Anti-inclination stable supporting device for wind power generation tower
By combining a pre-embedded base and a clamping device, the problem of tilting wind turbine tower columns is solved, enabling efficient installation without the need for frequent verticality checks.
Patent Information
- Application Number
- CN202520173105.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-25
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2035-01-25
AI Technical Summary
When installing wind turbine towers, the base columns are prone to tilting, which requires frequent checks on verticality, affecting the installation progress and work efficiency.
The system adopts a combination structure of pre-embedded base, support device and clamping device. The base column is fixed by the clamping device driven by motor, ensuring that the verticality does not need to be checked frequently.
This eliminates the need to re-check the verticality of the base column during installation, improving installation efficiency and ease of operation.
Smart Images

Figure CN223562971U_ABST
Abstract
Description
Technical fields:
[0001] This utility model belongs to the technical field of wind power tower support equipment, specifically relating to a wind power tower anti-tilting and stabilizing support device. Background technology:
[0002] When installing wind turbine towers, workers can easily bump into the base columns below, causing them to tilt. This requires workers to re-check the verticality of the base columns before fixing them, which slows down the installation process, requires a lot of time for workers to check, and is inconvenient for workers to operate and use, as well as reducing the efficiency of the rubber pads. Utility Model Content:
[0003] The purpose of this utility model is to ensure that the base column is firmly fixed to the ground during the installation of wind turbine towers, eliminating the need to re-check verticality during the mounting process, and reducing the number of times workers need to check verticality during installation. This facilitates operation and improves work efficiency. The technical solution is as follows:
[0004] A wind power tower anti-tilt stabilization support device, characterized in that it includes a pre-embedded base 1 and a mounting base plate 2 connected to the middle of the upper surface of the pre-embedded base 1. A motor housing 3 is connected to the center of the upper surface of the mounting base plate 2. A protective base column 4 is connected to the center of the upper surface of the motor housing 3. A support device 5 is connected to the middle of the upper surface of the outer side surface of the protective base column 4. A clamping device 6 is inserted into the middle of the upper surface of the protective base column 4. A lifting hook 7 is connected to the center of the upper surface of the protective base column 4. The embedded base 1 includes a column 1-1, a crossbeam 1-2, a support plate 1-3, and a sleeve 1-4. A crossbeam 1-2 is connected to the lower part of the side surface of the column 1-1 at both the top and bottom. A support plate 1-3 is connected between the side surfaces of the two crossbeams 1-2 at the middle. A sleeve 1-4 is connected to the middle of the outer surface of each of the two crossbeams 1-2. The mounting base 2 is connected to the center of the upper surface of the column 1-1. The two sleeves 1-4 are positioned correspondingly to each other. The support device 5 includes a vertical plate 5-1, a rubber pad 5-2, and a support column. 5-3 and diagonal brace 5-4, a rubber pad 5-2 is connected to the middle of the inner surface of the upright plate 5-1, and pillars 5-3 are symmetrically connected to the left side of the outer surface of the upright plate 5-1. A diagonal brace 5-4 is connected between the inner surfaces of the two pillars 5-3. The upright plate 5-1 is semi-circular in shape. The rubber pad 5-2 is connected to the middle of the inner surface of the front surface of the upright plate 5-1. The left side surface of the pillar 5-3 is connected to the outer surface of the protective base column 4. The clamping device 6 includes a clamping plate 6-1 and a connecting column 6-2. The rotating column 6-3 and the rolling ball 6-4 are connected to the middle of the inner surface of the clamping plate 6-1 and the middle of the inner surface of the clamping plate 6-2. The rotating column 6-3 is connected to the middle of the inner surface of the clamping plate 6-2. The rolling ball 6-4 is inserted into the center of the upper surface of the rotating column 6-3. The clamping plate 6-1 is semi-circular. The concave surface of the clamping plate 6-1 is opposite to the concave surface of the upright plate 5-1. The lower surface of the rotating column 6-3 is connected to the rotating end of the motor inside the motor housing 3. The rolling ball 6-4 is in contact with the upper surface of the inner surface of the protective base column 4.
[0005] The beneficial effects of this utility model are: when installing wind turbine towers, the base column can be firmly placed on the ground; when fixing the towers, there is no need to re-inspect the verticality; and the number of times workers need to inspect the verticality during installation can be reduced, making it more convenient for workers to operate and improving work efficiency. Attached image description:
[0006] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0007] Figure 2 This is a schematic diagram of the pre-embedded base 1 of this utility model;
[0008] Figure 3 This is a schematic diagram of the support device 5 of this utility model;
[0009] Figure 4 This is a schematic diagram of the clamping device 6 of this utility model;
[0010] In the diagram: 1. Embedded base; 2. Mounting base plate; 3. Motor housing; 4. Protective base column; 5. Support device; 6. Clamping device; 7. Lifting hook; 1-1. Column; 1-2. Horizontal beam; 1-3. Support plate; 1-4. Sleeve; 5-1. Vertical plate; 5-2. Rubber pad; 5-3. Support column; 5-4. Diagonal brace; 6-1. Clamping plate; 6-2. Connecting column; 6-3. Rotating column; 6-4. Rolling ball. Detailed implementation method:
[0011] Reference Figure 1 Figure 2 Figure 3 Figure 4 The wind power tower anti-tilt stabilization support device is characterized by comprising: a pre-embedded base 1 and an installation base plate 2 connected to the middle of the upper surface of the pre-embedded base 1; a motor housing 3 connected to the center of the upper surface of the installation base plate 2; a protective base column 4 connected to the center of the upper surface of the motor housing 3; a support device 5 connected to the middle of the upper surface of the outer side surface of the protective base column 4; and a clamping device 6 inserted inside the middle of the upper surface of the protective base column 4. A lifting hook 7 connected to the center of the upper surface of the protective base column 4. The pre-embedded base 1 includes a column 1-1, a crossbeam 1-2, a support plate 1-3, and a sleeve 1-4. A crossbeam 1-2 is connected to the lower part of the side surface of the column 1-1 at both the top and bottom. A support plate 1-3 is connected between the side surfaces of the two crossbeams 1-2 at the middle. A sleeve 1-4 is connected to the middle of the outer surface of each of the two crossbeams 1-2. The mounting base 2 is connected to the center of the upper surface of the column 1-1. The two sleeves 1-4 are positioned correspondingly. The support device 5 includes a vertical plate 5-1, a rubber pad 5-2, and a support... The vertical plate 5-1 has a semi-circular arc shape. The rubber pad 5-2 is connected to the middle of the inner surface of the vertical plate 5-1. The left side of the outer surface of the vertical plate 5-1 is symmetrically connected to the vertical plate 5-3. The diagonal brace 5-4 is connected between the inner surfaces of the two vertical plates 5-3. The vertical plate 5-1 is connected to the middle of the front surface of the vertical plate 5-1. The left side of the vertical plate 5-3 is connected to the outer surface of the protective base column 4. The clamping device 6 includes a clamping plate 6-1 and a connecting column 6-2. The rotating column 6-3 and the rolling ball 6-4 are connected to the middle of the inner surface of the clamping plate 6-1 and the middle of the inner surface of the clamping plate 6-2. The rotating column 6-3 is connected to the middle of the inner surface of the clamping plate 6-2. The rolling ball 6-4 is inserted into the center of the upper surface of the rotating column 6-3. The clamping plate 6-1 is semi-circular. The concave surface of the clamping plate 6-1 is opposite to the concave surface of the upright plate 5-1. The lower surface of the rotating column 6-3 is connected to the rotating end of the motor inside the motor housing 3. The rolling ball 6-4 is in contact with the upper surface of the inner surface of the protective base column 4.
[0012] 1. Embedded base; 2. Mounting base plate; 3. Motor housing; 4. Protective base column; 5. Support device; 6. Clamping device; 7. Lifting hook; 8. Column 1-1; 9. Horizontal beam; 10. Support plate; 11. Sleeve; 12. Vertical plate; 5. Rubber pad; 5. Support column; 5. Diagonal brace; 6. Clamping plate; 6. Connecting column; 6. Rotating column; 6. Ball bearing; 6.
[0013] In use, first, the column 1-1 on the pre-embedded base 1 is placed in the foundation pit. Then, the wind turbine tower column is placed in the foundation pit and inserted into the two sleeves 1-4. Then, concrete is poured into the foundation pit and left to dry. When the concrete dries, the two crossbeams 1-2 and the support plate 1-3 support the column 1-1 and keep the column 1-1 parallel to the wind turbine tower column. Then, the workers install the motor housing 3 on the mounting base plate 2. At the same time, the upright plate 5-1 on the support device 5 is inserted into the side surface of the wind turbine tower column. Then, the workers start the motor in the motor housing 3 to rotate. At the same time, the rotating end of the motor drives the rotating column 6-3 on the clamping device 6 to rotate and the ball 6-4 rolls in the rotating column 6-3. Finally, the connecting column 6-2 drives the clamping plate 6-1 to rotate. At the same time, the clamping plate 6-1 and the upright plate 5-1 cooperate to clamp the wind turbine tower column.
[0014] During use, the support is provided by connecting 6-2 and pillar 5-3, and diagonal brace 5-4 to prevent the wind turbine tower base from tilting.
[0015] Of course, the above description is not intended to limit the present utility model, and the present utility model is not limited to the examples given above. Any changes, modifications, additions or substitutions made by those skilled in the art within the scope of the present utility model should also fall within the protection scope of the present utility model.
Claims
1. A wind power generation tower anti-tilt stabilization support device, characterized in that: It includes a pre-embedded base (1) and an installation base plate (2) connected to the middle of the upper surface of the pre-embedded base (1). A motor housing (3) is connected to the center of the upper surface of the installation base plate (2). A protective base column (4) is connected to the center of the upper surface of the motor housing (3). A support device (5) is connected to the middle of the outer surface of the protective base column (4). A clamping device (6) is inserted inside the middle of the side surface of the protective base column (4). A lifting hook (7) is connected to the center of the upper surface of the protective base column (4).
2. The anti-tilting and stabilizing support device for wind power towers according to claim 1, characterized in that: The pre-embedded base (1) includes a column (1-1), a crossbeam (1-2), a support plate (1-3), and a sleeve (1-4). The column (1-1) is connected to the lower side surface of each of the two crossbeams (1-2) at the top and bottom. The support plate (1-3) is connected between the side surfaces of the two crossbeams (1-2). The sleeve (1-4) is connected between the outer side surfaces of the two crossbeams (1-2). The mounting base (2) is connected to the center of the upper surface of the column (1-1). The two sleeves (1-4) are positioned corresponding to each other.
3. The anti-tilting and stabilizing support device for wind power towers according to claim 2, characterized in that: The support device (5) includes a vertical plate (5-1), a rubber pad (5-2), a column (5-3), and a diagonal brace (5-4). The rubber pad (5-2) is connected to the middle of the inner surface of the vertical plate (5-1). The column (5-3) is symmetrically connected to the left side of the outer surface of the vertical plate (5-1). The diagonal brace (5-4) is connected between the inner surfaces of the two columns (5-3). The vertical plate (5-1) is semi-circular. The rubber pad (5-2) is connected to the middle of the front surface of the vertical plate (5-1). The left side surface of the column (5-3) is connected to the outer surface of the protective base column (4).
4. The anti-tilting and stabilizing support device for wind power towers according to claim 3, characterized in that: The clamping device (6) includes a clamping plate (6-1), a connecting column (6-2), a rotating column (6-3), and a ball (6-4). The connecting column (6-2) is connected to the middle of the inner surface of the clamping plate (6-1), and the rotating column (6-3) is connected to the middle of the inner surface of the connecting column (6-2). The ball (6-4) is inserted into the center of the upper surface of the rotating column (6-3). The clamping plate (6-1) is semi-circular in shape, and the concave surface of the clamping plate (6-1) is opposite to the concave surface of the upright plate (5-1). The lower surface of the rotating column (6-3) is connected to the rotating end of the motor inside the motor housing (3). The ball (6-4) is in contact with the upper surface of the inner surface of the protective base column (4).