Nacelle main frame structure and drive train assembly for a wind turbine
10060416 ยท 2018-08-28
Assignee
Inventors
Cpc classification
F03D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/728
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
F03D13/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D9/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2250/313
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/88
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/14
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
F03D13/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A nacelle main frame structure and drive train assembly (10) for mounted on a tower (2) of a wind turbine (1). The nacelle main frame structure and drive train assembly (10) comprise a nacelle main frame structure (3) and at least part of a drive train (4). The at least part of the drive train (4) comprises a first connection interface (11) with the nacelle main frame structure (3) at a rotor side (R) of the nacelle main frame structure and drive train assembly (10) and a second connection interface (13) with the nacelle main frame structure (3). The second connection interface (13) is axially displaced with respect to the first connection interface (11) with respect to a direction away from the rotor side (R).
Claims
1. A nacelle main frame structure and drive train assembly for being mounted on a tower of a wind turbine, the nacelle main frame structure and drive train assembly comprising a single unit nacelle main frame structure and at least part of a drive train, wherein the at least part of the drive train comprises at least one of a gear box, a generator, and a ring gear; and the single unit nacelle main frame structure comprises: a first part comprising a first ring having a rotor side and a drive train side, the drive train side facilitates coupling the at least part of the drive train with the single unit nacelle main frame structure via a first connection interface and only a single main bearing facilitates coupling a rotor to the nacelle main frame structure and drive train assembly; a second part comprising a second ring which facilitates connection with the tower and the second part is designed to support a second connection interface comprising a third ring for surrounding the at least part of the drive train remote from the first connection interface; and an arcuate portion of the first ring and an arcuate portion of the second ring being joined along a curved surface integrally and permanently forming the single unit nacelle main frame structure; a third connection interface facilitates coupling of the rotor of the wind turbine to the at least part of the drive train, and the third connection interface is surrounded by the first part and axially aligned with the rotor and the at least part of drive train; a first end portion of the drive train being supported by the first connection interface of the first part while a second end portion of the drive train being supported by the third ring of the second connection interface; and the first ring being parallel with respect to the third ring and the first ring being substantially perpendicular to the second ring in order to transfer a rotor load from a horizontal axis of the rotor in a direction toward the tower.
2. The nacelle main frame structure and drive train assembly according to claim 1, wherein the first connection interface is oriented in a direction substantially perpendicular to an axis of the drive train, the second connection interface is oriented in a direction substantially parallel to an axis of the drive train, and the first part is only integrally and permanently connected to the second part along a perimeter portion of the first part that is adjacent to a perimeter portion of the second part while a perimeter portion of the first part, that is spaced from the second part, and a perimeter portion of the second part, that is spaced from the first part, remain unconnected with one another.
3. The nacelle main frame structure and drive train assembly according to claim 1, wherein the single main bearing for supporting the rotor of the wind turbine is connected to a flange which forms at least part of the drive train.
4. The nacelle main frame structure and drive train assembly according to claim 1, wherein the single main bearing is connected to the rotor of the wind turbine via an outer ring of the single main bearing.
5. The nacelle main frame structure and drive train assembly according to claim 1, wherein the single main bearing is connected to the rotor of the wind turbine via an inner ring of the single main bearing.
6. The nacelle main frame structure and drive train assembly according to claim 1, wherein the third connection interface is axially aligned with the at least part of the drive train and comprises a ring having an outer diameter smaller than an inner diameter of the first part.
7. The nacelle main frame structure and drive train assembly according to claim 1, wherein the at least part of the drive train comprises both the gearbox and the generator.
8. The nacelle main frame structure and drive train assembly according to claim 1, wherein the at least part of the drive train only comprises the generator.
9. The nacelle main frame structure and drive train assembly according to claim 1, wherein the third connection interface couples the rotor to a flange, and the rotor is supported on a first side of the first part while the flange abuts against an opposed second surface of the first part which is opposite to the rotor.
10. The nacelle main frame structure and drive train assembly according to claim 1, wherein the gearbox is located between the first ring and the third ring.
11. The nacelle main frame structure and drive train assembly according to claim 1, wherein the ring gear is located between the first ring and the third ring.
12. A nacelle main frame structure and drive train assembly for being mounted on a tower of a wind turbine, the nacelle main frame structure and drive train assembly comprising: a single unit nacelle main frame structure and at least part of a drive train; the single unit nacelle main frame structure comprising: a first part comprising a first ring defining a rotor side and a drive train side, the drive train side facilitates coupling the at least part of the drive train with the single unit nacelle main frame structure via a first connection interface and only a single main bearing facilitates coupling a rotor with the nacelle main frame structure and drive train assembly; a second part of the single unit nacelle main frame structure comprising a second ring which facilitates connection of the nacelle main frame structure and drive train assembly with a tower, and the second part being designed to support a second connection interface comprising a third ring for surrounding the at least part of the drive train remote from the first connection interface; an arcuate portion of the first part and an arcuate portion of the second part being joined along a curved surface integrally and permanently forming the single unit nacelle main frame structure; and a third connection interface facilitating coupling of the rotor of the wind turbine to a flange of the drive train, the third connection interface being axially aligned with the rotor and the flange of the drive train and being surrounded by the first part, and the flange abutting against the drive train side of the first part which is opposite to the rotor side of the first part.
13. The single unit nacelle main frame structure and drive train assembly according to claim 12, wherein the single main bearing is connected to the first part of the single unit nacelle main frame structure.
14. The single unit nacelle main frame structure and drive train assembly according to claim 12, wherein the single main bearing is connected to the flange of the at least part of a drive train.
15. The single unit nacelle main frame structure and drive train assembly according to claim 12, wherein the third connection interface has an outer diameter which is smaller than an inner diameter of the first part.
16. The single unit nacelle main frame structure and drive train assembly according to claim 14, wherein the single main bearing is connected to the rotor of the wind turbine via an outer ring of the single main bearing which surrounds the third connection interface.
17. The single unit nacelle main frame structure and drive train assembly according to claim 14, wherein the single main bearing is connected to the rotor of the wind turbine via an inner ring of single main bearing which surrounds the third connection interface.
18. A nacelle main frame structure and drive train assembly for being mounted on a tower of a wind turbine, the nacelle main frame structure and drive train assembly comprising a single unit nacelle main frame structure and at least part of a drive train, the single unit nacelle main frame structure comprising: a first part comprising a first ring having a drive train side and a rotor side where the drive train side facilitates coupling the at least part of the drive train with the single unit nacelle main frame structure via a first connection interface and only a single main bearing facilitates coupling a rotor with the nacelle main frame structure and drive train assembly; a second part comprising a second ring for coupling the nacelle main frame structure with the tower and a second connection interface, the second connection interface supporting a third ring for supporting at least one of a gear box and a generator remote from the first part of the nacelle main frame structure; and an arcuate portion of the first ring and an arcuate portion of the second ring being joined along a curved surface integrally and permanently forming the single unit nacelle main frame structure, the single unit nacelle main frame structure is configured to transfer a rotor load from a horizontal axis of the rotor in a direction toward the tower by having the first part be less than but substantially perpendicular to the second part and the first ring and the third ring being parallel with respect to each other; a third connection interface facilitating a coupling of the rotor of the wind turbine to the at least part of the drive train via a drive train flange, and the third connection interface being axially aligned with the rotor and the at least part of drive train; and the at least part of the drive train comprising at least one of the gear box, the generator, and a ring gear.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) It has to be noted that same reference signs in the different figures refer to same, similar or analogous elements.
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(6) In the description different embodiments will be used to describe the invention. Therefore reference will be made to different drawings. It has to be understood that these drawings are intended to be non-limiting, the invention is only limited by the claims. The drawings are thus for illustrative purposes, the size of some of the elements in the drawings may be exaggerated for clarity purposes.
(7) The term comprising is not to be interpreted as limiting the invention in any way. The term comprising, used in the claims, is not intended to be restricted to what means is described thereafter; it does not exclude other elements, parts or steps.
(8) The term connected as used in the claims and in the description has not to be interpreted as being restricted to direct connections, unless otherwise specified. Thus, part A being connected to part B is not limited to part A being in direct contact to part B, but also includes indirect contact between part A and part B, in other words also includes the case where intermediate parts are present in between part A and part B. Not all embodiments of the invention comprise all features of the invention. In the following description and claims, any of the claimed embodiments can be used in any combination.
(9) The present invention will be described by means of different embodiments. It has to be understood that these embodiments are only for the ease of understanding the invention and are not intended to limit the invention in any way.
(10) The present invention provides a nacelle main frame structure and drive train assembly for being mounted on a tower of a wind turbine. The nacelle main frame structure and drive train assembly comprises a nacelle main frame structure and at least part of a drive train. According to the invention, the at least part of the drive train comprises a first connection interface with the nacelle main frame structure at a rotor side of the nacelle main frame structure and drive train assembly and a second connection interface with the nacelle main frame structure which is axially displaced with respect to the first connection interface as considered in a direction away from the rotor side.
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(13) The drive train 4 has a first connection interface 11 with the nacelle main frame structure 3 at the first part 3a of the nacelle main frame structure 3. Hence, the first interconnection interface 11 is located at a rotor side R of the nacelle main frame structure and drive train assembly 10. The rotor side R of the nacelle main frame structure and drive train assembly 10 is that side of the nacelle main frame structure and drive train assembly 10 which is for connecting to the rotor 7 of the wind turbine 1. The drive train 4 may be connected to the first part 3a of the nacelle main frame structure 3 by means of a flange 12. The first connection interface 11 is oriented in a direction substantially perpendicular to the axis A of the drive train 4. Or in other words, the first connection interface 11 is oriented in a direction substantially parallel to an axis B of the tower 2 of the wind turbine 1.
(14) A second connection interface 13 between the nacelle main frame structure 3 and the drive train 4 is with the second part 3b of the nacelle main frame structure 3. The second connection interface 13 is axially displaced with respect to the first connection interface 11 as considered in a direction away from the rotor side R. According to embodiments of the invention, and as illustrated in
(15) The first connection interface is different from the second connection interface. In other words, the first and second connection interfaces are formed independently from each other. Hence, the first and second connection interfaces do not form one and a same connection interface, but are really two separate connection interfaces. This means that the first connection interface and the second connection interface do not overlap or do not directly contact each other.
(16) The nacelle main frame structure and drive train assembly 10 according to embodiments of the invention may furthermore comprise at least one main bearing 14 for supporting the rotor 7 of the wind turbine 1. As can be seen from
(17) As known by a person skilled in the art, conventional bearings have an inner ring and an outer ring with in between bearing rollers. In the examples given in
(18) According to other embodiments of the invention, the main bearing 14 may be adapted for being connected to the rotor 7 of the wind turbine 1 via its inner ring. In other words, when a nacelle main frame structure and drive train assembly 10 according to such embodiments is mounted in a wind turbine 1, the main bearing 14 may be connected to the rotor 7 via its inner ring. This is illustrated in
(19) Because according to the embodiments illustrated in
(20) According to other embodiments, however, the at least one main bearing 14 for supporting the rotor 7 may also be located on the drive train 4. This is illustrated in
(21) According to further embodiments of the invention and as can be seen from
(22) In the above described embodiments, the drive train 4 always comprised a gearbox 5 and a generator 6. However, according to other embodiments of the invention, the drive train 4 may comprise only a generator 6. This is illustrated in
(23) Furthermore, in the above described embodiments, the nacelle main frame structure and drive train assembly 10 is illustrated as always comprising the complete drive train 4. However, according to other embodiments of the invention, the nacelle main frame structure and drive train assembly 10 may only comprise part of the drive train 4. For example and as illustrated in
(24) As a consequence of the design of a nacelle main frame structure and drive train assembly 10 according to embodiments of the invention and as described above, a majority of all rotor loads will be transferred from the rotor 7 via the drive train 4 to the tower 2 of the wind turbine 1. With rotor loads is meant all loads and forces originating from the movement and weight of the rotor 7 of the wind turbine 1. With a majority of the rotor loads being transferred over the drive train 4 is meant that the biggest part of the rotor loads will be transferred over the drive train 4, but there will be also a minor part of the rotor loads that still will be transferred over the nacelle main frame structure 3. However, that part of the rotor loads that still will be transferred over the nacelle main frame structure 3 will be much smaller than currently is the case for prior art nacelle main frame structure and drive train assemblies.
(25) Rotor loads coming from the rotor 7 are first transferred to the main bearing 14. At the location of the main bearing 14, the first connection interface 11 between the nacelle main frame structure 3 and the drive train 4 is located. Because of that, the rotor loads are transferred from the main bearing 14 to the drive train 4. The rotor loads are then, via the second connection interface 13 at a location which is axially displaced with respect to the first connection interface 11 as considered in a direction away from the rotor side R, further transferred to the tower 2 of the wind turbine 1.
(26) Hence, in the design of a nacelle main frame structure and drive train assembly 10 according to embodiments of the invention, the drive train 4 takes most of the rotor loads and transfers them to the tower 2 of the wind turbine 1. Thus, according to embodiments of the invention, the drive train 4 forms part of the load path. In other words, the drive train 4 provides stiffness to the nacelle main frame structure 3.
(27) An advantage hereof is that, according to embodiments of the present invention, the nacelle main frame structure 3 requires considerably less material compared to existing nacelle main frame structures because a majority of the rotor loads are transferred via the drive train 4 and not via the nacelle main frame structure 3 itself. As a consequence, the nacelle main frame structure 3 will have a lower weight than existing nacelle main frame structures.
(28) Furthermore, there is no need for an additional structure to be provided to bring the rotor loads from a horizontal axis of the rotor 7 to a vertical axis of the tower 2, because this is achieved by providing two connection interfaces 11, 13 which are substantially perpendicular to each other (see higher) and thus by using the drive train 4 as a load path between these two axes.
(29) Another advantage of a nacelle main frame structure and drive train assembly 10 according to embodiments of the invention is that the drive train 4 can be easily removed from the assembly for, for example servicing purposes, without having to dismount the rotor 7 from the nacelle main frame structure 3. The drive train 4 can be disconnected at the two connection interfaces 11, 13 and can then be removed axially. This means that it can be moved back to the back of the nacelle main frame structure 3 behind the tower 2 of the wind turbine 1 in a direction substantially parallel to the axis of the drive train 4, where it then can be lowered to the ground. Insertion of the drive train 4 back into the nacelle main frame structure 3 after servicing, or to assemble a nacelle main frame structure and drive train assembly 10 according to embodiments of the invention, can also easily be performed. Without the drive train 4 in place, the weight of the rotor 7 will cause the nacelle main frame structure 3 to slightly tilt forward. This is a benefit during insertion of the drive train 4 because it provides slightly more space such that, when the drive train 4 is put into place, it fits tight in the nacelle main frame structure 3. For inserting it, first the drive train 4 may be connected to the nacelle main frame structure 3 at the first connection interface 11 and to the rotor 7 at the further connection interface 15. Second, the second connection interface 13 is tightened, bringing the nacelle main frame structure 3 in place and thereby causing the drive train 4 to become part of the load path.
(30) A nacelle main frame structure and drive train assembly 10 according to embodiments of the invention combines the benefits of a nacelle main frame structure 3 having a low weight and the easy exchangeability of the drive train 4 or drive train components from the nacelle main frame structure 3. Hence, no compromise has to be made between low weight or easy exchangeability which is the case for currently existing turbine designs.