ROTOR BEARING OF A WIND TURBINE
20220163067 · 2022-05-26
Assignee
Inventors
Cpc classification
F16C2240/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C35/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2226/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/585
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2300/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C23/086
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
F16C2360/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C35/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C23/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rotor bearing of a wind turbine, in particular a rotor bearing having an improved and simplified axial introduction of force into the inner ring. It is specified for this purpose that the inner ring of the rolling bearing has a greater axial length with respect to the axial length of the outer ring of the rolling bearing by a section of the inner ring that corresponds to the axial length of the outer ring and has the length being adjoined by additional sections, wherein the axial lengths of these sections differ in size.
Claims
1. A rotor bearing of a wind turbine, comprising: a rolling bearing including an outer ring, an inner ring and rolling bodies rolling between the outer ring and the inner ring; a rotor shaft having an axial circumferential section with a first length between two radial shoulders arranged at an axial distance from one another, said first length receives the inner ring of the rolling bearing; a rotor connected to the rotor shaft; the inner ring has a first axial section with a second length, which corresponds to an axial length of the outer ring, and has two second sections that are axially adjoined to the first section that have different axial lengths from one another.
2. The rotor bearing according to claim 1, wherein an axially longer one of the second sections of the inner ring points in a direction of the rotor connected to the rotor shaft in a connected state to the rotor shaft.
3. The rotor bearing according to claim 1, wherein the rolling bearing is a double-row spherical roller bearing, and the rolling bodies of a first roller row closer to the rotor have a smaller pressure angle α compared to a pressure angle β of the rolling bodies of a second roller row.
4. The rotor bearing according to claim 1, wherein the rolling bearing is a radially split rolling bearing.
5. The rotor bearing according to claim 4, further comprising at least two clamping ring segments that form a clamping ring in a connected state, and the inner ring is held together on the rotor shaft by two of the clamping rings which surround the second sections.
6. The rotor bearing according to claim 5, wherein the clamping rings provide at least radially outer circumferential surfaces, which form at least one sealing surface configured to cooperate with a sealing partner.
7. The rotor bearing according to claim 6, wherein the respective clamping ring segments are connected to one another by screws that extend in bores that penetrate through two adjacent ones of the clamping ring segments, and an axial extent of the respective sealing surface begins at an axially outer end of the respective clamping ring segment and ends where the respective bore penetrates said clamping ring segment.
8. The rotor bearing according to claim 7, wherein an axial extent of the clamping rings along a rotational axis of the rotor shaft, starting from a center of the bore, differs in size.
9. The rotor bearing according to claim 5, wherein circumferential ends of the clamping ring segments maintain a small mutual distance in a circumferential direction in an assembled state and the distance A is filled with a plastic or metal to form a smooth, seamless transition between two of the clamping ring segments.
10. The rotor bearing according to claim 5, further comprising seals located between the clamping rings and the second sections of the inner rings.
11. A rotor bearing of a wind turbine, comprising: a rolling bearing including an outer ring, an inner ring, and rolling bodies rolling between the outer ring and the inner ring; a rotor shaft having an axial circumferential section between two radial shoulders arranged at an axial distance from one another that receives the inner ring of the rolling bearing; a rotor connected to the rotor shaft; the inner ring has a first axial section with a length, which corresponds to an axial length of the outer ring, and two second sections that are axially adjoined to opposite axial sides of the first section that have different axial lengths from one another.
12. The rotor bearing according to claim 11, wherein an axially longer one of the second sections points in a direction of the rotor connected to the rotor shaft in a connected state to the rotor shaft.
13. The rotor bearing according to claim 11, wherein the rolling bearing is a double-row spherical roller bearing, and the rolling bodies of a first roller row closer to the rotor have a smaller pressure angle α compared to a pressure angle β of the rolling bodies of a second roller row.
14. The rotor bearing according to claim 11, wherein the rolling bearing is a radially split rolling bearing.
15. The rotor bearing according to claim 14, further comprising clamping rings, each including at least two clamping ring segments that form the clamping ring in a connected state, and the inner ring is held together on the rotor shaft by the clamping rings which respectively surround the second sections.
16. The rotor bearing according to claim 15, wherein the clamping rings include at least radially outer circumferential surfaces, which form at least one sealing surface configured to cooperate with a sealing partner.
17. The rotor bearing according to claim 16, wherein the respective clamping ring segments of each clamping ring are connected to one another by screws that extend in bores that penetrate through adjacent ones of the clamping ring segments, and an axial extent of the respective sealing surface begins at an axially outer end of the respective clamping ring segment and ends where the respective bore penetrates said clamping ring segment.
18. The rotor bearing according to claim 17, wherein an axial extent of the clamping rings along a rotational axis of the rotor shaft, starting from a center of the bore, differs in size.
19. The rotor bearing according to claim 15, wherein circumferential ends of the clamping ring segments are spaced apart in a circumferential direction in an assembled state to form a gap that is filled with a plastic or metal to form a smooth, seamless transition between the circumferential ends of the clamping ring segments.
20. The rotor bearing according to claim 15, further comprising seals located between the clamping rings and the second sections of the inner rings.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In the drawings:
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION
[0022] The embodiments will now be explained in more detail with reference to the figures.
[0023] In
[0024] In order to facilitate the replacement of the rolling bearing 3, both the inner ring 4 and the outer ring 5 are radially split, wherein each of the two bearing rings 4, 5 of two half-shells 4.1, 4.2; 5.1, 5.2 (only partially visible in
[0025] The rolling bearing 3 is connected to the rotor shaft 1 with its inner ring 4. In the present case, this is implemented in such a way that the inner ring 4 or the half-shells 4.1, 4.2 forming the inner ring 4 are placed around the rotor shaft 1. In order to preclude an axial displacement of the formed inner ring 4 along the rotor shaft 1, a shaft shoulder 7 on the rotor side is in contact with the first end faces 8.1 of the formed inner ring 4. On the circumferential section 9 of the rotor shaft 1 facing away from the rotor 2 and provided for receiving the inner ring 4, the shoulder required for axially fixing the inner ring 4 is formed by a shaft nut 9, which is tightened after the rolling bearing 3 has been mounted and therefore rests on the second end face 8.2 of the formed inner ring 4.
[0026] In order to increase this axial rigidity of the rolling bearing 3 on the rotor shaft 1 and at the same time introduce axial forces at a flat angle from the shaft shoulder 7 into the inner ring 4, the formed inner ring 4 not only has an axial length L3 that corresponds to the axial length L2 of the formed outer ring 5, but is designed to be extended in both axial directions by sections 10.1, 10.2 of length L4; 4.1, 4.2 in relation to the outer ring 5 to which it is arranged, wherein the section 10.1 extends with the greater axial length L4.1 in the direction of the rotor 2. Consequently, the circumferential section 1.1 of the rotor shaft 1, which receives the inner ring 4 between the shaft shoulder 7 and the shaft nut 8, has a length L1, i.e., L3 plus L4.1 plus L4.2 and is therefore completely filled by the inner ring 4.
[0027] In order to also fix the inner ring 4 formed from the two half-shells 4.1, 4.2 radially on the rotor shaft 1, clamping rings 11 are provided. Each of these clamping rings 11 is formed by two half-shell-shaped clamping ring segments 11.1, 11.2 which complement each other to form a ring, of which only one clamping ring segment 11.1 is visible in the selected representation in
[0028] In order to axially fix the clamping rings 11 formed on the inner ring 4, the clamping rings 11 or the clamping ring segments 11.1 (11.2) have radially inwardly pointing projections 13 which, after assembly, engage in annular grooves 14 provided in the area of sections 10.1, 10.2 on the inner ring 4. In order to improve the tightness between the inner ring 4 and the clamping rings 11, seals 20.2 in the form of O-rings are provided between the clamping rings 11 and the inner ring 4.
[0029] Bores 15 are guided through the respective clamping ring segments 11.1 (11.2), which, in the connected state, form a clamping ring 11, which—as shown for the half-shell 11.1—extend perpendicular to the paper plane. Countersunk screws 16 are screwed in through these bores 15 in order to connect the two clamping ring segments 11.1 (11.2) to form a clamping ring 11.
[0030] If the respective clamping ring segments 11.1, 11.2 are assembled to form a clamping ring 11 on the inner ring 4, an outer, annular circumferential surface 17 is created, which, in this exemplary embodiment, is in sealing contact as a sealing surface 18 with a sealing lip 19 of a contacting seal 20.1 acting as a sealing partner. In order to prevent the sealing lip 19 from wearing out because it comes into contact with the bores 15, the sealing surface 18 begins at the axially outer end 21 of the clamping ring 11 and ends where the bores 15 of diameter D penetrate the clamping rings 11. In relation to the bore 15, this means that the part of the circumferential surface 17 which serves as a sealing surface 18 has a greater axial extent than the circumferential surface on the other side of the bore 15. To better illustrate the relationships, the sealing surface 18, which begins at the axial end 21 of the clamping ring 11 and ends at the diameter D of the bore 15, is drawn to be bolder in
[0031] In
[0032]
[0033] The embodiment according to
[0034]
[0035] The variant shown in
[0036]
[0037] Even if the rolling bearing 3 is always shown as a spherical roller bearing in the exemplary embodiments, there is no definition of this type of bearing. It is also not necessary for the rotor shaft 1 to be of a wind turbine. For example, instead of the rotor shaft, other machine shafts can also be supported by the rolling bearings shown, for example where it is very difficult to remove the entire machine shaft to replace rolling bearings 3.
[0038] List of Reference Symbols
[0039] 1 Rotor shaft
[0040] 2 Rotor
[0041] 3 Rolling bearing
[0042] 4 Inner ring
[0043] 5 Outer ring
[0044] 6 Roll body
[0045] 7 Shaft shoulder
[0046] 8 End faces
[0047] 9 Shaft nut
[0048] 10 Section
[0049] 11 Clamping ring
[0050] 12 End surface
[0051] 13 Projection
[0052] 14 Annular groove
[0053] 15 Bore
[0054] 16 Screws
[0055] 17 Circumferential surface
[0056] 18 Sealing surface
[0057] 19 Sealing lip
[0058] 20 Seal
[0059] 21 Axial end
[0060] 22 Component
[0061] 23 Housing
[0062] 24 Ring nose
[0063] 25 Recesses
[0064] 26 Transition
[0065] 27 Raceway