Water and soil conservation structure for wind power engineering

By combining horizontal connecting mechanisms, vertical connecting mechanisms, and reinforcement mechanisms, the problem of inconvenient installation of soil and water conservation structures in wind power projects on slopes is solved, achieving stable connection and firm fixation of the structure and simplifying the installation process.

CN224161092UActive Publication Date: 2026-04-24GEZHOUBA GRP ELECTRIC POWER COMPANY
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GEZHOUBA GRP ELECTRIC POWER COMPANY
Filing Date
2025-05-25
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

The existing soil and water conservation structures for wind power projects are difficult to install on slopes and are inconvenient to install.

Method used

The structure employs horizontal and vertical connecting mechanisms, and is fixed to the soil via locking blocks and inserts. Combined with the spiral blades of the reinforcement mechanism, it achieves a stable connection and fixation of the structure.

Benefits of technology

It simplifies the installation process, improves the stability and robustness of the structure on the slope, and facilitates the installation and use of soil and water conservation structures.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a water and soil conservation structure for wind power engineering, which is characterized in that transverse connecting blocks are connected end to end and are arranged in clamping grooves formed in the adjacent transverse connecting blocks through clamping blocks, so that the transverse connecting blocks are connected together, and vertical connecting blocks are connected end to end and are arranged in clamping grooves formed in the adjacent vertical connecting blocks through clamping blocks; the vertical connecting mechanisms are connected together, the vertical connecting blocks at the two ends of the vertical connecting mechanisms are attached to the transverse connecting blocks of the transverse connecting mechanisms, the clamping grooves in the ends of the vertical connecting blocks are connected with the clamping grooves in the side walls of the transverse connecting blocks, and the adjacent vertical connecting blocks and transverse connecting blocks are connected together through the clamping blocks. According to the water and soil conservation structure, the transverse connecting mechanism and the vertical connecting mechanism are connected, the transverse connecting mechanism and the vertical connecting mechanism are fixed to the slope surface through the reinforcing mechanism, the honeycomb-shaped grids are embedded in soil between the transverse connecting mechanism and the vertical connecting mechanism, the water and soil conservation structure is formed by combining a plurality of components, and installation and use of the water and soil conservation structure are facilitated.
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Description

Technical Field

[0001] This utility model relates to the field of soil and water conservation technology, specifically a soil and water conservation structure for wind power projects. Background Technology

[0002] Soil and water conservation is the work of preventing soil erosion, protecting, improving and rationally utilizing soil and water resources, improving land productivity, and establishing a good ecological environment. Nowadays, many wind power projects are built on mountain slopes. Because they are located on slopes, soil and water conservation is essential for wind power projects. This refers to the prevention and control measures taken against soil erosion caused by natural factors and human activities.

[0003] However, current soil and water conservation structures for wind power projects are difficult to install on slopes due to their large size. To address these issues, a new soil and water conservation structure for wind power projects is proposed. Utility Model Content

[0004] The purpose of this utility model is to provide a soil and water conservation structure for wind power projects to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution:

[0006] A soil and water conservation structure for wind power projects includes horizontal connecting mechanisms and vertical connecting mechanisms. The horizontal connecting mechanisms are arranged parallel to each other on the slope protection of the wind power project, and the vertical connecting mechanisms are arranged parallel to each other between the horizontal connecting mechanisms. Reinforcing mechanisms are provided through the horizontal and vertical connecting mechanisms and are embedded in the soil through the corresponding horizontal and vertical connecting mechanisms. A honeycomb grid is embedded in the soil between the horizontal and vertical connecting mechanisms.

[0007] As a further embodiment of this utility model: the horizontal connecting mechanism includes multiple horizontal connecting blocks connected end to end, the vertical connecting mechanism includes multiple vertical connecting blocks connected end to end, the horizontal connecting blocks and the vertical connecting blocks have slots on all four sides, adjacent slots have common slots with a common slot, and the horizontal connecting blocks and the vertical connecting blocks have through mounting holes.

[0008] As a further improvement of this utility model, a pin is fixedly connected to the side of the card block that contacts the soil.

[0009] As a further improvement of this utility model: a first insert is provided on the side of the horizontal connecting block that contacts the soil, and a second insert is provided on the side of the vertical connecting block that contacts the soil.

[0010] As a further embodiment of this utility model: the reinforcement mechanism includes a connector, one end of which is fixedly connected to a rod, a spiral blade is fixedly sleeved on the rod, the end of the rod is a pointed tip, and the other end of the connector is fixedly connected to a rotating sleeve. The rod and the spiral blade sleeved thereon pass through the mounting hole, and the connector is built into the mounting hole.

[0011] Compared with the prior art, the beneficial effects of this utility model are:

[0012] 1. This utility model connects the horizontal connecting blocks end to end in the horizontal connecting mechanism, and uses locking blocks to embed in the slots opened in adjacent horizontal connecting blocks, thus connecting the horizontal connecting mechanisms together. Similarly, it connects the vertical connecting blocks end to end in the vertical connecting mechanism, and uses locking blocks to embed in the slots opened in adjacent vertical connecting blocks, thus connecting the vertical connecting mechanisms together. The vertical connecting blocks at both ends of the vertical connecting mechanism fit into the horizontal connecting blocks of the horizontal connecting mechanism, and the slots at the ends of the vertical connecting blocks connect to the slots on the side walls of the horizontal connecting blocks. The locking blocks connect adjacent vertical and horizontal connecting blocks together, thus connecting the horizontal and vertical connecting mechanisms. A reinforcing mechanism fixes the horizontal and vertical connecting mechanisms to the slope, and a honeycomb grid is embedded in the soil between the horizontal and vertical connecting mechanisms. It is composed of multiple components combined together, avoiding the problem of individual components being too large, and facilitating the installation and use of the soil and water conservation structure.

[0013] 2. This utility model increases the stability of the horizontal and vertical connecting mechanisms by inserting the first insert of the horizontal connecting block in the horizontal connecting mechanism and the second insert of the vertical connecting block in the vertical connecting mechanism into the soil of the slope. Furthermore, the inserts on the connecting blocks in adjacent slots are also inserted into the soil, increasing the stability of the mechanism. The tip of the reinforcing mechanism's rod is embedded in the slope soil, and a lever is inserted into the rotating sleeve to drive the connecting head to rotate, thereby rotating the helical blades. The rotating helical blades allow the reinforcing mechanism to be embedded in the soil, thus fixing the horizontal and vertical connecting blocks. The helical blades also increase the contact area between the rod and the soil, further enhancing the stability of the horizontal and vertical connecting mechanisms. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of a soil and water conservation structure for a wind power project.

[0015] Figure 2 This is a schematic diagram of the frame structure in a soil and water conservation structure for a wind power project.

[0016] Figure 3 This is a sectional view of a frame in a soil and water conservation structure for a wind power project.

[0017] Figure 4 This is a schematic diagram of a reinforcement mechanism in a soil and water conservation structure for a wind power project.

[0018] In the diagram: 1. Horizontal connecting mechanism; 2. Vertical connecting mechanism; 3. Honeycomb grid; 4. Horizontal connecting block; 5. Slot; 6. Block; 7. Vertical connecting block; 8. Mounting hole; 9. Reinforcing mechanism; 10. First insert; 11. Second insert; 12. Peg; 13. Connector; 14. Rotating sleeve; 15. Rod; 16. Helical blade. Detailed Implementation

[0019] 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.

[0020] Please see Figures 1-4 In this embodiment of the utility model, a soil and water conservation structure for a wind power project includes a horizontal connecting mechanism 1 and a vertical connecting mechanism 2. The horizontal connecting mechanism 1 is arranged parallel to each other on the slope of the wind power project, and the vertical connecting mechanism 2 is arranged parallel to each other between the horizontal connecting mechanisms 1. A reinforcing mechanism 9 is provided through the horizontal connecting mechanism 1 and the vertical connecting mechanism 2. The reinforcing mechanism 9 is embedded in the soil through the corresponding horizontal connecting mechanism 1 and the vertical connecting mechanism 2. A honeycomb grid 3 is embedded in the soil between the horizontal connecting mechanism 1 and the vertical connecting mechanism 2.

[0021] The horizontal connecting mechanism 1 includes multiple horizontal connecting blocks 4 connected end to end. The vertical connecting mechanism 2 includes multiple vertical connecting blocks 7 connected end to end. The horizontal connecting blocks 4 and the vertical connecting blocks 7 have slots 5 on all four sides. Adjacent slots 5 have a common slot block 6. The horizontal connecting blocks 4 and the vertical connecting blocks 7 have through holes 8.

[0022] In use, on the slope of the wind power project where soil and water conservation is required, the horizontal connecting blocks 4 in the horizontal connecting mechanism 1 are connected end to end, and the locking blocks 6 are embedded in the slots 5 opened in the adjacent horizontal connecting blocks 4, so that the horizontal connecting mechanisms 1 are connected together. The vertical connecting blocks 7 in the vertical connecting mechanism 2 are connected end to end, and the locking blocks 6 are embedded in the slots 5 opened in the adjacent vertical connecting blocks 7, so that the vertical connecting mechanisms 2 are connected together. The vertical connecting blocks 7 at both ends of the vertical connecting mechanism 2 fit with the horizontal connecting blocks 4 of the horizontal connecting mechanism 1, and the slots 5 at the ends of the vertical connecting blocks 7 are connected with the slots 5 on the side walls of the horizontal connecting blocks 4. The locking blocks 6 connect the adjacent vertical connecting blocks 7 and the horizontal connecting blocks 4 together, thus connecting the horizontal connecting mechanism 1 and the vertical connecting mechanism 2. The horizontal connecting mechanism 1 and the vertical connecting mechanism 2 are fixed on the slope by the reinforcing mechanism 9, and the honeycomb grid 3 is embedded in the soil between the horizontal connecting mechanism 1 and the vertical connecting mechanism 2.

[0023] The side of the card block 6 that contacts the soil is fixedly connected with a pin 12. When the card block 6 is engaged in the adjacent slot 5, the pin 12 on the card block 6 is inserted into the soil of the profile, which increases the stability of the entire device.

[0024] The side of the horizontal connecting block 4 that contacts the soil is provided with a first insert 10, and the side of the vertical connecting block 7 that contacts the soil is provided with a second insert 11. The horizontal connecting block 4 is inserted into the soil of the wind power project slope through the first insert 10 and the vertical connecting block 7 is inserted into the soil through the second insert 11, thereby increasing the stability of the installation of the horizontal connecting block 4 and the vertical connecting block 7.

[0025] The reinforcement mechanism 9 includes a connector 13, one end of which is fixedly connected to a rod 15. A spiral blade 16 is fixedly sleeved on the rod 15, and the end of the rod 15 is a pointed tip. The other end of the connector 13 is fixedly connected to a rotating sleeve 14. The rod 15 and the spiral blade 16 it sleeves pass through the mounting hole 8, and the connector 13 is built into the mounting hole 8. In use, the rod 15 and the spiral blade 16 of the reinforcement mechanism 9 are built into the mounting holes 8 of the horizontal connecting block 4 and the vertical connecting block 7, so that the tip of the rod 15 is built into the slope soil. By inserting a lever into the rotating sleeve 14, the connector 13 is driven to rotate, thereby realizing the rotation of the spiral blade 16. The rotating spiral blade 16 makes the reinforcement mechanism 9 built into the soil, realizing the fixation of the horizontal connecting block 4 and the vertical connecting block 7. The spiral blade 16 increases the contact area between the rod 15 and the soil, increasing the stability of the reinforcement mechanism 9.

[0026] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A soil and water conservation structure for wind power projects, comprising a horizontal connecting mechanism (1) and a vertical connecting mechanism (2), characterized in that: The horizontal connecting mechanism (1) is set parallel to the slope of the wind power project, and the vertical connecting mechanism (2) is set parallel between the horizontal connecting mechanism (1). The horizontal connecting mechanism (1) and the vertical connecting mechanism (2) are provided with a reinforcing mechanism (9). The reinforcing mechanism (9) is embedded in the soil through the corresponding horizontal connecting mechanism (1) and the vertical connecting mechanism (2). The soil between the horizontal connecting mechanism (1) and the vertical connecting mechanism (2) is embedded with a honeycomb grid (3).

2. The water and soil conservation structure for wind power projects according to claim 1, characterized in that: The horizontal connecting mechanism (1) includes multiple horizontal connecting blocks (4) connected end to end. The vertical connecting mechanism (2) includes multiple vertical connecting blocks (7) connected end to end. The horizontal connecting blocks (4) and the vertical connecting blocks (7) have slots (5) on all four sides. Adjacent slots (5) have a common locking block (6). The horizontal connecting blocks (4) and the vertical connecting blocks (7) have through mounting holes (8).

3. A soil and water conservation structure for wind power projects according to claim 2, characterized in that: The side of the card block (6) that is in contact with the soil is fixedly connected with a pin (12).

4. A soil and water conservation structure for wind power projects according to claim 2, characterized in that: The side of the horizontal connecting block (4) in contact with the soil is provided with a first insert (10), and the side of the vertical connecting block (7) in contact with the soil is provided with a second insert (11).

5. A soil and water conservation structure for wind power projects according to claim 1, characterized in that: The reinforcement mechanism (9) includes a connector (13), one end of which is fixedly connected to a rod (15), and a spiral blade (16) is fixedly sleeved on the rod (15). The end of the rod (15) is a pointed tip, and the other end of the connector (13) is fixedly connected to a rotating sleeve (14). The rod (15) and the spiral blade (16) sleeved on it pass through the mounting hole (8), and the connector (13) is built into the mounting hole (8).