NACELLE FOR A WIND TURBINE
20210396216 ยท 2021-12-23
Assignee
Inventors
- Gunther HAGER (Micheldorf, AT)
- Johannes Sebastian HOELZL (Berg im Attergau, AT)
- Johannes REISENBERGER (Ohlsdorf, AT)
Cpc classification
F05B2240/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C23/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C35/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/105
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2300/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2360/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F03D80/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rotor bearing for bearing a rotor hub on a nacelle housing of a nacelle for a wind turbine has at least one inner ring element and at least one outer ring element, wherein at least one sliding bearing element is arranged between the inner ring element and the outer ring element, which sliding bearing element is fastened to the inner ring element or to the outer ring element. On the sliding bearing element, a sliding surface is formed, which cooperates with a counterface, which is coupled with that ring element, to which the sliding bearing element is not fastened. The counterface is designed to be resilient.
Claims
1. A rotor bearing (8) for bearing a rotor hub (6) on a nacelle housing (4) of a nacelle (2) for a wind turbine (1), wherein the rotor bearing (8) has at least one inner ring element (12) and at least one outer ring element (13), wherein at least one sliding bearing element (14, 15) is arranged between the inner ring element (12) and the outer ring element (13), which sliding bearing element (14, 15) is fastened to the inner ring element (12) or to the outer ring element (13), wherein a sliding surface (19) is formed on the sliding bearing element (14, 15), which sliding bearing element (19) cooperates with a counterface (22), which is coupled with that ring element (12, 13) to which the sliding bearing element (14, 15) is not fastened, wherein the counterface (22) is designed to be resilient.
2. The rotor bearing (8) according to claim 1, wherein the counter-face (22) is coupled with a spring element (27), which is fastened to that ring element (12, 13), to which the sliding bearing element (14, 15) is not fastened.
3. The rotor bearing (8) according to claim 1 or 2, claim 1, wherein a section of that ring element (12, 13), on which the counterface (22) is formed, has a resilient region (26).
4. The rotor bearing (8) according to claim 3, wherein both the inner ring element (12) and the outer ring element (13) are designed to be V-shaped, and a first sliding bearing element (14) and a second sliding bearing element (15) are formed to be axially spaced apart from each other, which sliding bearing elements (14, 15) are arranged between the ring elements (12, 13), wherein on that ring element (12, 13), on which the counterface (22) is arranged, a first flank (23) and a second flank (24) is formed, wherein on each of the two flanks (23, 24), one of the counterfaces (22) is formed, wherein the flanks (23, 24) are each designed to be elastically resilient.
5. The rotor bearing (8) according to claim 1, wherein the counterface (22) is resiliently coupled with the ring element (12, 13) by means of a joint (28).
6. The rotor bearing (8) according to claim 1, wherein the counterface (22) is arranged on a flexible structure (30), so that the counterface (22) is designed to be resilient in itself.
7. The rotor bearing (8) according to claim 6, wherein the flexible structure (30) comprises a layer (32) which has a layer thickness (33) of between 0.1 mm and 15 mm, in particular between 1 mm and 10 mm, preferably between 2 mm and 4 mm, wherein the counterface (22) is formed on the layer (32), wherein a support cushion (34) is formed under the layer (32).
8. The rotor bearing (8) according to claim 7, wherein the support cushion (34) comprises a viscous material.
9. A nacelle (2) for a wind turbine (1), the nacelle (2) comprising: a nacelle housing (4); a rotor hub (6); a rotor bearing (8) for bearing the rotor hub (6) on the nacelle housing (4), wherein the rotor bearing (8) is formed according to claim 1.
10. A wind turbine (1) having a nacelle (2), the nacelle (2) comprising: a nacelle housing (4); a rotor hub (6) with rotor blades arranged thereon; a rotor bearing (8) for bearing the rotor hub (6) on the nacelle housing (4), wherein the rotor bearing (8) is formed according to claim 1.
Description
[0026] These show in a respectively very simplified schematic representation:
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035] First of all, it is to be noted that in the different embodiments described, equal parts are provided with equal reference numbers and/or equal component designations, where the disclosures contained in the entire description may be analogously transferred to equal parts with equal reference numbers and/or equal component designations. Moreover, the specifications of location, such as at the top, at the bottom, at the side, chosen in the description refer to the directly described and depicted figure and in case of a change of position, these specifications of location are to be analogously transferred to the new position.
[0036]
[0037] Moreover, a rotor 5 is formed, which has a rotor hub 6 with rotor blades 7 arranged thereon. The rotor hub 6 is considered part of the nacelle 2. The rotor hub 6 is received so as to be rotatable on the nacelle housing 4 by means of a rotor bearing 8.
[0038] The rotor bearing 8, which serves for bearing the rotor hub 6 on the nacelle housing 4 of the nacelle 2, is configured for absorbing a radial force 9, an axial force 10 and a tilting torque 11. The axial force 10 is caused by the force of the wind. The radial force 9 is caused by the weight force of the rotor 5 and is effective at the center of gravity of the rotor 5. As the center of gravity of the rotor 5 is outside the rotor bearing 8, the tilting torque 11 is generated in the rotor bearing 8 by the radial force 9. The tilting torque 11 may also be caused by an uneven load of the rotor blades 7.
[0039] The rotor bearing 8 according to the invention can have a diameter of 0.5 m to 5 m, for example. Of course, it is also conceivable that the rotor bearing 8 is smaller or larger.
[0040]
[0041] As can be seen from
[0042] In a further exemplary embodiment that is not depicted, it may of course also be provided that the inner ring element 12 is received directly on the rotor hub 6.
[0043] In yet another exemplary embodiment that is not depicted, it may of course also be provided that the inner ring element 12 is fastened to the nacelle housing 4, and that the rotor hub 6 is coupled with the outer ring element 13.
[0044] As can be seen from
[0045] As can be seen from
[0046] In an embodiment variant that is not depicted, it may also be provided that the sliding bearing element 14, 15 is formed between the two ring elements 12, 13 as a radial bearing and/or as an axial bearing.
[0047] As can also be seen from
[0048] In an exemplary embodiment that is not depicted, it is of course also conceivable that the inner ring element 12 does not form a groove as shown in the exemplary embodiment of
[0049] In particular, it may be provided that the sliding bearing elements 14, 15 are arranged about a rotor axis 20.
[0050] Moreover, it may be provided that the sliding bearing element 14, 15 comprises multiple sliding bearing pads 21 which are arranged so as to be distributed across the circumference. The individual sliding bearing pads 21 can be coupled with and/or fastened on the inner ring element 12 by means of the fastening means 18. In particular, it may be provided that the individual sliding bearing pads 21 are independently releasable from the inner ring element 12 by means of the fastening means 18. Thereby, the individual sliding bearing pads 21 can be removed from their operating position and/or be replaced individually and independently of each other.
[0051] As can further be seen from
[0052] Moreover, it may be provided that a wall thickness 25 of the flanks 23, 24 is selected to be so small that the flanks 23, 24 are designed to be elastically resilient.
[0053]
[0054] As can be seen from
[0055]
[0056] As can be seen from
[0057]
[0058] As can be seen from
[0059]
[0060]
[0061]
[0062] As can be seen from
[0063]
[0064] As can be seen from
[0065] As an alternative thereto, it may also be provided that the layer 32 is formed by another type of material, which is applied to the support cushion 34. For example, it may be provided that the layer 32 is designed in the form of an anti-friction varnish, which is applied to the support cushion 34. In this regard, it may be provided in particular that the material of the layer 32 is designed to be deformable.
[0066] In the exemplary embodiments from
[0067] The exemplary embodiments show possible embodiment variants, and it should be noted in this respect that the invention is not restricted to these particular illustrated embodiment variants of it, but that rather also various combinations of the individual embodiment variants are possible and that this possibility of variation owing to the teaching for technical action provided by the present invention lies within the ability of the person skilled in the art in this technical field.
[0068] The scope of protection is determined by the claims. However, the description and the drawings are to be adduced for construing the claims. Individual features or feature combinations from the different exemplary embodiments shown and described may represent independent inventive solutions. The object underlying the independent inventive solutions may be gathered from the description.
[0069] All indications regarding ranges of values in the present description are to be understood such that these also comprise random and all partial ranges from it, for example, the indication 1 to 10 is to be understood such that it comprises all partial ranges based on the lower limit 1 and the upper limit 10, i.e. all partial ranges start with a lower limit of 1 or larger and end with an upper limit of 10 or less, for example 1 through 1.7, or 3.2 through 8.1, or 5.5 through 10.
[0070] Finally, as a matter of form, it should be noted that for ease of understanding of the structure, elements are partially not depicted to scale and/or are enlarged and/or are reduced in size.
LIST OF REFERENCE NUMBERS
[0071]
TABLE-US-00001 1 wind turbine 2 nacelle 3 tower 4 nacelle housing 5 rotor 6 rotor hub 7 rotor blade 8 rotor bearing 9 radial force 10 axial force 11 tilting torque 12 inner ring element 13 outer ring element 14 first sliding bearing element 15 second sliding bearing element 16 rotor shaft 17 angle 18 fastening means 19 sliding surface 20 rotor axis 21 sliding bearing pad 22 counterface 23 first flank 24 second flank 25 wall thickness of the flank 26 resilient region 27 spring element 28 joint 29 support element 30 flexible structure 31 cavity 32 layer 33 layer thickness 34 support cushion