Wind turbine rotating electric machine frame, and rotating electric machine
09874199 ยท 2018-01-23
Assignee
Inventors
Cpc classification
F05B2220/7066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/085
ELECTRICITY
Y02P70/50
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
F05B2230/21
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
H02K7/1838
ELECTRICITY
F03D9/25
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
F03D13/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03D13/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/18
ELECTRICITY
Abstract
A frame of a rotating electric machine of a wind turbine extends about an axis of rotation, and has a tubular structure having a cylindrical face and configured to support a plurality of active segments along the cylindrical face; an annular flange configured to connect the rotating electric machine to a main frame of a wind turbine; and a ring having an annular seat for a bearing; and wherein the tubular structure, the annular flange, and the ring are formed in one piece.
Claims
1. A wind turbine rotating electric machine frame comprising: a tubular structure defining a space, said tubular structure having a cylindrical face and configured to support a plurality of active segments along the cylindrical face; an annular flange configured to connect a rotating electric machine to a main frame of a wind turbine, wherein an outer diameter of the annular flange is smaller than an inner diameter of the cylindrical face; and a ring defining an annular seat for a bearing, said ring being located within the space defined by the tubular structure; wherein the tubular structure, the annular flange, and the ring are integrally formed.
2. The wind turbine rotating electric machine frame of claim 1, wherein the tubular structure, the annular flange, and the ring are formed in one piece.
3. The wind turbine rotating electric machine frame of claim 1, wherein the tubular structure, the annular flange, and the ring are a one piece cast.
4. The wind turbine rotating electric machine frame of claim 3, wherein the cast is made of steel.
5. The wind turbine rotating electric machine frame of claim 1, wherein the cylindrical face of the tubular structure includes a mechanical chip-forming machine finished cylindrical face and the annular seat of the ring includes a mechanical chip-forming machine finished annular seat.
6. The wind turbine rotating electric machine frame of claim 5, wherein the finishing of the cylindrical face of the tubular structure and the annular seat of the ring occurs simultaneously.
7. The wind turbine rotating electric machine frame of claim 1, wherein the tubular structure includes a plurality of fastening members arranged, about an axis of rotation of the wind turbine rotating electric machine frame, along the cylindrical face, said plurality of fastening members configured to anchor the active segments to the tubular structure.
8. The wind turbine rotating electric machine frame of claim 7, wherein each fastening member is defined by an axial groove with a dovetail cross section.
9. The wind turbine rotating electric machine frame of claim 1, which includes a plurality of first arms configured to connect the annular flange to the tubular structure.
10. The wind turbine rotating electric machine frame of claim 9, wherein the first arms extend radially with respect to an axis of rotation of the wind turbine rotating electric machine frame.
11. The wind turbine rotating electric machine frame of claim 1, wherein the annular flange is located at one end of the tubular structure.
12. The wind turbine rotating electric machine frame of claim 1, wherein the annular flange and the ring are connected by a plurality of second arms.
13. The wind turbine rotating electric machine frame of claim 1, wherein the ring is located in a mid-position, with respect to the tubular structure, along an axis of rotation of the wind turbine rotating electric machine frame.
14. A wind turbine rotating electric machine frame comprising: a tubular structure defining a space, said tubular structure having a cylindrical face and configured to support a plurality of active segments along the cylindrical face; an annular flange configured to connect a rotating electric machine to a main frame of a wind turbine; and a ring defining an annular seat for a bearing, said ring being located within the space defined by the tubular structure, wherein an outer diameter of the ring is smaller than an inner diameter of the annular flange; wherein the tubular structure, the annular flange, and the ring are integrally formed.
15. The wind turbine rotating electric machine frame of claim 14, wherein the tubular structure, the annular flange, and the ring are formed in one piece.
16. The wind turbine rotating electric machine frame of claim 14, wherein the tubular structure, the annular flange, and the ring are a one piece cast.
17. The wind turbine rotating electric machine frame of claim 16, wherein the cast is made of steel.
18. The wind turbine rotating electric machine frame of claim 14, wherein the cylindrical face of the tubular structure includes a mechanical chip-forming machine finished cylindrical face and the annular seat of the ring includes a mechanical chip-forming machine finished annular seat.
19. The wind turbine rotating electric machine frame of claim 18, wherein the finishing of the cylindrical face of the tubular structure and the annular seat of the ring occurs simultaneously.
20. The wind turbine rotating electric machine frame of claim 14, wherein the tubular structure includes a plurality of fastening members arranged, about an axis of rotation of the wind turbine rotating electric machine frame, along the cylindrical face, said plurality of fastening members configured to anchor the active segments to the tubular structure.
21. The wind turbine rotating electric machine frame of claim 20, wherein each fastening member is defined by an axial groove with a dovetail cross section.
22. The wind turbine rotating electric machine frame of claim 14, which includes a plurality of first arms configured to connect the annular flange to the tubular structure.
23. The wind turbine rotating electric machine frame of claim 22, wherein the first arms extend radially with respect to an axis of rotation of the wind turbine rotating electric machine frame.
24. The wind turbine rotating electric machine frame of claim 14, wherein the annular flange is located at one end of the tubular structure.
25. The wind turbine rotating electric machine frame of claim 14, wherein the annular flange and the ring are connected by a plurality of second arms.
26. The wind turbine rotating electric machine frame of claim 14, wherein the ring is located in a mid-position, with respect to the tubular structure, along an axis of rotation of the wind turbine rotating electric machine frame.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A non-limiting embodiment of the present disclosure will be described by way of example with reference to the attached drawings, in which:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) Referring now to the example embodiments of the present disclosure illustrated in
(8) In the example shown, main frame 2 is defined by a tubular, curved nacelle 5 comprising a circular end flange 6 configured to connect to rotating electric machine 3; an end flange 7 configured to house a pivot (not shown) connecting a vertical support (not shown); and an opening 8 formed in the wall of nacelle 5 to enable large component parts to be moved in and out of nacelle 5. In certain embodiments, opening 8 is substantially aligned with end flange 6.
(9) Blade assembly 4 comprises a hub 9 connected to rotating electric machine 3; and a plurality of blades (not shown in the drawings). Hub 9 comprises a hollow member 10 configured to support the blades (not shown); and a flange 11 configured to connect to rotating electric machine 3.
(10) Rotating electric machine 3 extends about axis of rotation A, and is substantially tubular to form a space between the hollow main frame 2 and hollow hub 9.
(11) Rotating electric machine 3 according to the present disclosure comprises a tubular stator 12; and a tubular rotor 13, which is located inside tubular stator 12, and rotates about axis of rotation A with respect to tubular stator 12. Rotating electric machine 3 comprises a frame 14 configured to connect rotating electric machine 3 to main frame 2, and to support blade assembly 4, tubular stator 12, and tubular rotor 13.
(12) Frame 14 extends about axis of rotation A, and comprises a tubular structure 15 having a cylindrical face 16 and configured to support a plurality of active segments 17 along cylindrical face 16; an annular flange 18 configured to connect rotating electric machine 3 to main frame 2 of wind turbine 1; and a ring 19 having an annular seat 20 for a bearing 21.
(13) In other words, tubular structure 15 forming part of tubular stator 12, tubular stator 12 is also defined partly by frame 14. It should thus be appreciated that tubular stator 12 comprises tubular structure 15 and active segments 17.
(14) Active segments 17in the example shown, electric windings fitted to a ferromagnetic coreare substantially prismatic modular segments, which extend predominantly parallel to, and are equally spaced about, axis of rotation A.
(15) As shown in
(16) As shown in
(17) Annular flange 18 is located inside one end of tubular structure 15, along axis of rotation A.
(18) Ring 19 is located inside tubular structure 15, at the centre of tubular structure 15, along axis of rotation A.
(19) Tubular structure 15, annular flange 18, and ring 19 are connected rigidly to one another by arms 23 and 24. More specifically, tubular structure 15 is connected to annular flange 18 by arms 23, which extend predominantly radially with a relatively small axial component; and annular flange 18 is connected to ring 19 by arms 24, which extend predominantly axially with a relatively small radial component.
(20) Each arm 23 comprises two plates 25 parallel to each other and to axis of rotation A. And similarly, each arm 24 comprises two plates 26 parallel to each other and to axis of rotation A.
(21) As shown in
(22) Tubular structure 15, annular flange 18, and ring 19 are formed in one piece. In other words, the whole of frame 14 is cast in one piece, and is, in certain embodiments, made of steel.
(23) Some parts of frame 14 are finish-machined, in particular by chip-forming machining operations. More specifically, machining is carried out along tubular structure 15, annular flange 18, and ring 19. More specifically, cylindrical face 16 and annular seat 20 are turned by tools U1, U2 and U3 on a machine tool T as shown in
(24) More specifically, cylindrical face 16 of tubular structure 15 and annular seat 20 of annular flange 18 are turned simultaneously on the same chip-forming machine tool T, to ensure cylindrical face 16 and annular seat 20 are as concentric as possible.
(25) In certain embodiments, rotating electric machine 3 comprises bearing 21 to withstand radial and axial loads transmitted by tubular rotor 13 and blade assembly 4.
(26) As shown in
(27) Tubular rotor 13 comprises a tubular structure 31 with a cylindrical face 32; a plurality of active rotor parts 33 arranged along cylindrical face 32 of tubular structure 31; and a radial structure 34 located inside tubular structure 31 and connected to bearing 21, in particular to inner race 29 of bearing 21. In other words, radial structure 34 is fixed, on one side, to bearing 21, and, on the opposite side, to hub 9, in particular to flange 11 of hub 9.
(28) Radial structure 34 is fixed to bearing 21 and hub 9 by two bolted connections releasable independently of each other. Radial structure 34 is fixed using a lock ring 35 configured to partly house inner race 29 of bearing 21 and the end of radial structure 34 with flange 11 of hub 9.
(29) One bolted connection comprises bolts 36, one of which, shown in
(30) Radial structure 34 is connectable, in particular by a bolted connection, directly to ring 19. Radial structure 34 is located close to a face 38 of ring 19, and both radial structure 34 and ring 19 are configured to be connected integrally to each other. Radial structure 34 and ring 19 are connected to connect tubular rotor 13 directly to frame 14 when changing bearing 21.
(31) Active rotor parts 33in the example shown, permanent magnets mounted on respective supportsare prismatic modular segments, which extend predominantly parallel to, and are equally spaced about, axis of rotation A.
(32) With reference to
(33) With reference to
(34) Clearly, changes may be made to the rotating electric machine described without, however, departing from the protective scope of the accompanying Claims. That is, various changes and modifications to the presently disclosed embodiments will be apparent to those skilled in the art. Such changes and modifications can be made without departing from the spirit and scope of the present subject matter and without diminishing its intended advantages. It is therefore intended that such changes and modifications be covered by the appended claims.