Corrosion-resistant high-strength alloy wire gabion net
By using a triangular hollow structure and movable rod design, the problems of low support strength and large volume of gabion mesh are solved, resulting in high-strength, corrosion-resistant gabion mesh that is easy to transport and quick to construct.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ANPING COUNTY CHENGJUN METAL PRODUCTS CO LTD
- Filing Date
- 2025-07-14
- Publication Date
- 2026-05-26
AI Technical Summary
Existing corrosion-resistant gabion mesh has low support strength, is prone to deformation, and has a large volume, which affects transportation efficiency and structural stability.
Featuring a triangular hollow stainless steel design, combined with movable rods and rotating connectors, it can be folded and unfolded. Quick assembly and disassembly are achieved through plug-in and threaded connections, enhancing support and corrosion resistance.
It reduces the space occupied during transportation, facilitates storage and transportation, improves construction efficiency, enhances structural stability and corrosion resistance, and increases overall strength.
Smart Images

Figure CN224281323U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of gabion mesh technology, specifically relating to a corrosion-resistant, high-strength alloy wire gabion mesh. Background Technology
[0002] Gabion mesh is made by mechanical weaving and can be made into mesh mats for slope protection, foundation pit support, rock face netting and shotcreting, slope vegetation (greening), railway and highway isolation fences. It can also be made into net cages for erosion protection of rivers, dikes and seawalls, and for the diversion of reservoirs and rivers.
[0003] Currently, there are still some shortcomings in the corrosion-resistant gabion mesh on the market. First, the mesh cage is only woven from a frame and wire mesh, which has low support strength and is at risk of deformation under long-term scouring, affecting the stability of the structure. In addition, the existing mesh cages are large in size, occupying transportation space and affecting transportation efficiency. Utility Model Content
[0004] The technical problem to be solved by this utility model is to overcome the shortcomings of the prior art and provide a corrosion-resistant, high-strength alloy wire gabion mesh.
[0005] The technical solution adopted to solve the above technical problems is: a corrosion-resistant high-strength alloy wire gabion mesh, including a base plate, two base plates are arranged symmetrically from left to right, and frame edges are symmetrically welded and fixed on the upper surface of each base plate. A folding base is provided between the two base plates. A side alloy wire mesh plate and a support plate are disassembled and assembled between the frame edges on the same side of the left and right sides. A side alloy wire mesh plate and a support plate are disassembled and assembled between the frame edges on the same side of the front and rear sides. A top alloy wire mesh plate is fixedly installed at the top of each frame edge by fixing bolts. A limit plate is welded and fixed on the lower surface of each base plate. A bottom alloy wire mesh plate and a support plate are arranged sequentially from bottom to top above the limit plate.
[0006] Furthermore, the folding base includes connecting ear plates welded and fixed to the opposite sides of the two base plates, and the two connecting ear plates are symmetrically arranged. The inner sidewalls of the connecting ear plates are rotatably connected to movable rods, and the other ends of two adjacent movable rods are rotatably connected to a rotating connector.
[0007] The above technical solution enables folding and unfolding through movable rods and rotating connectors, reducing space occupation, facilitating transportation and storage, and providing stable support when extended.
[0008] Furthermore, on the opposite surfaces of the frame edges on both the left and right sides, there are mesh plate slot 1 and support plate slot 1. The mesh plate slot 1 is plugged into and pulled into the side alloy wire mesh plate 1, and the support plate slot 1 is plugged into and pulled into the support plate 1. On the opposite surfaces of the frame edges on both the front and rear sides, there are mesh plate slot 2 and support plate slot 2. The mesh plate slot 2 is plugged into and pulled into the side alloy wire mesh plate 2, and the support plate slot 2 is plugged into and pulled into the support plate 2.
[0009] Through the above technical solution, the first side alloy wire mesh plate, the second side alloy wire mesh plate, the first support plate, and the second support plate are connected to the first wire mesh plate slot, the second wire mesh plate slot, the first support plate slot, and the second support plate slot through plug-in and plug-out engagement, thereby completing the assembly and connection with the frame edge, realizing quick assembly and disassembly, improving construction efficiency, and facilitating the repair and replacement of local components, thus improving maintenance efficiency.
[0010] Furthermore, each of the top edges of the frame is provided with a positioning groove, and the bottom of the inner wall of the positioning groove is provided with a screw hole. The lower surface of the top alloy wire mesh plate is provided with a positioning sheath corresponding to the position of the positioning groove, and the side wall of the fixing bolt passes through the positioning sheath and is threadedly connected to the inner wall of the screw hole.
[0011] The above technical solution facilitates quick and accurate positioning of the top alloy wire mesh plate by cooperating with the positioning groove and positioning sheath, improving installation efficiency. Furthermore, the threaded connection of the fixing bolt ensures that the top alloy wire mesh plate is stable and can be repeatedly disassembled and reassembled, preventing loosening.
[0012] Furthermore, the internal structure of the support plate 1, support plate 2, and support plate 3 is a triangular hollow structure, and the support plate 1, support plate 2, support plate 3, base plate, and frame edge are all made of stainless steel.
[0013] The above technical solution, using a triangular hollow structure, reduces its weight while improving its resistance to pressure and deformation, thus increasing the overall structural strength. The stainless steel material significantly enhances the corrosion resistance of the gabion mesh, making it suitable for harsh environments such as humidity and acid / alkali.
[0014] Furthermore, the outer edge shape of the support plate and the bottom alloy wire mesh plate are adapted to the inner edge shape of the folded base after it is extended.
[0015] The above technical solution ensures that the outer edge shape of the support plate and bottom alloy wire mesh plate fits tightly with the inner edge of the folded base after it is extended, thus preventing displacement of the support plate and bottom alloy wire mesh plate and ensuring the stability of the structure.
[0016] The beneficial effects of this utility model are as follows: (1) By setting the folding base, the folding and unfolding can be realized by the movable rod and the rotating connector, reducing the space occupied and facilitating transportation and storage. At the same time, it provides stable support after extension to ensure structural strength; (2) By setting the mesh plate slot 1, support plate slot 1, mesh plate slot 2, support plate slot 2, side alloy wire mesh plate 1, side alloy wire mesh plate 2, top alloy wire mesh plate, bottom alloy wire mesh plate, support plate 1, support plate 2, and support plate 3, quick assembly and disassembly can be realized during assembly, improving construction efficiency. At the same time, it is convenient to repair and replace local parts, improving maintenance efficiency. In addition, support plate 1, support plate 2, and support plate 3 reduce the weight while improving the compressive and deformation resistance, improving the overall structural strength and significantly improving the corrosion resistance of the gabion mesh. Attached Figure Description
[0017] Figure 1 This is a three-dimensional view of a corrosion-resistant, high-strength alloy wire gabion mesh according to this utility model;
[0018] Figure 2 This is a structural diagram of a corrosion-resistant, high-strength alloy wire gabion mesh according to this utility model;
[0019] Figure 3 This is a three-dimensional view of a folding base for a corrosion-resistant, high-strength alloy wire gabion mesh according to this utility model.
[0020] Figure 4 This is a partial perspective view of a corrosion-resistant, high-strength alloy wire gabion mesh according to this utility model;
[0021] Figure 5 yes Figure 3 Enlarged view of point A.
[0022] Reference numerals: 1. Base plate; 2. Frame edge; 3. Folding base; 4. Side alloy wire mesh plate one; 5. Side alloy wire mesh plate two; 6. Top alloy wire mesh plate; 7. Fixing bolt; 8. Bottom alloy wire mesh plate; 9. Support plate one; 10. Support plate two; 11. Support plate three; 12. Limiting plate; 201. Mesh plate slot one; 202. Support plate slot one; 203. Mesh plate slot two; 204. Support plate slot two; 205. Positioning groove; 206. Screw hole; 301. Connecting ear plate; 302. Movable rod; 303. Rotating connector; 601. Positioning sheath. Detailed Implementation
[0023] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0024] like Figures 1-5As shown, this embodiment of a corrosion-resistant high-strength alloy wire gabion includes a base plate 1, with two base plates 1 arranged symmetrically from left to right. Frame edges 2 are symmetrically welded and fixed to the upper surface of each base plate 1. A folding base 3 is provided between the two base plates 1. Side alloy wire mesh plates 4 and 9 are detachably assembled and disassembled between the same side frame edges 2 on both the left and right sides. Side alloy wire mesh plates 5 and 10 are detachably assembled and disassembled between the same side frame edges 2 on both the front and rear sides. A top alloy wire mesh plate 6 is fixedly installed at the top of the frame edge 2 via fixing bolts 7. The lower surface of the base plate 1 is welded with... A fixed limiting plate 12 is attached. Above the limiting plate 12, from bottom to top, there is a bottom alloy wire mesh plate 8, a support plate three 11, and the internal structure of support plate one 9, support plate two 10, and support plate three 11 is a triangular hollow structure. Support plate one 9, support plate two 10, support plate three 11, bottom plate 1, and frame edge 2 are all made of stainless steel. The triangular hollow structure reduces the weight while improving the compressive and deformation resistance, and improves the overall structural strength. The stainless steel material significantly improves the corrosion resistance of the gabion mesh and adapts to harsh environments such as humidity and acid and alkali.
[0025] The outer side shapes of the support plate 311 and the bottom alloy wire mesh plate 8 are adapted to the inner side shape of the folding base 3 after it is extended, so that the outer side shapes of the support plate 311 and the bottom alloy wire mesh plate 8 are closely fitted with the inner side edge of the folding base 3 after it is extended, thus preventing the support plate 311 and the bottom alloy wire mesh plate 8 from shifting and ensuring the stability of the structure.
[0026] On the opposite sides of the left and right sides of the same frame edge 2, there are mesh plate slot 1 201 and support plate slot 1 202. Mesh plate slot 1 201 is plugged into and pulled into side alloy wire mesh plate 4, and support plate slot 1 202 is plugged into and pulled into support plate 9. On the opposite sides of the front and rear sides of the same frame edge 2, there are mesh plate slot 2 203 and support plate slot 2 204. Mesh plate slot 2 203 is plugged into and pulled into side alloy wire mesh plate 2 5, and support plate slot 2 204 is plugged into and pulled into support plate 2 10. Side alloy wire mesh plate 4, side alloy wire mesh plate 2 5, support plate 9, and support plate 2 10 are connected to frame edge 2 through plugging and pulling with mesh plate slot 1 201, mesh plate slot 2 203, support plate slot 1 202, and support plate slot 2 204, enabling quick assembly and disassembly, improving construction efficiency, and facilitating the repair and replacement of local parts, thus improving maintenance efficiency.
[0027] The top of the frame edge 2 is provided with a positioning groove 205, and the bottom of the inner wall of the positioning groove 205 is provided with a screw hole 206. The lower surface of the top alloy wire mesh plate 6 is provided with a positioning sheath 601 corresponding to the position of the positioning groove 205. The side wall of the fixing bolt 7 passes through the positioning sheath 601 and is threadedly connected to the inner wall of the screw hole 206. The positioning groove 205 and the positioning sheath 601 cooperate to facilitate quick and accurate positioning of the top alloy wire mesh plate 6, improve installation efficiency, and ensure that the top alloy wire mesh plate 6 is stable and can be repeatedly disassembled and reassembled through the threaded connection of the fixing bolt 7, thus avoiding loosening.
[0028] The folding base 3 includes connecting ear plates 301 welded and fixed to the opposite sides of the two base plates 1, and the connecting ear plates 301 on both sides are symmetrically arranged. The inner sidewalls of the connecting ear plates 301 are rotatably connected to movable rods 302, and the other ends of two adjacent movable rods 302 are rotatably connected to rotating connectors 303. Folding and unfolding are achieved through the movable rods 302 and rotating connectors 303, reducing the space occupied, facilitating transportation and storage, and providing stable support when extended.
[0029] The working principle of this embodiment is as follows: During use and transportation, the movable rod 302 and the rotating connector 303 rotate and overlap to complete the folding, reducing the space occupied, making transportation more convenient and improving transportation efficiency. During assembly, the folding base 3 is extended. First, the bottom alloy wire mesh plate 8 and the support plate 11 are placed on the limiting plate 12 in sequence. At the same time as assembly, the extended folding base 3 is supported and limited. Next, the side alloy wire mesh plate 4, the side alloy wire mesh plate 5, the support plate 9, and the support plate 10 are respectively connected to the wire mesh plate slot 201 through plug-in and pull-out engagement. The mesh plate slot 203, support plate slot 1 202, and support plate slot 2 204 are connected for quick assembly. Support plate 1 9, support plate 2 10, and support plate 3 11 reduce the weight while improving the compressive and deformation resistance, increasing the overall structural strength and significantly enhancing the corrosion resistance of the gabion mesh. Then, stones are filled into the formed gabion mesh. After filling, the positioning sheath 601 of the top alloy wire mesh plate 6 is inserted into the positioning groove 205 for precise positioning. The top alloy wire mesh plate 6 is then securely connected by the threaded fixing bolt 7, thus completing the assembly and improving the overall structural strength of the gabion mesh.
[0030] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the scope of protection of the present utility model.
Claims
1. A corrosion resistant high strength alloy wire gabion mesh comprising a base sheet (1) characterised in that: The two base plates (1) are arranged symmetrically on the left and right. The upper surface of the base plates (1) is symmetrically welded with frame edges (2). A folding base (3) is provided between the two base plates (1). The frame edges (2) on the same side on the left and right sides are disassembled and assembled with side alloy wire mesh plate one (4) and support plate one (9). The frame edges (2) on the same side on the front and rear sides are disassembled and assembled with side alloy wire mesh plate two (5) and support plate two (10). The top of the frame edge (2) is fixedly installed with top alloy wire mesh plate (6) by fixing bolt (7). The lower surface of the base plates (1) is welded with limit plates (12). The limit plates (12) are arranged from bottom to top with bottom alloy wire mesh plate (8) and support plate three (11).
2. The corrosion-resistant high-strength alloy wire gabion mesh according to claim 1, characterized in that, The folding base (3) includes connecting ear plates (301) welded and fixed to the opposite sides of the two base plates (1), and the two connecting ear plates (301) are symmetrically arranged. The inner sidewalls of the connecting ear plates (301) are rotatably connected with movable rods (302), and the other ends of two adjacent movable rods (302) are rotatably connected with rotating connectors (303).
3. The corrosion-resistant high-strength alloy wire gabion mesh according to claim 1, characterized in that, On the opposite sides of the frame edge (2) on both the left and right sides, there are mesh plate slot 1 (201) and support plate slot 1 (202). The mesh plate slot 1 (201) is plugged into the side alloy wire mesh plate 1 (4). The support plate slot 1 (202) is plugged into the support plate 1 (9). On the opposite sides of the frame edge (2) on both the front and rear sides, there are mesh plate slot 2 (203) and support plate slot 2 (204). The mesh plate slot 2 (203) is plugged into the side alloy wire mesh plate 2 (5). The support plate slot 2 (204) is plugged into the support plate 2 (10).
4. The corrosion-resistant high-strength alloy wire gabion mesh according to claim 1, characterized in that, The top of each frame edge (2) is provided with a positioning groove (205), and the bottom of the inner wall of the positioning groove (205) is provided with a screw hole (206). The lower surface of the top alloy wire mesh plate (6) is provided with a positioning sheath (601) corresponding to the position of the positioning groove (205). The side wall of the fixing bolt (7) passes through the positioning sheath (601) and is threaded to the inner wall of the screw hole (206).
5. The corrosion-resistant high-strength alloy wire gabion mesh according to claim 1, characterized in that, The internal structure of the support plate 1 (9), support plate 2 (10), and support plate 3 (11) is a triangular hollow structure. The support plate 1 (9), support plate 2 (10), support plate 3 (11), base plate (1), and frame edge (2) are all made of stainless steel.
6. The corrosion-resistant high-strength alloy wire gabion mesh according to claim 1, characterized in that, The outer edge shapes of the support plate three (11) and the bottom alloy wire mesh plate (8) are adapted to the inner edge shape of the folded base (3) after it is extended.