Hexagonal geocell with embossed surface
The hexagonal geogrid with integrated handles and anchoring mechanism simplifies and speeds up the deployment process, reducing labor intensity and ensuring stable anchoring on steep slopes.
Patent Information
- Application Number
- CN202422311346.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-09-23
AI Technical Summary
The existing geotextile room requires a lot of manpower and material resources during laying in steep slope greening, and the laying speed is slow and the workers are labor-intensive.
A hexagonal geogrid chamber with a surface embossed surface is designed. By setting up structures such as handles, fixing rods, wire harnesses, pressing plates and ground inserts on the hexagonal geogrid, it can quickly unfold and fix and reduce manpower demand.
It realizes rapid laying and multi-point fixing, reduces manpower demand and prevents sideways. It is suitable for a variety of places, with simple operation and easy use.
Smart Images

Figure CN223103602U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of hexagonal geocells, and specifically relates to a hexagonal geocell with surface embossing. Background Art
[0002] A geocell is a three-dimensional network lattice structure formed by thermoplastic polymers through calendering, stretching or strengthening to make geocell sheets, and then through strong welding, connection or riveting. Geocells have the advantages of high tensile strength, light weight, convenient operation and construction, product anti-aging, acid and alkali resistance, etc., so they are widely used in geotechnical fields such as highways, subgrade construction, and slope greening, and can effectively improve the strength and stiffness of the foundation and reduce foundation settlement deformation.
[0003] At present, for the greening of steep slopes, it is necessary to lay geocells for slope reinforcement and greening. During the laying process, the whole geocell needs to be unfolded, which requires a large amount of manpower and material resources, and the laying speed is slow, and the labor intensity of workers is extremely high. In view of this, the present utility model is specifically proposed. Content of the Utility Model
[0004] The technical problem to be solved by the present utility model is to overcome the deficiencies of the prior art and provide a hexagonal geocell with surface embossing that can overcome or at least partially solve the above problems.
[0005] To solve the above technical problem, the basic concept of the technical solution adopted by the present utility model is: a hexagonal geocell with surface embossing includes a hexagonal geogrid; four groups of turning handles are arranged on the periphery of the hexagonal geogrid, a fixing rod is fixedly installed at one end of the hexagonal geogrid close to the turning handle, a wire harness is inserted through the hexagonal geogrid, and a pressing plate is arranged on the periphery of the hexagonal geogrid.
[0006] Further, the hexagonal geogrid further includes a geocell; the geocell is hexagonal in shape and the hexagonal geogrid is composed of geocells; threaded holes are arranged at the four corners of the hexagonal geogrid; through holes are arranged at both ends of the hexagonal geogrid.
[0007] Further, the turning handle further includes a wire harness collecting groove; the wire harness collecting groove controls the winding and unwinding of the wire harness when the turning handle rotates; a limiting baffle prevents the wire harness from falling off, the wire harness is fixedly connected to the wire harness collecting groove; a wire groove hole is formed for the wire harness to pass through to reach the wire harness collecting groove; a screw rod is meshed with the threaded hole; a sliding rod is fixedly connected to the screw rod.
[0008] Furthermore, when laying and transporting the hexagonal geogrid, one or two persons can rotate the handle. At this time, the handles at both ends can be rotated simultaneously, and the screw rod and the threaded hole mesh and rotate to work. Then, when the sliding rod reaches the threaded hole and continues to rotate the handle, the wire harness on the wire harness groove starts to contract, and the hexagonal geogrids at both ends are moved closer to each other until the geogrid chambers are mutually attached, thus facilitating transportation.
[0009] Furthermore, the pressing plate further includes a fixing screw rod; the fixing screw rod is fixedly connected to the pressing plate; the fixing limit block is fixedly connected to the fixing rod; the ground plug has a narrow bottom and a wide top and is fixedly connected to the fixing screw rod.
[0010] Furthermore, the starting end of the wire harness is fixedly connected to the wire harness groove at one end, the other end is fixedly connected to another set of wire harness grooves, and it passes through the wire groove hole and the perforation in the middle.
[0011] Furthermore, the surface of the handle is provided with concave and convex threads.
[0012] Furthermore, after arriving at the construction site, the hexagonal geogrids at both ends can be directly pulled to be unfolded. After the site where the hexagonal geogrids need to be fixed, only need to press or rotate the pressing plate. The pressing plate drives the fixing screw rod at the bottom to rotate in the fixing limit block, and at the same time drives the ground plug at the bottom to directly insert into the ground. The laying is fast, the manpower is reduced, the problem of needing to pull at the construction site can be avoided, and it can form a multi-point fixing structure with the ground, effectively preventing the problem of side shift. It is simple to operate, convenient to use, and applicable to various places.
[0013] After adopting the above technical solution, the present utility model has the following beneficial effects compared with the prior art: In the present utility model, the wire harness on the wire harness groove starts to contract, and the hexagonal geogrids at both ends are moved closer to each other until the geogrids are mutually attached, thus facilitating transportation. The pressing plate drives the fixing screw rod at the bottom to rotate in the fixing limit block, and at the same time drives the ground plug at the bottom to directly insert into the ground. The laying is fast, the manpower is reduced, the problem of needing to pull at the construction site can be avoided, and it can form a multi-point fixing structure with the ground, effectively preventing the problem of side shift. It is simple to operate, convenient to use, and applicable to various places. The geogrid chamber has a mesh grid chamber structure, it can stretch freely, can be folded up during transportation, and can be opened and filled with earth and stone or concrete when in use, forming a structure with strong lateral restraint and high rigidity.
[0014] The following further describes in detail the specific implementation manners of the present utility model with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In the accompanying drawings:
[0016] Figure 1 is a front view schematic diagram of a hexagonal geogrid chamber with surface embossing proposed by the present utility model;
[0017] Figure 2 Partial enlarged structural schematic diagram of a hexagonal geocell with surface embossing proposed by the present utility model;
[0018] Figure 3 Schematic diagram of the turning handle and its connection structure in a hexagonal geocell with surface embossing proposed by the present utility model;
[0019] Figure 4 Schematic diagram of the side view of the turning handle and its connection in a hexagonal geocell with surface embossing proposed by the present utility model;
[0020] Figure 5 Schematic diagram of the pressing plate and its connection structure in a hexagonal geocell with surface embossing proposed by the present utility model.
[0021] In the figure: 1. Hexagonal geogrid; 11. Geocell; 12. Threaded hole; 13. Perforation; 2. Turning handle; 21. Converging wire groove; 22. Restricting baffle; 23. Wire groove hole; 24. Screw rod; 25. Slide bar; 3. Fixed rod; 4. Wire harness; 5. Pressing plate; 51. Fixed screw; 52. Fixed limiting block; 53. Ground plug. Specific implementation mode
[0022] To make the objectives, technical solutions and advantages of the embodiments of the present utility model clearer, the technical solutions in the embodiments will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present utility model. The following embodiments are used to illustrate the present utility model but not to limit the scope of the present utility model.
[0023] Embodiment 1:
[0024] Refer to Figures 1 - 5 , a hexagonal geocell with surface embossing, including a hexagonal geogrid 1; four groups of turning handles 2 are arranged on the periphery of the hexagonal geogrid 1, a fixed rod 3 is fixedly installed at one end of the hexagonal geogrid 1 close to the turning handle 2, a wire harness 4 is inserted through the hexagonal geogrid 1, and a pressing plate 5 is arranged on the periphery of the hexagonal geogrid 1.
[0025] The hexagonal geogrid 1 further includes a geocell 11; the geocell 11 is hexagonal in shape, and the hexagonal geogrid 1 is composed of the geocells 11; threaded holes 12 are arranged at the four corners of the hexagonal geogrid 1; perforations 13 are arranged at both ends of the hexagonal geogrid 1.
[0026] The turn handle 2 further includes a wire harness trough 21; the wire harness trough 21 controls the winding and unwinding of the wire harness 4 when the turn handle 2 rotates; a limiting baffle 22 to prevent the wire harness 4 from falling off, and the wire harness 4 is fixedly connected to the wire harness trough 21; a wire trough hole 23 through which the wire harness 4 passes to reach the wire harness trough 21; a screw 24 meshed with the threaded hole 12; and a sliding rod 25 fixedly connected to the screw 24.
[0027] When laying and transporting the hexagonal geogrid 1, one or two people can rotate the turn handle 2. At this time, the turn handles 2 at both ends can be rotated simultaneously, and the screw 24 and the threaded hole 12 mesh and rotate. Then, when the sliding rod 25 reaches the threaded hole 12 and the turn handle 2 continues to rotate, the wire harness 4 on the wire harness trough 21 starts to contract, bringing the hexagonal geogrids 1 at both ends closer to each other until the geogrid chambers 11 are in contact with each other, thus facilitating transportation.
[0028] The pressing plate 5 further includes a fixing screw 51; the fixing screw 51 is fixedly connected to the pressing plate 5; a fixing limit block 52 is fixedly connected to the fixing rod 3; and a ground plug 53 with a narrow bottom and a wide top is fixedly connected to the fixing screw 51.
[0029] The starting end of the wire harness 4 is fixedly connected to the wire harness trough 21 at one end, and the other end is fixedly connected to another set of wire harness troughs 21, and it passes through the wire trough hole 23 and the perforation 13 in the middle.
[0030] The surface of the turn handle 2 is provided with concave and convex threads.
[0031] After arriving at the construction site, the hexagonal geogrids 1 at both ends can be directly pulled to unfold. After the site where the hexagonal geogrids 1 need to be fixed, just press or rotate the pressing plate 5. The pressing plate 5 drives the fixing screw 51 at the bottom to rotate in the fixing limit block 52, and at the same time drives the ground plug 53 at the bottom to directly insert into the ground. The laying is fast, the manpower is reduced, the problem of needing to pull at the construction site can be avoided, and it can form a multi-point fixing structure with the ground, effectively preventing the problem of lateral displacement. It is simple to operate and convenient to use, and is suitable for various places.
[0032] Embodiment 2:
[0033] Refer to Figures 1 - 5 A hexagonal geogrid chamber with surface embossing is basically the same as Embodiment 1. Further, when laying and transporting the hexagonal geogrid 1, one or two people can rotate the turn handle 2. At this time, the turn handles 2 at both ends can be rotated simultaneously, and the screw 24 and the threaded hole 12 mesh and rotate. Then, when the sliding rod 25 reaches the threaded hole 12 and the turn handle 2 continues to rotate, the wire harness 4 on the wire harness trough 21 starts to contract, bringing the hexagonal geogrids 1 at both ends closer to each other until the geogrid chambers 11 are in contact with each other, thus facilitating transportation.
[0034] After arriving at the construction site, the hexagonal geogrid 1 at both ends can be directly pulled to unfold. After reaching the site where the hexagonal geogrid 1 needs to be fixed, just press or rotate the pressing plate 5. The pressing plate 5 drives the fixing screw rod 51 at the bottom to rotate in the fixing limit block 52, and at the same time drives the ground plug 53 at the bottom to directly insert into the ground. The laying is fast, the manpower is reduced, the problem of traction required at the construction site can be avoided, and a multi-point fixing structure can be formed with the ground, effectively preventing the problem of lateral displacement. It is simple to operate and convenient to use, and is applicable to various places. The geogrid cell 11 has a mesh cell structure. It can stretch freely, can be folded up during transportation, and can be opened and filled with earth and stone or concrete materials during use, forming a structure with strong lateral restraint and high rigidity.
[0035] In the present utility model, the wire harness 4 on the wire harness groove 21 starts to contract, and the hexagonal geogrids 1 at both ends are moved closer to each other until the geogrid cells 11 are in contact with each other, which is convenient for transportation. The pressing plate 5 drives the fixing screw rod 51 at the bottom to rotate in the fixing limit block 52, and at the same time drives the ground plug 53 at the bottom to directly insert into the ground. The laying is fast, the manpower is reduced, the problem of traction required at the construction site can be avoided, and a multi-point fixing structure can be formed with the ground, effectively preventing the problem of lateral displacement. It is simple to operate and convenient to use, and is applicable to various places. The geogrid cell 11 has a mesh cell structure. It can stretch freely, can be folded up during transportation, and can be opened and filled with earth and stone or concrete materials during use, forming a structure with strong lateral restraint and high rigidity.
[0036] The above are only the preferred embodiments of the present utility model, and do not impose any form of limitation on the present utility model. Although the present utility model has been disclosed above with the preferred embodiments, it is not intended to limit the present utility model.
Claims
1. A hexagonal geocell with surface embossing, characterized in that, It includes a hexagonal geogrid (1); four groups of turning handles (2) are arranged on the periphery of the hexagonal geogrid (1), a fixing rod (3) is fixedly installed at one end of the hexagonal geogrid (1) close to the turning handle (2), a wire harness (4) is inserted through the hexagonal geogrid (1), and a pressing plate (5) is arranged on the periphery of the hexagonal geogrid (1).
2. A hexagonal geocell with surface embossing according to claim 1, characterized in that, The hexagonal geogrid (1) further includes geogrid cells (11); The geogrid cells (11) are hexagonal in shape, and the hexagonal geogrid (1) is composed of the geogrid cells (11); Threaded holes (12) are arranged at the four corners of the hexagonal geogrid (1); Perforations (13) are arranged at both ends of the hexagonal geogrid (1).
3. A hexagonal geocell with surface embossing according to claim 2, characterized in that, The turning handle (2) further includes a wire harness groove (21); The wire harness groove (21) controls the winding and unwinding of the wire harness (4) when the turning handle (2) rotates; A limiting baffle (22) prevents the wire harness (4) from falling off, and the wire harness (4) is fixedly connected to the wire harness groove (21); A wire groove hole (23) is passed through by the wire harness (4) to reach the wire harness groove (21); A screw rod (24) is meshed and connected with the threaded hole (12); A sliding rod (25) is fixedly connected to the screw rod (24).
4. A hexagonal geocell with surface embossing according to claim 1, characterized in that, The pressing plate (5) further includes a fixing screw rod (51); The fixing screw rod (51) is fixedly connected to the pressing plate (5); A fixing limit block (52) is fixedly connected to the fixing rod (3); A ground plug (53) has a narrow bottom and a wide top and is fixedly connected to the fixing screw rod (51).
5. A hexagonal geocell with surface embossing according to claim 1, characterized in that The starting end of the wire harness (4) is fixedly connected to the wire harness groove (21) at one end, the other end is fixedly connected to another group of wire harness grooves (21), and the middle passes through the wire groove hole (23) and the perforation (13).
6. A hexagonal geocell with surface embossing according to claim 1, characterized in that, The surface of the turning handle (2) is provided with concave and convex threads.