IP Library › Granted Patent US 11,519,391
Granted Patent B2
US 11,519,391 · App. 17/421,654 · Granted Dec 6, 2022

Wind turbine and method for operating a wind turbine

Inventor: Horst Schade (Barkelsby, DE)
Assignee: Siemens Gamesa Renewable Energy Service GmbH
F03D80/50F03D13/10F05B2240/916F05B2260/301
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Quick Facts
Patent No.
US 11,519,391
App. No.
17/421,654
Granted
Dec 6, 2022
Kind
B2
Abstract

A wind turbine having a support structure and a method for operating a wind turbine. The support structure includes a structural component and a reinforcing element. The structural component has fastening holes provided for fastening an operating means. The wind turbine can be operated in at least two states. In an operating state, the reinforcing element is screwed to the fastening portion of the structural component by screw connections which are preloaded in a defined manner using the fastening holes. In a maintenance state, the screw connections are released and the reinforcing element is removed from the structural component of the support structure. A maintenance device can be connected to the fastening portion of the structural component using the fastening holes provided for fastening a maintenance device.

Claims (70)

1. A wind turbine, comprising:

a support structure comprising at least one structural component with at least one fastening portion, and at least one reinforcing element;

wherein the structural component includes a plurality of fastening holes configured for fastening an operating means;

wherein the operating means is at least one of:

a maintenance device,

a lifting tool or maintenance tool, or

a supporting device that is formed to support one or more parts of the wind turbine;

wherein the structural component is at least partially dynamically loaded during operation of the wind turbine, and at least one of the plurality of fastening holes lies in a region dynamically loaded during operation of the wind turbine;

wherein the wind turbine is convertible between at least two states, wherein a first state is an operating state and a second state is a maintenance state;

wherein, in the operating state, the reinforcing element is screwed to the fastening portion of the structural component to achieve defined pre-stressed screw connections comprising screw fastening means inserted into at least some of the plurality of fastening holes; and

wherein, in the maintenance state, the screw connections are released and the reinforcing element is removed from the structural component of the support structure, whereby an operating means can be connected to the fastening portion of the structural component via the fastening holes.

2. The wind turbine of claim 1 , wherein the structural component is at least one of:

configured to fasten an operating means for the performance of maintenance work; or

configured to fasten an operating means during the performance of maintenance work.

3. The wind turbine of claim 2 , wherein

the fastening portion of the structural component is configured to fasten an operating means.

4. The wind turbine of claim 1 , wherein:

the fastening portion has at least one functional surface; and

at least some of the fastening holes of the fastening portion extend from the functional surface.

5. The wind turbine of claim 1 , wherein the structural component is configured to be at least partially dynamically loaded under tensile stress during operation of the wind turbine.

6. The wind turbine of claim 1 , wherein at least one of:

at least one fastening hole is a through-opening or

at least one screw connection is a push-through screw connection.

7. The wind turbine of claim 1 , wherein at least one screw connection is pre-stressed in such a manner that a residual compressive stress state exists in a region around the associated fastening hole RECEIVING the screw connection in AN unloaded state of the support structure.

8. The wind turbine of claim 7 , wherein at least one screw connection is pre-stressed in a defined manner such that the residual compressive stresses induced as a result of the pre-stressing of the screw connection are great enough that over at least 50 percent of a defined design operating time, only tensile stresses with an amplitude that is reduced compared to a state without residual compressive stresses occur transversely to the fastening hole in a region adjacent to the associated fastening hole around the fastening hole during a target operation of the wind turbine.

9. The wind turbine of claim 1 , wherein the reinforcing element is configured such that, in the operating state of the wind turbine, a primary function of the reinforcing element is a reinforcement of the structural component to which the reinforcing element is screwed.

10. The wind turbine of claim 1 , wherein:

the reinforcing element includes a contact surface that rests flat against the structural component in the operating state of the wind turbine; and

the contact surface is a contiguous contact surface.

11. The wind turbine of claim 1 , wherein the reinforcing element is plate-like, has a plate shape, or is a plate.

12. The wind turbine of claim 11 , wherein:

the reinforcing element has a thickness of at least:

10 percent of an average wall thickness of the fastening portion in a region reinforced by the reinforcing element,

15 percent of the average wall thickness of the fastening portion in the reinforcing region,

20 percent of the average wall thickness of the fastening portion in the reinforcing region, or

30 percent of the average wall thickness of the fastening portion in the reinforcing region; and

the thickness of the reinforcing element is at most:

40 percent of the average wall thickness of the fastening portion in the reinforcing region,

50 percent of the average wall thickness of the fastening portion in the reinforcing region, or

100 percent of the average wall thickness of the fastening portion in the reinforcing region.

13. The wind turbine of claim 1 , wherein at least one circumferential side surface of the reinforcing element is formed as a chamfer.

14. A method for operating a wind turbine, the wind turbine comprising a support structure including at least one structural component with at least one fastening portion, and at least one reinforcing element, the structural component including a plurality of fastening holes configured for fastening an operating means, the reinforcing element screwed to the fastening portion to achieve defined pre-stressed screw connections comprising screw fastening means inserted into at least some of the plurality of fastening holes, the method comprising:

transferring the wind turbine from an operating state into a maintenance state by:

releasing the screw connections that couple the reinforcing element to the structural component,

removing the reinforcing element, and

connecting the operating means to the fastening portion of the structural component via the plurality of fastening holes,

wherein the operating means is at least one of a maintenance device, a lifting tool or maintenance tool, or a supporting device that is formed to support one or more parts of the wind turbine;

performing maintenance work on the wind turbine; and

transferring the wind turbine from the maintenance state into the operating state by:

obtaining the reinforcing element or a replacement reinforcing element, and

connecting the reinforcing element or the replacement reinforcing element to the fastening portion of the structural component by inserting screw fastening means into at least some of the fastening holes and screwing the reinforcing element or the replacement reinforcing element to the fastening portion of the structural component to achieve defined pre-stressed screw connections.

15. The method of claim 14 , wherein at least one of:

operating the wind turbine comprises maintaining the wind turbine; or

at least one of the plurality of fastening holes lies in a region that is dynamically loaded during operation of the wind turbine.

16. The method of claim 14 , further comprising:

obtaining an operating means.

17. The method of claim 16 , further comprising:

releasing the connection of the operating means to the fastening portion of the structural component; and

removing the operating means.

18. The method of claim 16 , wherein connecting the operating means to the fastening portion comprises:

inserting screw fastening means into at least some of the fastening holes; and

screwing the operating means to the structural component to achieve the defined pre-stressed screw connections.

19. A method for operating a wind turbine, wherein the wind turbine is configured according to claim 16 , the method comprising:

transferring the wind turbine from an operating state into a maintenance state by:

releasing the screw connections that couple the reinforcing element to the structural component, and

removing the reinforcing element;

performing maintenance work on the wind turbine; and

transferring the wind turbine from the maintenance state into the operating state by:

obtaining the reinforcing element or a replacement reinforcing element, and

connecting the reinforcing element or the replacement reinforcing element to the fastening portion of the structural component by inserting screw fastening means into at least some of the fastening holes and screwing the reinforcing element or the replacement reinforcing element to the fastening portion of the structural component to achieve defined pre-stressed screw connections.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 9, 2021
From: SCHADE, HORST
To: SIEMENS GAMESA RENEWABLE ENERGY SERVICE GMBH
Reel/Frame 057431/0395 →
Priority Claims (1)
DE 10 2019 000 055 · Jan 8, 2019 · national
Continuity (1)
Related Publication 20220090583A1 · Mar 24, 2022
Cited By (1)
US 12,497,952