one side of the lattice, comprising a positioning member, a driving member, a clamping member, a ground-boring member, and a fixing member, wherein the positioning member is disposed on one side of the lattice, the driving member is located within the positioning member, the clamping member is disposed within the positioning member, the ground-boring member is located within the positioning member, and the fixing member is disposed within the ground-boring member. The present invention has the following beneficial effects: by providing the fixing assembly, the stability of the lattice on the slope is ensured, preventing it from shifting or tilting, thereby ensuring the stability and safety of the slope project. Fixing the lattice allows the lattice to be neatly arranged, maintaining the aesthetics and overall effect of the slope.
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Description

Technical Field

[0001] The invention relates to the technical field of slope protection, in particular to a frame anchoring mechanism for ecological slope paving. Background Art

[0002] While highway construction brings us economic benefits, it also brings environmental problems. A large amount of filling and excavation has changed the original landform and vegetation, destroyed the surrounding ecological environment, and formed a large number of exposed slopes. Therefore, effective slope protection should also be carried out in highway construction. Traditional slope protection tends to be practical and emphasizes the stability of the slope structure. Common methods include slurry-cut stone and cast-in-place concrete, but their ecological landscape is poor, and they are impermeable and airtight, isolating the slope soil from the external environment and breaking the ecological balance. Most of the existing slope green plants are planted in ecological grids. Ecological grids have certain water permeability, which can allow rainwater to penetrate quickly, reduce the impact of water pressure on the slope, and prevent slope landslides. However, the grid needs to be fixed when in use to ensure its stability on the slope and prevent it from shifting or tilting. The water flow or wind on the slope may have an impact on the frame. If the frame is not fixed properly, it may be washed away or blown away. Summary of the Invention

[0003] The purpose of this section is to summarize some aspects of the embodiments of the present invention and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this section and the abstract and title of this application to avoid obscuring the purpose of this section, the abstract and the title of the invention, and such simplifications or omissions should not be used to limit the scope of the present invention.

[0004] In view of the above problems and / or the problems existing in the existing grid anchoring mechanism for ecological slope paving, the present invention is proposed.

[0005] Therefore, the problem to be solved by the present invention is that the grid needs to be fixed when in use to ensure its stability on the slope and prevent it from shifting or tilting. Water flow or wind on the slope may produce impact force on the grid. If the grid is not fixed properly, it may be washed away or blown away.

[0006] To solve the above technical problems, the present invention provides the following technical solutions: a grid anchoring mechanism for ecological slope paving, comprising a main body assembly including a grid and a grid bottom, wherein the grid bottom is arranged in the grid; and

[0007] A fixing assembly is provided on one side of the sash and includes a positioning member, a driving member, a clamping member, a ground-boring member and a fixing member. The positioning member is provided on one side of the sash, the driving member is located in the positioning member, the clamping member is provided in the positioning member, the ground-boring member is located in the positioning member, and the fixing member is provided in the ground-boring member.

[0008] As a preferred solution of the frame anchoring mechanism for ecological slope paving of the present invention, the positioning member includes a positioning sleeve and an insert block, the positioning sleeve is arranged on one side of the frame, and the insert block is located at the bottom of the positioning sleeve.

[0009] As a preferred solution of the frame anchoring mechanism for ecological slope paving of the present invention, the positioning member further includes a positioning plate and a positioning pin, the positioning plate is arranged on the top of the positioning sleeve, and the positioning pin is located at the bottom of the positioning plate.

[0010] As a preferred solution of the frame anchoring mechanism for ecological slope paving described in the present invention, the driving member includes a driving knob and a driving rod, the driving knob is arranged on one side of the positioning plate, and the driving rod is located inside the driving knob.

[0011] As a preferred solution of the frame anchoring mechanism for ecological slope paving described in the present invention, the driving member further includes a turntable and a driving thread block, the turntable is arranged on the surface of the driving rod, and the driving thread block is located on the surface of the driving rod.

[0012] As a preferred solution of the frame anchoring mechanism for ecological slope paving of the present invention, the clamping member includes a slider and an extrusion block, the slider is arranged in the positioning sleeve, and the extrusion block is located on one side of the slider.

[0013] As a preferred solution of the frame anchoring mechanism for ecological slope paving of the present invention, the clamping member further includes a clamping block and a first spring, the clamping block is arranged on one side of the slider, and the first spring is located on one side of the clamping block.

[0014] As a preferred solution of the frame anchoring mechanism for ecological slope paving described in the present invention, the ground drilling member includes a rotating thread block and a drill bit, the rotating thread block is arranged on the surface of the driving rod, and the drill bit is located on one side of the rotating thread block.

[0015] As a preferred solution of the frame anchoring mechanism for ecological slope paving described in the present invention, wherein: the fixing part includes a push rod, a push block, an extrusion rod, a support rod, an expansion rod and a positioning platform, the push rod is arranged in the rotating threaded block, the push block is located at the end of the push rod, the extrusion rod is arranged on one side of the push block, the support rod is located at the end of the extrusion rod, the expansion rod is arranged at the end of the support rod, and the positioning platform is located on the inner wall of the drill bit.

[0016] As a preferred solution of the frame anchoring mechanism for ecological slope paving of the present invention, the fixing member further includes a connecting block and a second spring, the connecting block is arranged on one side of the pushing block, and the second spring is located on the top of the connecting block.

[0017] The beneficial effects of the present invention are as follows: by setting the fixing components, the stability of the sash on the slope can be ensured to prevent it from shifting or tilting, thereby ensuring the stability and safety of the slope project; the fixing sash can make the sashes arranged neatly to maintain the beauty and overall effect of the slope. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. Those skilled in the art can also derive other drawings based on these drawings without inventive effort. Among them:

[0019] Figure 1 Structural diagram of the frame anchoring mechanism for ecological slope paving.

[0020] Figure 2 This is a cross-sectional structural diagram of the positioning sleeve of the frame anchoring mechanism used for ecological slope paving.

[0021] Figure 3 Cross-sectional structural diagram of the slider of the frame anchoring mechanism for ecological slope paving.

[0022] Figure 4 Diagram of the connection structure of sliders and extruded blocks for the lattice anchoring mechanism for ecological slope paving.

[0023] Figure 5 Cross-sectional structural diagram of the support rods of the frame anchoring mechanism for ecological slope paving.

[0024] Figure 6 A partial cross-sectional structural diagram of the push rod of the frame anchoring mechanism for ecological slope paving.

[0025] Figure 7 This is a cross-sectional structural diagram of the push block of the frame anchoring mechanism for ecological slope paving.

[0026] Figure 8 Diagram of the connection structure of push rods, push blocks and extrusion rods for the frame anchoring mechanism used for ecological slope paving. Implementation Method

[0027] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific embodiments of the present invention are described in detail below with reference to the accompanying drawings.

[0028] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art may make similar generalizations without violating the connotation of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0029] Secondly, the term "one embodiment" or "embodiment" herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in various places throughout this specification does not necessarily refer to the same embodiment, nor does it refer to a separate or selective embodiment that is mutually exclusive of other embodiments. Example

[0030] Reference Figures 1 to 8 , which is the first embodiment of the present invention, provides a frame anchoring mechanism for ecological slope paving. The frame anchoring mechanism for ecological slope paving includes a main component 100 and a fixing component 200. The main component 100 is used to plant vegetation. The fixing component 200 can ensure the stability of the frame 101 on the slope and prevent it from shifting or tilting, thereby ensuring the stability and safety of the slope project. The fixing frame 101 can make the frame 101 arranged neatly, maintaining the beauty and overall effect of the slope.

[0031] Specifically, the main body assembly 100 includes a grid 101 and a grid bottom 102 , and the grid bottom 102 is disposed in the grid 101 .

[0032] The frame 101 adopts a modular design, which is simple and convenient to install. It can be combined and adjusted as needed. The frame 101 also has high strength and rigidity, can withstand large loads, and ensure the stability of the slope. The grid bottom 102 is fixed to the inner wall of the frame 101 to support the soil, thereby providing a place for vegetation to grow.

[0033] The fixing assembly 200 is arranged on one side of the frame 101, and includes a positioning member 201, a driving member 202, a clamping member 203, a ground-boring member 204 and a fixing member 205. The positioning member 201 is arranged on one side of the frame 101, the driving member 202 is located in the positioning member 201, the clamping member 203 is arranged in the positioning member 201, the ground-boring member 204 is located in the positioning member 201, and the fixing member 205 is arranged in the ground-boring member 204.

[0034] The positioning member 201 is used to position the fixing assembly 200 so that the fixing assembly 200 can be quickly and accurately installed on one side of the sash 101. The driving member 202 is used to drive the clamping member 203 to move so that the clamping member 203 is clamped to the sash 101, thereby connecting the fixing assembly 200 to the sash 101. The ground-boring member 204 is used to drill the end of the fixing assembly 200 into the soil, thereby fixing the fixing assembly 200 to the ground. The fixing member 205 will expand in the soil, thereby making the connection between the ground-boring member 204 and the soil tighter, improving the stability of the connection between the ground-boring member 204 and the soil, thereby improving the stability of the entire device.

[0035] Specifically, the positioning member 201 includes a positioning sleeve 201 a and an insert block 201 b . The positioning sleeve 201 a is disposed on one side of the frame 101 , and the insert block 201 b is located at the bottom of the positioning sleeve 201 a .

[0036] The positioning sleeve 201a slides on one side of the frame 101. There are four insert blocks 201b, all of which are fixed to the bottom of the positioning sleeve 201a. Each insert block 201b can be snapped into a frame 101 to limit the position of the positioning sleeve 201a and prevent the positioning sleeve 201a from rotating.

[0037] Specifically, the positioning member 201 further includes a positioning plate 201c and a positioning pin 201d. The positioning plate 201c is arranged on the top of the positioning sleeve 201a, and the positioning pin 201d is located at the bottom of the positioning plate 201c.

[0038] The positioning plate 201c is fixed to the top of the positioning sleeve 201a. When the positioning plate 201c is snapped into the frame 101, the top of the positioning plate 201c is flush with the top of the frame 101. There are four positioning pins 201d, all fixed to the bottom of the positioning plate 201c, and each positioning pin 201d is inserted into a frame 101 to fix the angle between the positioning plate 201c and the positioning sleeve 201a. Example

[0039] Reference Figures 1 to 4 and Figure 6 , which is the second embodiment of the present invention, and is based on the previous embodiment.

[0040] Specifically, the driving member 202 includes a driving knob 202a and a driving rod 202b. The driving knob 202a is disposed on one side of the positioning plate 201c, and the driving rod 202b is located inside the driving knob 202a.

[0041] The driving knob 202a slides on one side of the positioning plate 201c, and the driving rod 202b slides in the driving knob 202a. The driving rod 202b can be driven to rotate by rotating the driving knob 202a. The cross section of the driving rod 202b is non-circular.

[0042] Specifically, the driving member 202 further includes a rotary disk 202c and a driving screw block 202d. The rotary disk 202c is disposed on the surface of the driving rod 202b, and the driving screw block 202d is located on the surface of the driving rod 202b.

[0043] The turntable 202c is fixed to the surface of the driving rod 202b, and the turntable 202c is rotatably connected to the positioning disk 201c. The driving thread block 202d slides on the surface of the driving rod 202b, and the driving thread block 202d and the inner wall of the positioning sleeve 201a are rotatably connected through a thread. When the driving rod 202b rotates, the driving thread block 202d can be driven to rotate on the inner wall of the positioning sleeve 201a, thereby making the driving thread block 202d move up and down in the positioning sleeve 201a, so that the driving thread block 202d drives the clamping piece 203 to clamp and position the positioning sleeve 201a.

[0044] Specifically, the clamping member 203 includes a slider 203a and an extrusion block 203b. The slider 203a is disposed in the positioning sleeve 201a, and the extrusion block 203b is located on one side of the slider 203a.

[0045] The slider 203a slides in the positioning sleeve 201a, and four sliders 203a are provided in each positioning sleeve 201a, distributed in a circle. The extrusion block 203b is fixed on one side of the slider 203a. When the driving thread block 202d extrudes the extrusion block 203b, the extrusion block 203b can push the slider 203a.

[0046] Specifically, the clamping member 203 further includes a clamping block 203c and a first spring 203d. The clamping block 203c is arranged on one side of the slider 203a, and the first spring 203d is located on one side of the clamping block 203c.

[0047] The clamping block 203c is fixed to one side of the slider 203a, and the two ends of the first spring 203d are respectively fixed to one side of the clamping block 203c and the inner wall of the positioning sleeve 201a. When the driving screw block 202d squeezes the extrusion block 203b, the slider 203a pushes the clamping block 203c, so that the clamping block 203c is inserted into the sash 101, thereby fixing the connection between the positioning sleeve 201a and the sash 101. There are four clamping blocks 203c in each positioning sleeve 201a, which are distributed in a circle in the positioning sleeve 201a. The first spring 203d is in a stretched state. When the driving screw block 202d rises, the restoring elastic force of the first spring 203d drives the clamping block 203c to slide out of the sash 101, thereby releasing the fixed connection between the positioning sleeve 201a and the sash 101. Example

[0048] Reference Figure 2 、 Figure 3 and Figures 5 to 8 , which is the third embodiment of the present invention, is based on the first two embodiments.

[0049] Specifically, the ground-boring member 204 includes a rotating threaded block 204a and a drill bit 204b. The rotating threaded block 204a is disposed on the surface of the driving rod 202b, and the drill bit 204b is located on one side of the rotating threaded block 204a.

[0050] The rotating threaded block 204a slides on the surface of the driving rod 202b, and the rotating threaded block 204a and the inner wall of the positioning sleeve 201a are connected by a threaded rotation. When the driving rod 202b rotates, the rotating threaded block 204a can be driven to rotate in the positioning sleeve 201a, thereby driving the rotating threaded block 204a to move up and down in the positioning sleeve 201a. The drill bit 204b is fixed to one side of the rotating threaded block 204a, and a threaded groove is provided on the drill bit 204b, which facilitates the drill bit 204b to drill into the soil.

[0051] Specifically, the fixing part 205 includes a push rod 205a, a push block 205b, an extrusion rod 205c, a support rod 205d, an expansion rod 205e and a positioning platform 205f. The push rod 205a is arranged in the rotating threaded block 204a, the push block 205b is located at the end of the push rod 205a, the extrusion rod 205c is arranged on one side of the push block 205b, the support rod 205d is located at the end of the extrusion rod 205c, the expansion rod 205e is arranged at the end of the support rod 205d, and the positioning platform 205f is located on the inner wall of the drill bit 204b.

[0052] The push rod 205a slides in the rotating threaded block 204a, the push block 205b is fixed to the end of the push rod 205a, and the push block 205b slides in the drill bit 204b, the extrusion rod 205c is fixed to one side of the push block 205b, there are two support rods 205d, and their ends are rotatably connected to the end of the extrusion rod 205c through a rotating shaft, there are two expansion rods 205e, one end of each is rotatably connected to the drill bit 204b through a rotating shaft, and the other end of the support rod 205d is rotatably connected to one side of the expansion rod 205e through a rotating shaft, and the positioning platform 205f is fixed to the inner wall of the drill bit 204b, which is used to support the extrusion rod 205c.

[0053] Specifically, the fixing member 205 further includes a connecting block 205g and a second spring 205h. The connecting block 205g is arranged on one side of the pushing block 205b, and the second spring 205h is located on the top of the connecting block 205g.

[0054] There are two connecting blocks 205g, which are fixed on both sides of the push block 205b respectively. There are two second springs 205h, whose two ends are fixed on the top of the connecting block 205g and the inner wall of the rotating thread block 204a respectively.

[0055] When in use, first insert the positioning sleeve 201a between the four neatly arranged sashes 101, so that the insert block 201b and the positioning pin 201d are inserted into the sash 101, thereby connecting the four sashes 101 together, and then rotate the driving knob 202a to drive the driving rod 202b to rotate. When the driving rod 202b rotates, it can drive the driving screw block 202d to rotate on the inner wall of the positioning sleeve 201a, so that the driving screw block 202d moves downward in the positioning sleeve 201a. When the driving screw block When the extrusion block 203b is squeezed by the driving rod 202d, the extrusion block 203b can push the slider 203a, so that the slider 203a pushes the clamping block 203c, so that the clamping block 203c is inserted into the frame 101, thereby fixing the connection between the positioning sleeve 201a and the frame 101, thereby connecting the four frames 101 into a whole. As the driving rod 202b rotates, the rotating thread block 204a can be driven to rotate in the positioning sleeve 201a, thereby driving the rotating thread block 204a to rotate. 4a When the positioning sleeve 201a moves downward, the rotating threaded block 204a can drive the drill bit 204b to rotate downward, so that the drill bit 204b drills into the soil. When the rotating threaded block 204a moves downward and separates from the driving rod 202b, the rotating threaded block 204a is stationary, and the driving rod 202b will continue to drive the driving threaded block 202d to move downward, so that the driving threaded block 202d squeezes the push rod 205a, and the push rod 205a squeezes the squeezing rod 205c through the pushing block 205b. The two squeezing rods 205c squeeze the support rod 205d, causing the support rod 205d to expand into the soil, thereby fixing the drill bit 204b in the soil, ensuring the stability of the sash 101 on the slope and preventing it from shifting or tilting. This can ensure the stability and safety of the slope project. When fixing the sash 101, the driving knob 202a is rotated. At this time, there is a certain distance between the driving knob 202a and the sash 101, which facilitates the subsequent disassembly of the fixing assembly 200.

[0056] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention, which should all be included in the scope of the claims of the present invention.

Claims

1. A frame anchoring mechanism for ecological slope paving, characterized by: include, A main body assembly (100) includes a frame (101) and a grid bottom (102), wherein the grid bottom (102) is disposed in the frame (101); and A fixing assembly (200) is arranged on one side of the sash (101), comprising a positioning member (201), a driving member (202), a clamping member (203), a ground-boring member (204), and a fixing member (205); the positioning member (201) is arranged on one side of the sash (101); the driving member (202) is located in the positioning member (201); the clamping member (203) is arranged in the positioning member (201); the ground-boring member (204) is located in the positioning member (201); and the fixing member (205) is arranged in the ground-boring member (204); The positioning member (201) comprises a positioning sleeve (201a) and an insert block (201b), wherein the positioning sleeve (201a) is arranged on one side of the frame (101), and the insert block (201b) is located at the bottom of the positioning sleeve (201a); The positioning member (201) further comprises a positioning disc (201c) and a positioning pin (201d), wherein the positioning disc (201c) is arranged on the top of the positioning sleeve (201a), and the positioning pin (201d) is located at the bottom of the positioning disc (201c); The driving member (202) comprises a driving knob (202a) and a driving rod (202b), wherein the driving knob (202a) is arranged on one side of the positioning plate (201c), and the driving rod (202b) is located inside the driving knob (202a); The driving member (202) further comprises a rotating disk (202c) and a driving thread block (202d), wherein the rotating disk (202c) is arranged on the surface of the driving rod (202b), and the driving thread block (202d) is located on the surface of the driving rod (202b); The clamping member (203) comprises a slider (203a) and an extrusion block (203b), wherein the slider (203a) is arranged in the positioning sleeve (201a), and the extrusion block (203b) is located on one side of the slider (203a); The clamping member (203) further comprises a clamping block (203c) and a first spring (203d), wherein the clamping block (203c) is arranged on the other side of the slider (203a), and the first spring (203d) is located on one side of the clamping block (203c); The ground-boring member (204) comprises a rotating threaded block (204a) and a drill bit (204b), wherein the rotating threaded block (204a) is arranged on the surface of the driving rod (202b), and the drill bit (204b) is located on one side of the rotating threaded block (204a); The fixing member (205) includes a push rod (205a), a push block (205b), an extrusion rod (205c), a support rod (205d), an expansion rod (205e) and a positioning platform (205f); the push rod (205a) is arranged in the rotating threaded block (204a); the push block (205b) is located at the end of the push rod (205a); the extrusion rod (205c) is arranged on one side of the push block (205b); the support rod (205d) is located at the end of the extrusion rod (205c); the expansion rod (205e) is arranged at the end of the support rod (205d); and the positioning platform (205f) is located on the inner wall of the drill bit (204b); The fixing member (205) further comprises a connecting block (205g) and a second spring (205h), wherein the connecting block (205g) is arranged on one side of the pushing block (205b), and the second spring (205h) is located on the top of the connecting block (205g); The rotating thread block (204a) drives the drill bit (204b) to rotate downward. When the rotating thread block (204a) moves downward and separates from the driving rod (202b), the rotating thread block (204a) remains stationary, and the driving rod (202b) continues to drive the driving thread block (202d) to move downward, so that the driving thread block (202d) squeezes the push rod (205a).

Citation Information

Patent Citations

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