A gabion net structure capable of being quickly assembled
By designing the splicing blocks and positioning mechanisms of the gabion frame, the connection problem of gabion mesh when it is stacked in an alternating manner on the bank is solved, realizing a rapid splicing and stable gabion mesh structure that can adapt to different terrains and reduce construction risks and maintenance costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ANPING COUNTY CHENGJUN METAL PRODUCTS CO LTD
- Filing Date
- 2025-07-04
- Publication Date
- 2026-07-21
AI Technical Summary
The existing gabion mesh lacks a connecting mechanism when stacked in an alternating manner on the bank, resulting in low structural strength and inability to be quickly and accurately positioned, which affects construction efficiency and stability.
The design includes a gabion frame and its accessories, including splicing blocks, splicing slots, and positioning mechanisms. The corresponding design of the splicing blocks and splicing slots on the left and right side walls enables rapid horizontal splicing, and the cooperation of positioning rods and holes supports vertical cross and stepped stacking, enhancing connection stability.
It enables rapid splicing and assembly of gabion mesh, improves construction efficiency, enhances the stability and flexibility of the overall structure, adapts to different terrain requirements, and reduces the risk of structural collapse and maintenance costs.
Smart Images

Figure CN224531573U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of riverbank protection structure, specifically relating to a gabion mesh structure that can be quickly assembled. Background Technology
[0002] Gabion mesh is mechanically woven from high-corrosion-resistant, high-strength, and ductile low-carbon steel wire or PVC-coated steel wire. The box-shaped structure made from this mesh is called a gabion box. Filled with crushed stone, gabion boxes can be used for erosion protection of rivers, dikes, and seawalls.
[0003] When existing gabion nets are stacked in an alternating manner on the riverbank, the lack of connecting mechanisms between adjacent gabion nets results in low overall structural strength and a high risk of collapse in the face of high-intensity scouring. Furthermore, when stacking them vertically in an alternating manner, it is difficult to quickly and accurately position them, which affects construction 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 gabion mesh structure that can be quickly spliced and assembled.
[0005] The technical solution adopted to solve the above-mentioned technical problems is as follows: A gabion frame is included, with gabion mesh woven and fixed on all four sides and the bottom of the gabion frame. A first splicing block is vertically welded and fixed to the left and right side walls of the gabion frame. A first splicing groove matching the first splicing block is vertically opened on the left and right side walls of the gabion frame. A second splicing block is vertically welded and fixed to the front and rear side walls of the gabion frame. A second splicing groove matching the second splicing block is vertically opened on the left and right side walls of the gabion frame. A reinforcing plate is welded and fixed to the middle side wall of the gabion frame. A second positioning hole is opened at the center of the upper surface of the reinforcing plate. Positioning holes are opened on the front and rear sides of the upper surface of the gabion frame. A positioning mechanism that engages with the first and second positioning holes is provided at the bottom of the gabion frame.
[0006] Furthermore, the first splicing block and the first splicing groove on the left side correspond to the first splicing groove and the first splicing block on the right side, respectively, and the second splicing block and the second splicing groove on the front side correspond to the second splicing groove and the second splicing block on the rear side, respectively.
[0007] Through the above technical solution, the corresponding design of splicing block one and splicing groove one on the left and right side walls, and splicing block two and splicing groove two on the front and rear side walls, can realize the rapid lateral splicing of multiple gabion frames. At the same time, the staggered splicing structure eliminates the need to adjust the splicing sides during splicing, significantly improving assembly efficiency and reducing on-site construction time. Furthermore, after splicing and assembly, the adjacent gabions on the front, back, left, and right are closely connected, making the overall structure more stable and reliable, and reducing the risk of structural collapse.
[0008] Furthermore, the positioning mechanism includes a storage slot and a rotating block. The four storage slots are respectively opened at the bottom of the four corners of the gabion frame. The side walls of the rotating blocks are all fixedly connected to rotating shafts. The side walls of the rotating shafts are rotatably connected to the inner side walls of the storage slots. The lower surface of the rotating block is fixedly connected to a positioning rod.
[0009] With the above technical solution, the positioning rod is hidden in the slot when not in use to avoid collision damage during transportation. When in use, the positioning rod is flipped vertically and pulled out from the storage slot, and can be used with positioning hole one and positioning hole two for stacking and positioning. The bottom positioning rod can be inserted into the ground to enhance stability.
[0010] Furthermore, a rubber washer is fitted on the outer wall of the rotating shaft, and the length of the receiving groove is greater than the total length of the rotating block and the positioning rod.
[0011] Through the above technical solution, the rubber gasket reduces friction loss and extends the service life of the rotating block. The length of the storage groove is greater than the total length of the rotating block and the positioning rod, leaving space for the finger to pry open and flip the positioning rod.
[0012] Furthermore, both positioning holes one and positioning holes two are provided in fours, and are symmetrically arranged along the axis of symmetry. Both positioning holes one and positioning holes two correspond to the positions of the positioning rods.
[0013] The above technical solution supports two stacking methods for the upper and lower frames: vertical cross and stepped, which can adapt to different terrains such as steep slopes, gentle slopes and engineering needs, and improve structural flexibility.
[0014] Furthermore, when adjacent gabion frames are stacked vertically in a cross pattern, the positioning rod is aligned with positioning hole one; when adjacent gabion frames are stacked in a stepped cross pattern, the positioning rod is aligned with positioning hole two.
[0015] With the above technical solution, when vertically stacking gabions, the upper left and right adjacent gabions are spliced together, and the positioning rod at the splice is inserted into the positioning hole one of the lower gabion. When performing stepped cross-stacking, the positioning rod of the upper left and right spliced gabions is inserted into the positioning hole two of the lower front and back spliced gabions. This achieves fast and accurate positioning and stacking, enhances the stability of interlayer connections, and further improves the stability of the structure.
[0016] Furthermore, the gabion frame, gabion mesh, reinforcing plate, splicing block one, and splicing block two are all made of Galfan material.
[0017] Through the above technical solutions, Galfan, with its excellent corrosion resistance and high strength, can be used for a long time in harsh conditions such as humid, acidic and alkaline soils, and marine environments, thereby reducing maintenance costs.
[0018] The beneficial effects of this utility model are as follows: (1) By setting up a gabion frame, splicing block one, splicing groove one, and splicing block two, and by the corresponding design of splicing block one and splicing groove one on the left and right side walls, and splicing block two and splicing groove two on the front and rear side walls, multiple gabion frames can be quickly spliced horizontally, significantly improving assembly efficiency and reducing on-site construction time. Moreover, after splicing and assembly, adjacent gabions on the front, back, left and right are closely connected, making the overall structure more stable and reliable. (2) By setting up a positioning mechanism, positioning hole one, and positioning hole two, it supports two stacking methods for the upper and lower frames: vertical cross and stepped, adapting to different terrains such as steep slopes, gentle slopes and engineering needs, improving structural flexibility, and achieving fast and accurate positioning and stacking, enhancing the stability of interlayer connections, and further improving the stability of the structure. Attached Figure Description
[0019] Figure 1 This is a three-dimensional view of a gabion mesh structure that can be quickly assembled according to this utility model; Figure 2 This is a structural diagram of a gabion frame structure that can be quickly assembled and spliced according to this utility model. Figure 3 This is a vertical cross assembly diagram of a gabion mesh structure that can be quickly spliced and assembled according to this utility model; Figure 4 This is a stepped cross assembly diagram of a gabion mesh structure that can be quickly spliced and assembled according to this utility model; Figure 5 yes Figure 2 Enlarged view of point A.
[0020] Reference numerals in the attached drawings: 1. Gabion frame; 2. Gabion mesh; 3. Reinforcing plate; 4. Splicing block one; 5. Splicing groove one; 6. Splicing block two; 7. Splicing groove two; 8. Positioning mechanism; 301. Positioning hole one; 302. Positioning hole two; 801. Storage groove; 802. Rotating block; 803. Rotating shaft; 804. Rubber washer; 805. Positioning rod. Detailed Implementation
[0021] 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.
[0022] like Figure 1 -- Figure 5As shown, this embodiment of a quickly assembled gabion structure includes a gabion frame 1. Gabion mesh 2 is woven and fixed to the four sides and bottom of the gabion frame 1. Splicing blocks 4 are vertically welded and fixed to the left and right side walls of the gabion frame 1. Splicing grooves 5 matching splicing blocks 4 are vertically formed on the left and right side walls of the gabion frame 1. Splicing blocks 6 are vertically welded and fixed to the front and rear side walls of the gabion frame 1. Splicing grooves 7 matching splicing blocks 6 are vertically formed on the left and right side walls of the gabion frame 1. A reinforcing plate 3 is welded and fixed to the middle side wall of the gabion frame 1. The reinforcing plate 3 effectively lifts the gabion frame. The overall deformation resistance of the gabion frame 1 is enhanced to prevent structural distortion caused by the pressure of the filling stones or external forces. The upper surface of the reinforcing plate 3 is provided with a positioning hole 2 302 at the center. The upper surface of the gabion frame 1 is provided with a positioning hole 1 301 on the front and rear sides. The bottom of the gabion frame 1 is provided with a positioning mechanism 8 that cooperates with the positioning holes 1 301 and 2 302. The gabion frame 1, gabion mesh 2, reinforcing plate 3, splicing block 1 4, and splicing block 2 6 are all made of Galfan material. With the excellent corrosion resistance and high strength of Galfan, it can be used for a long time in harsh conditions such as humid, acidic and alkaline soils and marine environments, reducing maintenance costs.
[0023] The left-side splicing block 14 and splicing groove 15 correspond to the right-side splicing groove 15 and splicing block 14, respectively. The front-side splicing block 26 and splicing groove 27 correspond to the rear-side splicing groove 27 and splicing block 26, respectively. Through the corresponding design of splicing block 14 and splicing groove 15 on the left and right side walls, and splicing block 26 and splicing groove 27 on the front and rear side walls, multiple gabion frames 1 can be quickly spliced laterally. At the same time, the staggered splicing structure eliminates the need to adjust the splicing sides during splicing, significantly improving assembly efficiency and reducing on-site construction time. Moreover, after splicing and assembly, the adjacent gabions on the front, back, left, and right are closely connected, making the overall structure more stable and reliable, and reducing the risk of structural collapse. The positioning mechanism 8 includes a storage slot 801 and a rotating block 802. Four storage slots 801 are respectively located at the bottom of the four corners of the gabion frame 1. A rotating shaft 803 is fixedly connected to the side wall of each rotating block 802, and the side wall of each rotating shaft 803 is rotatably connected to the inner side wall of the storage slot 801. A positioning rod 805 is fixedly connected to the lower surface of the rotating block 802. A rubber washer 804 is fitted onto the outer side wall of the rotating shaft 803. The length of the storage slot 801 is greater than the length of the rotating block 802 plus the positioning rod 805. The rubber washer 804 reduces friction. To reduce wear and extend the service life of the rotating block 802, the length of the storage groove 801 is greater than the total length of the rotating block 802 and the positioning rod 805, providing space for the finger to pry and flip the positioning rod 805. When not in use, the positioning rod 805 is hidden in the groove to avoid damage during transportation. When in use, the positioning rod 805 is flipped vertically and pulled out from the storage groove 801, which can then be used with positioning holes 1 301 and 2 302 for stacking and positioning. The bottom positioning rod 805 can be inserted into the ground to enhance stability. There are four positioning holes 301 and 302, and they are symmetrically arranged along the axis of symmetry. The positioning holes 301 and 302 correspond to the positions of the positioning rods 805, supporting two stacking methods for the upper and lower frames: vertical cross and stepped, adapting to different terrains such as steep slopes, gentle slopes and engineering needs, and improving structural flexibility. When adjacent gabion frames 1 are stacked vertically in a cross pattern, the positioning rod 805 is aligned with the positioning hole 301. When adjacent gabion frames 1 are stacked in a stepped cross pattern, the positioning rod 805 is aligned with the positioning hole 302. When the gabions are stacked vertically in a cross pattern, the upper layer of adjacent gabions on the left and right are spliced together, and the positioning rod 805 at the splice is inserted into the positioning hole 301 of the lower layer gabion. When stacking in a stepped cross pattern, the positioning rod 805 of the upper layer of spliced gabions on the left and right is inserted into the positioning hole 302 of the lower layer of spliced gabions. This achieves fast and accurate positioning and stacking, enhances the stability of interlayer connections, and further improves the stability of the structure.
[0024] The working principle of this embodiment is as follows: When in use, the positioning rod 805 is vertically flipped out from the storage slot 801, and the bottom gabion positioning rod 805 is inserted into the ground. When splicing, the adjacent gabions on the left and right slide the splicing block 4 into the splicing slot 5, and the adjacent gabions in front and behind insert the splicing block 6 into the splicing slot 7 to complete the assembly. After assembly, stones are filled into the gabion. When stacking, two modes, vertical cross and stepped cross, can be selected according to the needs. When stacking vertically, the adjacent gabions on the left and right sides of the upper layer are spliced together, and the positioning rod 805 at the splice point is inserted into the positioning hole 301 of the lower layer gabion. When stacking in a stepped manner, the positioning rod 805 of the gabions spliced on the left and right sides of the upper layer is inserted into the positioning hole 302 of the gabions spliced front and back of the lower layer. This achieves fast and accurate positioning and stacking, and enhances the stability of the interlayer connection.
[0025] 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 gabion mesh structure that can be quickly assembled and spliced, comprising a gabion frame (1), characterized in that: The gabion frame (1) is woven and fixed with gabion mesh (2) on all four sides and bottom. The left and right side walls of the gabion frame (1) are vertically welded and fixed with splicing block 1 (4). The left and right side walls of the gabion frame (1) are vertically opened with splicing groove 1 (5) matching splicing block 1 (4). The front and rear side walls of the gabion frame (1) are vertically welded and fixed with splicing block 2 (6). The left and right side walls of the gabion frame (1) are vertically opened with splicing groove 2 (7) matching splicing block 2 (6). The middle side wall of the gabion frame (1) is welded and fixed with reinforcing plate (3). The upper surface of the reinforcing plate (3) is opened with positioning hole 2 (302) at the center. The upper surface of the gabion frame (1) is opened with positioning hole 1 (301) on the front and rear sides. The bottom of the gabion frame (1) is provided with positioning mechanism (8) that positions and cooperates with positioning hole 1 (301) and positioning hole 2 (302).
2. The gabion mesh structure that can be quickly assembled according to claim 1, characterized in that, The splicing block 1 (4) and splicing groove 1 (5) on the left side correspond to the splicing groove 1 (5) and splicing block 1 (4) on the right side, respectively. The splicing block 2 (6) and splicing groove 2 (7) on the front side correspond to the splicing groove 2 (7) and splicing block 2 (6) on the rear side, respectively.
3. The gabion mesh structure that can be quickly assembled according to claim 1, characterized in that, The positioning mechanism (8) includes a storage slot (801) and a rotating block (802). The four storage slots (801) are respectively opened at the bottom of the four corners of the gabion frame (1). The side walls of the rotating blocks (802) are all fixedly connected to rotating shafts (803). The side walls of the rotating shafts (803) are rotatably connected to the inner side walls of the storage slots (801). The lower surface of the rotating blocks (802) is fixedly connected to a positioning rod (805).
4. The gabion mesh structure that can be quickly assembled according to claim 3, characterized in that, The outer wall of the rotating shaft (803) is fitted with a rubber gasket (804), and the length of the receiving groove (801) is greater than the total length of the rotating block (802) and the positioning rod (805).
5. The gabion mesh structure that can be quickly assembled according to claim 1, characterized in that, The first positioning hole (301) and the second positioning hole (302) are each provided in fours, and are arranged symmetrically along the axis of symmetry. The first positioning hole (301) and the second positioning hole (302) correspond to the position of the positioning rod (805).
6. A gabion mesh structure that can be quickly assembled according to claim 3, characterized in that, When the adjacent gabion frames (1) are stacked vertically in a cross manner, the positioning rod (805) is aligned with the positioning hole one (301), and when the adjacent gabion frames (1) are stacked in a stepped cross manner, the positioning rod (805) is aligned with the positioning hole two (302).
7. A gabion mesh structure that can be quickly assembled according to claim 1, characterized in that, The gabion frame (1), gabion mesh (2), reinforcing plate (3), splicing block one (4), and splicing block two (6) are all made of Galfan material.