wind turbine
By employing an axial seal that couples to the rotor carrier and abuts against the bearing's counter surface, the wind turbine's bearing sealing issues are addressed, resulting in improved sealing performance and reduced maintenance needs.
Patent Information
- Application Number
- DE202023002971
- Authority / Receiving Office
- DE · DE
- Patent Type
- Utility models
- Current Assignee / Owner
- Filing Date
- 2023-10-06
- Publication Date
- 2025-05-22
- Estimated Expiration
- 2033-10-31
AI Technical Summary
Existing wind turbine bearings are susceptible to tolerances during sealing, which can lead to leakage and reduced performance.
The implementation of an axial seal coupled to the rotor carrier, which abuts against a counter surface of the bearing, provides improved tolerance and prevents axial movement during rotation, thus ensuring effective sealing of the main bearing.
The axial seal enhances the sealing performance of the wind turbine's main bearing, reducing the risk of grease or lubricating oil leaks, minimizing maintenance needs, and increasing operational safety.
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Abstract
Description
[0001] The present invention relates to a wind turbine.
[0002] A wind turbine comprises a tower, a mainframe, and an aerodynamic rotor with a rotating rotor hub and typically three rotor blades. The rotor hub is coupled to a journal via a bearing, which in turn is non-rotatably connected to the mainframe. This bearing typically represents the main bearing of the wind turbine. This main bearing must be able to absorb very high loads during operation of the wind turbine.
[0003] It is an object of the present invention to provide a wind turbine with a bearing for the aerodynamic rotor which is less susceptible to tolerances in a seal of the bearing.
[0004] This object is achieved by a wind turbine according to claim 1.
[0005] Thus, a wind turbine is provided with an aerodynamic rotor and a machine frame. A journal may be non-rotatably attached to the machine frame. The aerodynamic rotor has a rotor hub, which is mounted on the non-rotatable journal via a main bearing. The bearing may be sealed by an axial seal. A part of the seal, for example, a sealing lip, may be axially in contact with a mating surface of the bearing.
[0006] The axially configured seal can provide a seal with improved tolerance. Furthermore, the seal can be coupled to the rotor carrier so that rotation of the rotor does not result in axial movement of the seal.
[0007] According to one aspect of the present invention, the bearing is designed as a roller bearing with an inner ring and an outer ring. The inner ring has a counter-running surface against which the seal rests.
[0008] According to one aspect, the bearing may be configured as a grease-lubricated rolling bearing. The axial seal may further serve to keep the grease for the grease-lubricated rolling bearing within the desired volume.
[0009] The axial seal has an axial face, namely the bearing's counterface. In particular, the counterface is part of the bearing's rolling element, so that an optimal surface, surface hardness, roughness, and desired twist can be ensured here.
[0010] An axial seal is advantageous over a radial seal because the axial seal is insensitive to movements in the radial direction. This is advantageous because large movements occur in the radial direction. This is caused in particular by the tolerance chain of the individual components, namely the axle journal, main bearing, rotor carrier, seal housing, etc. A radial movement of the aerodynamic rotor or rotor hub can lead to a radial movement of a radial seal. This can lead to the risk that the sealing lip can no longer follow the shaft and this leads to leakage. According to the invention, this is avoided by designing the bearing as an axial bearing. Since the rolling bearing is located in a preloaded system, the rotor hub hardly experiences any movement in the axial direction, which is advantageous for the axial direction.
[0011] The axial seal ensures that the wind turbine's main bearing is sealed against grease or lubricating oil. This can improve the seal's performance, reduce maintenance work due to grease leaks, and significantly increase occupational safety.
[0012] The seal has a seal carrier coupled to the rotor carrier. The seal or sealing lip is located on an opposite side of the seal carrier and rests against a counter-running surface. This creates a volume between the seal carrier and the bearing components that is suitable for accommodating grease for lubrication.
[0013] The seal may be circular in shape to engage the mating surface along the circumference to ensure a complete seal.
[0014] According to one aspect of the present invention, the sealing lip rests against a portion of the inner ring, so that the counter-running surface represents a portion of the inner ring. This is advantageous because it eliminates the need for an additional hardened component. Instead, the existing hardened portion of the inner ring is used as the counter-running surface for the sealing lip.
[0015] Further embodiments of the invention are the subject of the subclaims.
[0016] Advantages and embodiments of the invention are explained in more detail below with reference to the drawing. Fig. 1 shows a schematic representation of a wind turbine, Fig. 2 shows a schematic cross-section of a wind turbine, Fig. 3 shows a schematic enlarged cross-section of a main bearing according to one aspect, Fig. 4 shows a schematic enlarged section of a cross-section of a wind turbine, Fig. 5A each show a schematic cross-section of a seal, and 5B Fig. 6 shows a schematic cross-section of a bearing between a journal and a rotor hub, and Fig. 7 shows an enlarged cross section with a bearing and an axial seal.
[0017] Fig. 1 shows a schematic representation of a wind turbine. The wind turbine 100 has a tower 102 and a nacelle 104 on the tower 102. An aerodynamic rotor 106 with three rotor blades 200 and a spinner 110 is provided on the nacelle 104. During operation of the wind turbine, the aerodynamic rotor 106 is set in rotation by the wind and thus also rotates a rotor or rotor of a generator, which is directly or indirectly coupled to the aerodynamic rotor 106. The electrical generator is arranged in the nacelle 104 and generates electrical energy. The pitch angles of the rotor blades 200 can be changed by pitch motors at the rotor blade roots 200b of the respective rotor blades 200.
[0018] Fig. Figure 2 shows a schematic cross-section of a wind turbine. A machine support 120 is rotatably mounted on a tower 102 of the wind turbine 100. Connected to the machine support 120 is a journal 130, which is non-rotatably coupled to the machine support 120. The journal 130 supports a rotor hub 140 via the bearing 300. The rotor blades 200 can be attached to the rotor hub 150.
[0019] According to the invention, the bearing 300 has an axial seal 400.
[0020] Fig. 3 shows a schematic enlarged cross-section of a main bearing according to one aspect. A bearing 300, in particular a roller bearing, with an inner ring 310, an outer ring 320, and a roller bearing 330 is provided between a journal 130 and the rotor carrier 140. The inner ring 310 can be coupled to the journal 130, and the outer ring 320 can be coupled to the rotor carrier 140. Furthermore, an axial seal 400 is provided for the bearing. The axial seal has a seal 410 and a seal carrier 420. The seal carrier 420 is coupled to the rotor carrier 140 on one side 421. The seal carrier 420 is coupled to the seal 410 on a second side 422. The seal 410 bears against a counter-running surface 311.
[0021] Optionally, the counter-running surface 311 can represent part of the inner ring 310 of the bearing 300. The sealing lip 410 then rests against the inner ring 310. The bearing, on the one hand, and the seal carrier, on the other, form a volume in which grease can be provided to lubricate the roller bearing. The axial seal 410 ensures that no grease can escape from the lubrication chamber.
[0022] Fig. 4 shows a schematic enlarged section of a cross-section of a wind turbine. In Fig. Figure 4 shows a further example of the design of the main bearing and the bearing seal. The bearing 300 (in particular a roller bearing) has an inner ring 310, which can be coupled to the axle journal 130. Furthermore, the bearing 300 has an outer ring 320, which can be coupled to the rotor carrier 140. Furthermore, the bearing 300 has a roller bearing 330 between the inner and outer rings 310, 320. Furthermore, a sealing arrangement 400 is provided, which has a seal carrier 420 and a seal 410, for example in the form of a sealing lip. The sealing lip 410 can bear against a counter-running surface 311. The counter-running surface 311 can be part of the inner ring 310.
[0023] Fig. 5A and Fig. 5B each show a schematic cross-section of a seal. The sealing arrangement 400 has a sealing lip 410 and a seal carrier 420, which can be attached, for example, to a rotor carrier 140. The seal 410 can have two sealing lips 411, each of which rests against the counter-running surface 311.
[0024] Fig. 6 shows a schematic cross-section of a bearing between a journal and a rotor carrier. In Fig. 6 shows two bearings, each with an inner ring 310, an outer ring 320, and a roller bearing 330. A sealing arrangement with a seal carrier 420 and a seal 410 is provided on both sides. The sealing lips 411 each bear against counter-running surfaces 311.
[0025] Fig. 7 shows an enlarged cross-section with a bearing and an axial seal. In Fig.7 shows an enlarged view of the bearing area. The bearing 300 has an inner ring 310, an outer ring 320, and a roller bearing 330. Furthermore, a seal 410 with a seal carrier 420 and a sealing lip 411 is provided, which can bear against a counter-running surface 311. The counter-running surface 311 is preferably part of the inner ring. The seal carrier 420 is, for example, attached to the rotor carrier 140, so that the seal carrier 420 rotates together with the rotor carrier 140. This also results in a circular rotation of the seal 410. List of reference symbols 100 wind turbines 102 Tower 104 gondolas 106 Rotor 110 spinners 120 machine carriers 130 axle journals 140 rotor carrier 150 rotor hub 200 rotor blades 200b rotor blade roots 300 warehouses 310 inner ring 311 Counterface 320 outer ring 330 roller bearings 400 axial seal 410 Seal 411 sealing lips 420 seal carrier 421 first page 422 second page
Claims
[1] Wind turbine (100), with a rotor (106) having a rotor carrier (140) with a first and second end, a machine carrier (110), an axle journal (130) having a first and second end, which is non-rotatably coupled to the machine carrier (110), two pivot bearings (300) between the axle journal (130) and the rotor carrier (140), wherein a first pivot bearing (300) is provided between the first end of the rotor carrier (140) and the first end of the axle journal (130) and a second pivot bearing (300) is provided between the second end of the rotor carrier (140) and the second end of the axle journal (130), and a first and second seal (400), each designed as an axial seal and having a sealing lip (411) which bears against a counter-running surface (311) which is part of the pivot bearing (300), wherein the first seal (400) bears against a counter-running surface (311) of the first pivot bearing (400), wherein the second seal (400) bears against a counter-running surface (311) of the second pivot bearing (400). [2] Wind turbine (100) according to claim 1, wherein the bearing (300) comprises an inner ring (310), an outer ring (320) and a roller bearing (330), wherein the counter-running surface (311) forms part of the inner ring (310). [3] Wind turbine (100) according to claim 1 or 2, wherein the seal (400) has a seal carrier (420) which is fastened to the rotor carrier (140) and presses a sealing lip (410) against the counter-running surface (311).