Modularized small-diameter log tending wood biomass rope binding sand control barrier
By using a rectangular frame structure composed of modular small-diameter logs and biomass ropes, the high cost and environmental pollution problems of traditional sand control barrier materials have been solved, achieving a sand control effect that is highly stable, environmentally friendly, and adaptable.
Patent Information
- Application Number
- CN202520469511.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-03-18
AI Technical Summary
Traditional sand control barrier materials are costly, difficult to degrade, easily polluted in the natural environment, and structurally unstable, making it difficult to meet the long-term needs of windbreak and sand fixation.
The rectangular frame structure, composed of modularly designed small-diameter logs and biomass ropes, stably connects adjacent square timbers through the combination of connecting grooves and connecting plates. It is bound with ropes woven from hemp or bamboo fiber ropes, and combined with anti-corrosion treatment to improve stability and environmental protection.
It provides a sand control barrier that is highly stable, environmentally friendly, and low-cost, and can flexibly adapt to the terrain and climate conditions of different desertification areas, with broad application prospects.
Smart Images

Figure CN223867210U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of desertification control technology, specifically a modular small-diameter log tending material biomass rope binding desertification control barrier. Background Technology
[0002] Desertification is one of the most significant environmental problems facing the world today. It not only threatens ecological balance but also seriously affects human production and lives. To effectively prevent and control desertification, sand barriers, as an important measure for windbreak and sand fixation, are widely used in desertification control.
[0003] Traditional sand control barrier materials mostly use chemically synthesized materials such as metals and plastics. For example, a Chinese patent with publication number CN110777767B discloses a sand barrier for ecological restoration and desertification control, which includes a sand barrier component. The sand barrier component includes a pair of mesh devices for parallel insertion into the sand and several U-shaped pins. The mesh device includes several fixed stakes for insertion into the sand. A straight mesh and a diagonal mesh for blocking wind and sand are fixedly connected between two adjacent fixed stakes. The length of the diagonal mesh is greater than the length of the straight mesh. A diagonal vertical sleeve is fixedly connected in the middle of the diagonal mesh. Elastic rubber bands are fixedly connected between the diagonal vertical sleeve and two adjacent fixed stakes. The two ends of the U-shaped pins are respectively inserted into the diagonal vertical sleeves of the two mesh devices.
[0004] These materials are not only costly but also difficult to degrade in the natural environment, causing some pollution. Furthermore, metal sand control barriers are prone to corrosion under wind and sand erosion, affecting their service life and stability. Therefore, developing a low-cost, environmentally friendly, and efficient sand control barrier material has become an important issue in the field of desertification control.
[0005] In recent years, with the increasing awareness of environmental protection and the growing acceptance of the concept of sustainable development, biomass materials have received widespread attention due to their renewable and biodegradable characteristics. Their application in the field of desertification control is also gradually increasing. However, most biomass desertification control barriers currently on the market suffer from structural instability and susceptibility to damage, making it difficult to meet the long-term needs of windbreak and sand fixation. Utility Model Content
[0006] The purpose of this utility model is to provide a modular small-diameter log tending material biomass rope binding sand control barrier, which aims to improve the problem that most biomass sand control barriers have unstable structures and are easily damaged.
[0007] This utility model is implemented as follows: a modular small-diameter log tending material biomass rope binding sand control barrier includes multiple square timbers, with four square timbers spliced together to form a rectangular frame structure, and adjacent rectangular frames sharing the same square timbers; it also includes multiple ropes, which are respectively set at the corners of the rectangular frames, and the two ends of the ropes are respectively tied to two connected square timbers; the square timbers are set as logs or tending materials, and the ropes are woven from biomass materials.
[0008] As one embodiment of this utility model, the biomass material includes hemp rope or bamboo fiber rope, and the biomass rope is woven using a flat knot binding method.
[0009] As one embodiment of this utility model, the diameter of the logs or cultivated timber is 4cm to 10cm, and the length of the logs or cultivated timber is 1m.
[0010] As one embodiment of this utility model, the logs or cultivated timber are trimmed and treated with preservatives.
[0011] As one embodiment of this utility model, a first connecting groove and a first connecting plate are respectively provided at the end where the two square timbers are in contact with each other. Both the first connecting groove and the first connecting plate are set as L-shaped structures, and the first connecting plate is installed in the first connecting groove.
[0012] As one embodiment of this utility model, a second connecting groove and a second connecting plate are respectively provided at the end where the two square timbers are in contact with each other, and the second connecting plate is inserted into the second connecting groove.
[0013] As one embodiment of this utility model, a third connecting groove is provided at the end of each of the two square timbers that are in contact with each other. The end of the third connecting groove is set as an opening, and a third connecting plate is provided in the space formed by the two third connecting grooves.
[0014] As one embodiment of this utility model, a fourth connecting groove is provided at the end of each of the two square timbers that are in contact with each other. The end of the fourth connecting groove is set as an opening, and a fourth connecting plate is provided in the space formed by the two fourth connecting grooves.
[0015] The length and width of the connecting board and the connecting groove are smaller than the width of the square timber, and the thickness of the board and the connecting groove is less than or equal to half the thickness of the square timber.
[0016] Compared with the prior art, the beneficial effects of this utility model are:
[0017] 1. This utility model is equipped with a rectangular frame sand control barrier composed of square timber and ropes. The square timber is made of logs or nurturing materials, and the ropes are made of hemp rope, bamboo fiber rope, etc. This can avoid environmental pollution caused by non-degradable sand control barriers while forming a sand control barrier with high stability and durability.
[0018] 2. The sand control barrier designed in this utility model is not only low-cost but also environmentally friendly and sustainable, effectively solving the problems existing in traditional sand control barriers. Furthermore, its modular design allows the sand control barrier to be freely combined as needed, flexibly adapting to the terrain and climate conditions of different desertified areas, thus possessing broad application prospects and promotional value.
[0019] 3. This utility model provides connecting plates and connecting grooves at the ends of adjacent square timbers. The relative positions of adjacent square timbers can be restricted by the cooperation of the connecting plates and connecting grooves, and the adjacent square timbers can be stably placed under the tethering of ropes, thereby forming a stable sand control barrier. Attached Figure Description
[0020] The accompanying drawings, which form part of this utility model, are used to provide a further understanding of the utility model, making other features, objects, and characteristics of the utility model more apparent. The illustrative embodiments of the utility model and their descriptions are used to explain the utility model and do not constitute an undue limitation of the utility model.
[0021] Figure 1 This is a first structural schematic diagram of the present invention;
[0022] Figure 2 This is a schematic diagram of the second structure of this utility model;
[0023] Figure 3 This is a first structural schematic diagram of the adjacent square timber ends of this utility model;
[0024] Figure 4 This is a schematic diagram of the second structure of the adjacent square timber ends of this utility model;
[0025] Figure 5 This is a schematic diagram of the third structure at the ends of adjacent square timbers of this utility model;
[0026] Figure 6 This is a schematic diagram of the fourth structure of the adjacent square timber ends of this utility model.
[0027] In the diagram: 1. Square timber; 11. First connecting groove; 12. First connecting board; 13. Second connecting groove; 14. Second connecting board; 15. Third connecting groove; 16. Third connecting board; 17. Fourth connecting groove; 18. Fourth connecting board; 2. Rope. Detailed Implementation
[0028] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0029] It should be noted that all directional indicators (such as up, down, left, right, front, back, etc.) in this utility model embodiment are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicator will also change accordingly.
[0030] Example 1
[0031] like Figure 1 , Figure 2 As shown, in order to provide a readily biodegradable and structurally stable sand barrier for desertification control, this embodiment provides a new sand control barrier, which includes multiple square timbers 1 and multiple ropes 2. The square timbers 1 used here are mostly small-diameter logs or cultivated timber, i.e., with a diameter of 4cm to 10cm and a length of 1m. In practice, four square timbers 1 are first spliced together to form a rectangular frame, i.e., adjacent square timbers 1 are set vertically together. Then, the ends of the ropes 2 are tied to the adjacent square timbers 1, and the ropes 2 control the adjacent square timbers 1 to maintain a stable connection. The ropes 2 here are ropes woven from biomass materials, including but not limited to hemp rope and bamboo fiber rope, which have sufficient strength and wear resistance. Moreover, the biomass ropes can be woven using a flat knot binding method, ensuring the stability and durability of the sand control barrier structure. This not only enhances the durability of the sand control barrier but also embodies the concept of environmental protection and is conducive to the ecological restoration of desertified areas. In addition, the sand control barrier provided in this embodiment is not only low-cost but also environmentally sustainable, and can effectively solve the problems existing in traditional sand control barriers. Meanwhile, the modular design allows sand control barriers to be freely combined as needed, flexibly adapting to the terrain and climate conditions of different desertification areas, and has broad application prospects and promotional value.
[0032] like Figure 1 , Figure 2 As shown, after four square timbers 1 are spliced together to form a rectangular frame, the remaining square timbers 1 can be spliced together and placed on the outside of the rectangular frame, and then tied together with ropes 2, thus forming a larger modular sand control barrier. The modular design allows the sand control barrier to be freely combined as needed to adapt to the terrain and climate conditions of different desertification areas.
[0033] The aforementioned square timber 1 underwent trimming and anti-corrosion treatment before being put into use.
[0034] During the finishing process, cutting tools, sanding tools, and filling repairs can be used to achieve a diameter of 4cm to 10cm and a length of 1m for the square timber 1. For example, a saw can be used to cut off excess wood, such as a handsaw for fine cutting of small pieces of wood. A plane can be used to smooth the surface of the wood, removing uneven parts and burrs to make the surface smooth.
[0035] Preservative treatments include chemical methods, heat treatment, and drying methods to prevent wood decay. For example, placing wood in a sealed vacuum chamber and applying pressure forces a poorly soluble water-based preservative into the wood, inhibiting the growth of wood-decaying fungi. Another method involves brushing or spraying preservatives onto the wood surface, allowing them to penetrate and achieve preservation. This method is simple, but the preservative effect may not be as deep or long-lasting as pressure impregnation.
[0036] Example 2
[0037] like Figure 3 As shown, based on Embodiment 1, in order to ensure that adjacent square timbers 1 are placed relatively stably and to prevent them from moving relative to each other and causing the ropes to become loose, a first connecting groove 11 and a first connecting plate 12 can be respectively provided at the contact ends of the two square timbers 1. The first connecting groove 11 and the first connecting plate 12 are both set as L-shaped structures, and the first connecting plate 12 is installed in the first connecting groove 11. Therefore, with the cooperation of the first connecting plate 12 and the first connecting groove 11, the adjacent square timbers 1 are placed stably and are easy to operate and assemble.
[0038] The dimensions of the first connecting groove 11 and the first connecting plate 12 are determined according to actual needs. For example, if adjacent rectangular frames share a single square timber 1, in order to ensure the stable placement of three adjacent square timbers 1, the length and width of the first connecting groove 11 and the first connecting plate 12 should be less than half the width of the square timber 1, thus allowing for the installation of a corresponding number of connecting grooves or plates on the same square timber 1. In addition, the thickness of the connecting plate and the connecting groove should be less than or equal to half the thickness of the square timber 1.
[0039] Example 3
[0040] like Figure 4 As shown, based on Embodiment 1, in order to ensure that adjacent square timbers 1 are placed relatively stably and to prevent them from moving relative to each other and causing the ropes to become loose, a second connecting groove 13 and a second connecting plate 14 can be respectively provided at the contacting ends of the two square timbers 1. Both the second connecting groove 13 and the second connecting plate 14 are set as rectangular structures, and the second connecting plate 14 is inserted into the second connecting groove 13. Therefore, with the cooperation of the second connecting groove 13 and the second connecting plate 14, the adjacent square timbers 1 are placed stably and are easy to operate and assemble.
[0041] The dimensions of the second connecting groove 13 and the second connecting plate 14 are determined according to actual needs. For example, if adjacent rectangular frames share a single square timber 1, in order to ensure the stable placement of three adjacent square timbers 1, the length and width of the second connecting groove 13 and the second connecting plate 14 should be less than half the width of the square timber 1, thus allowing for the installation of a corresponding number of connecting grooves or connecting plates on the same square timber 1. In addition, the thickness of the connecting plate and the connecting groove should be less than or equal to half the thickness of the square timber 1.
[0042] Example 4
[0043] like Figure 5As shown, based on Embodiment 1, in order to ensure that adjacent square timbers 1 are placed relatively stably and to prevent them from moving relative to each other and causing the ropes to become loose, a third connecting groove 15 can be provided at the end of each of the two square timbers 1 that are in contact with each other. The end of the third connecting groove 15 is set as an opening, and a third connecting plate 16 is provided in the space formed by the two third connecting grooves 15. Therefore, with the cooperation of the third connecting plate 16 and the third connecting groove 15, the adjacent square timbers 1 are placed stably and are easy to operate and assemble.
[0044] The dimensions of the third connecting plate 16 and the third connecting groove 15 are determined according to actual needs. For example, if adjacent rectangular frames share a single square timber 1, in order to ensure the stable placement of the three adjacent square timbers 1, the length and width of the third connecting plate 16 and the third connecting groove 15 should be less than half the width of the square timber 1. This allows for the installation of a corresponding number of connecting grooves or plates on the same square timber 1. Furthermore, the thickness of the connecting plate and connecting groove should be less than or equal to half the thickness of the square timber 1.
[0045] Example 5
[0046] like Figure 6 As shown in Example 1, in order to ensure that adjacent square timbers 1 are placed relatively stably and to prevent them from moving relative to each other and causing the ropes to become loose, a fourth connecting groove 17 can be provided at the end of each of the two square timbers 1 that are in contact with each other. The end of the fourth connecting groove 17 is set as an opening, and a fourth connecting plate 18 is set in the space formed by the two fourth connecting grooves 17. At the same time, both the fourth connecting groove 17 and the fourth connecting plate 18 are set as trapezoidal structures. Therefore, with the cooperation of the fourth connecting plate 18 and the fourth connecting groove 17, the adjacent square timbers 1 are placed stably and are easy to operate and assemble.
[0047] The dimensions of the fourth connecting plate 18 and the fourth connecting groove 17 are determined according to actual needs. For example, if adjacent rectangular frames share a single square timber 1, in order to ensure the stable placement of three adjacent square timbers 1, the length and width of the fourth connecting plate 18 and the fourth connecting groove 17 should be less than half the width of the square timber 1. This allows for the installation of a corresponding number of connecting grooves or plates on the same square timber 1. Furthermore, the thickness of the connecting plate and connecting groove should be less than or equal to half the thickness of the square timber 1.
[0048] Furthermore, the technical solutions of the various embodiments of this utility model can be combined with each other, but only if they are based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or cannot be implemented, it should be considered that such combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.
[0049] The above-described embodiments are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of this utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the appended claims.
Claims
1. A modular small-diameter log tending material biomass rope binding method for sand control, characterized in that, It includes multiple square timbers (1), with four square timbers (1) spliced together to form a rectangular frame structure, and adjacent rectangular frames sharing the square timbers (1); it also includes multiple ropes (2), with the multiple ropes (2) respectively set at the corners of the rectangular frames, and the two ends of the ropes (2) respectively tied to two connected square timbers (1); the square timbers (1) are set as logs or nurturing materials, and the ropes (2) are woven from biomass materials.
2. The modular small-diameter log tending material biomass rope binding sand control barrier according to claim 1, characterized in that, Biomass materials include hemp rope or bamboo fiber rope, and the biomass rope is woven using a flat knot binding method.
3. The modular small-diameter log tending material biomass rope binding sand control barrier according to claim 2, characterized in that, The diameter of the logs or cultivated timber is 4cm to 10cm, and the length of the logs or cultivated timber is 1m.
4. The modular small-diameter log tending material biomass rope binding sand control barrier according to claim 3, characterized in that, The logs or cultivated timber have been trimmed and treated with preservatives.
5. The modular small-diameter log tending material biomass rope binding sand control barrier according to claim 1, characterized in that, A first connecting groove (11) and a first connecting plate (12) are respectively provided at the two ends of the square timber (1) that are in contact with each other. The first connecting groove (11) and the first connecting plate (12) are both set as L-shaped structures, and the first connecting plate (12) is installed in the first connecting groove (11).
6. The modular small-diameter log tending material biomass rope binding sand control barrier according to claim 1, characterized in that, A second connecting groove (13) and a second connecting plate (14) are respectively provided at the two ends of the two square timbers (1) that are in contact with each other, and the second connecting plate (14) is inserted into the second connecting groove (13).
7. The modular small-diameter log tending material biomass rope binding sand control barrier according to claim 1, characterized in that, A third connecting groove (15) is provided at the end of each of the two square timbers (1) that are in contact with each other. The end of the third connecting groove (15) is set as an opening. A third connecting plate (16) is provided in the space formed by the two third connecting grooves (15).
8. The modular small-diameter log tending material biomass rope binding sand control barrier according to claim 1, characterized in that, A fourth connecting groove (17) is provided at the end of each of the two square timbers (1) that are in contact with each other. The end of the fourth connecting groove (17) is set as an opening, and a fourth connecting plate (18) is provided in the space formed by the two fourth connecting grooves (17).
9. A modular small-diameter log tending material biomass rope binding sand control barrier according to claim 5, 6, 7 or 8, characterized in that, The length and width of the connecting board and the connecting groove are less than the width of the square timber (1), and the thickness of the board and the connecting groove is less than or equal to half the thickness of the square timber (1).
Citation Information
Patent Citations
A sand barrier for ecological restoration and desertification control
CN110777767B