Wind turbine rotary electric machine rotor, and wind turbine comprising such a rotor
09929611 ยท 2018-03-27
Assignee
Inventors
- Matteo Casazza (Val di Vizze, IT)
- Georg Folie (Wiesen, IT)
- Maddalena Renier (Salorno, IT)
- Daniele Franco (Luxembourg, LU)
Cpc classification
H02K2213/12
ELECTRICITY
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
International classification
Abstract
A rotor of a wind turbine rotary electric machine has a tubular structure extending and configured to rotate about an axis of rotation; a plurality of active segments parallel to and arranged about the axis of rotation and fitted to the tubular structure; and a plurality of cooling channels formed in the tubular structure.
Claims
1. A wind turbine rotary electric machine rotor comprising: a tubular structure extending about an axis of rotation and configured to rotate about the axis of rotation, wherein at least one interior surface of said tubular structure defines at least one cooling channel of a first plurality of cooling channels defined by the tubular structure, said at least one cooling channel extending parallel to the axis of rotation; and a plurality of active segments arranged parallel to and about the axis of rotation, wherein the plurality of active segments are supported by the tubular structure.
2. The wind turbine rotary electric machine rotor of claim 1, wherein each cooling channel extends a full axial length of the tubular structure.
3. The wind turbine rotary electric machine rotor of claim 1, wherein the tubular structure includes a cylindrical body which defines a plurality of axial cooling channels of the first plurality of cooling channels.
4. The wind turbine rotary electric machine rotor of claim 3, wherein the cylindrical body includes a plurality of axial ribs configured to support the plurality of active segments, said plurality of axial ribs define a plurality of cooling channels of the first plurality of cooling channels.
5. The wind turbine rotary electric machine rotor of claim 1, wherein the tubular structure includes a plurality of sectors arranged about the axis of rotation, said plurality of sectors define a plurality of cooling channels of the first plurality of cooling channels, said plurality of cooling channels extending inside the plurality of sectors.
6. The wind turbine rotary electric machine rotor of claim 5, wherein each sector is an extruded sector and the first plurality of cooling channels include at least one extruded cooling channel directly inside at least one of the sectors.
7. The wind turbine rotary electric machine rotor of claim 5, wherein each sector is defined by a stack of laminations with a plurality of opening, and at least two of the openings aligned in a direction parallel to the axis of rotation define each cooling channel.
8. The wind turbine rotary electric machine rotor of claim 7, wherein each sector includes a plurality of pipes housed in the cooling channels.
9. The wind turbine rotary electric machine rotor of claim 7, wherein the plurality of pipes adhere to said sector along a plurality of walls that define the cooling channels.
10. The wind turbine rotary electric machine rotor of claim 5, wherein each sector has a plurality of axial ribs configured to support the active segments.
11. The wind turbine rotary electric machine rotor of claim 1, which includes a second plurality of cooling channels extending in an axial direction.
12. The wind turbine rotary electric machine rotor of claim 11, wherein the second plurality of cooling channels are defined by the tubular structure and the active segments.
13. The wind turbine rotary electric machine rotor of claim 12, wherein each cooling channel of the second plurality of cooling channels is lined with a hydroformed pipe configured to secure a respective one of the active segments to the tubular structure.
14. The wind turbine rotary electric machine rotor of claim 11, wherein the second plurality of cooling channels extend axially and are located inside the plurality of active segments.
15. The wind turbine rotary electric machine rotor of claim 1, wherein the rotor is associated with a liquid cooling system including at least one rotating circuit portion extending at least partly inside the cooling channels.
16. A wind turbine comprising: a rotary electric machine including: a rotor including: a tubular structure extending about an axis of rotation and configured to rotate about the axis of rotation, wherein at least one interior surface of said tubular structure defines at least one cooling channel of a first plurality of cooling channels defined by the tubular structure, said at least one cooling channel extending parallel to the axis of rotation, and a plurality of active segments arranged parallel to and about the axis of rotation, wherein the plurality of active segments are supported by the tubular structure; and a blade assembly connected to the rotary electric machine.
17. The wind turbine of claim 16, wherein the rotor is directly connected to the blade assembly.
18. The wind turbine of claim 16, which includes a liquid cooling system including: a rotating circuit portion fitted to the rotor, and a stationary circuit portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A number of non-limiting embodiments of the present disclosure will be described by way of example with reference to the attached drawings, in which:
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DETAILED DESCRIPTION
(10) Referring now to the example embodiments of the present disclosure illustrated in
(11) The wind turbine also comprises a liquid cooling system 6, of which
(12) In the example shown, electric machine 4 comprises a stator 8 fixed to nacelle 3; and a rotor 9, which is supported to rotate with respect to stator 8, is located inside stator 8, and is connected rigidly to, and driven directly by, blade assembly 5.
(13) It is understood that the present disclosure also applies to configurations other than the one shown and described in detail (i.e., to configurations in which the rotor surrounds the stator, or in which a drive is interposed between the blade assembly and the rotor).
(14) With reference to
(15) In the example shown, stator 8 comprises a tubular structure 10; and active segments 11, which are arranged about axis of rotation A, are fitted to tubular structure 10, and extend axially. Rotor 9 comprises a tubular structure 12; a hub 13; a radial structure 14 configured to connect hub 13 to tubular structure 12; and active segments 15 arranged about axis of rotation A.
(16) In the example shown, tubular structure 12 comprises a plurality of sectors 16 arranged about axis of rotation A and substantially adjacent to one another circumferentially. Each sector 16 is fitted to radial structure 14. Rotor 9 is connected to liquid cooling system 6, which comprises a rotary circuit portion 17 and a stationary circuit portion 18. Rotor 9 actually comprises rotary circuit portion 17 of liquid cooling system 6. Liquid cooling system 6 schematically comprises a rotary liquid distributor 19 to which rotary circuit portion 17 and stationary circuit portion 18 are connected; a liquid circulating pump 20 located along stationary circuit portion 18; and at least one of heat exchangers 7, which are also located along stationary circuit portion 18.
(17) Liquid cooling system 6 generally comprises a plurality of rotary circuit portions 17, each associated with a respective sector 16. Each rotary circuit portion 17 comprises two, respectively liquid feed and liquid return, branches 21, which, in the example shown, extend radially at radial structure 14.
(18) Tubular structure 12 comprises a plurality of cooling channels 22 formed in tubular structure 12 itself. In the example shown, each sector 16 has cooling channels 22 parallel to axis of rotation A. The cooling channels 22 formed in tubular structure 12 serve to conduct air, or, as in the example shown in the attached drawings, form an integral part of liquid cooling system 6. In other words, rotary circuit portion 17 is defined partly by cooling channels 22.
(19) More specifically, and with reference to
(20) With reference to
(21) In the example shown, cooling channels 22 are configured to conduct cooling liquid, and axial grooves 26 to conduct cooling air.
(22) The four cooling channels 22 are connected to one another by fittings 27, and two of the cooling channels 22 are connected to branches 21 by respective fittings 28.
(23) Alternatively, each cooling channel is connected to an inlet manifold and an outlet manifold.
(24) Each fitting 27 comprises a plug 29 configured to seal two adjacent cooling channels 22 and a cavity 30 formed in main body 23 and connecting the two adjacent cooling channels 22.
(25) Each fitting 28 comprises a plug 31 configured to seal a cooling channel 22, and which has an attachment 32 configured to connect plug 31 to a branch 21.
(26) With reference to
(27) In the example shown in
(28) Each sector 33 comprises four cooling channels 39, and five axial grooves 42 alternating with cooling channels 39. Main body 38 of sector 33 and each active segment 15 form a cooling channel 43 at each groove 42. And likewise, main body 38 and each two adjacent active segments 15 define a further cooling channel 44.
(29) In general, sector 33 and active segments 15 fitted to sector 33 together define cooling channels 39 formed in sector 33, and cooling channels 43 and 44 located between sector 33 and the active segments.
(30) Cooling channels 39, 43 and 44 form part of air cooling circuits or liquid cooling circuits.
(31) With reference to
(32) Likewise, as shown in
(33) If so, lining cooling channels 43 with hydroformed pipes provides for securing active segment 15 to tubular structure 12, and in particular to sector 33.
(34) Number 46 in
(35) Rotor 46 comprises a tubular structure 47; and a plurality of active segments 48 arranged along tubular structure 47. Tubular structure 47 has a cylindrical body 49; and a plurality of ribs 50 defining axial seats for active segments 48. And each active segment 48 comprises a group of permanent magnets 51 gripped between two magnetic guides 52.
(36) Tubular structure 47 (i.e., ribs 50 and cylindrical body 49) is, in certain embodiments, cast in one piece, and the parts of tubular structure requiring greater dimensional accuracy subsequently machined. Tubular structure 47 also comprises axial cooling channels 53 and 54 formed in tubular structure 47 itself; and axial cooling channels 55 bounded by tubular structure 47 and active segments 48. Each cooling channel 55 is bounded by an active segment 48, by two adjacent ribs 50, and by cylindrical body 49.
(37) Cooling channels 53, 54 and 55 form part of air or liquid cooling circuits.
(38) Cooling channels 53 and 54 may be relatively easily used to form rotating circuit portion 17 (
(39) Cooling channels 53 are formed, in certain embodiments cast or drilled, directly inside cylindrical body 49. Cooling channels 54 are formed the same way inside ribs 50. And cooling channels 53 and 54 may be relatively easily connected to one another by U-shaped fittings 56, and to branches 21 by L-shaped fittings 57.
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(42) Clearly, changes may be made to the rotor according to the present disclosure without, however, departing from the 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.