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Patent Searching and Data


Title:
WIND TURBINE
Document Type and Number:
WIPO Patent Application WO/2012/120484
Kind Code:
A2
Abstract:
A wind turbine having an electric machine (6), in turn having a stator (10), and a rotor (11) which rotates about an axis of rotation (A2) with respect to the stator (10); the rotor (11) having a plurality of magnetized modules (25), and a rotor cylinder (20; 40) which extends circumferentially, rotates about an axis of rotation (A2), and is designed to support the plurality of magnetized modules (25); and wherein the rotor cylinder (20; 40) is made of nonmagnetic material.

Inventors:
CASAZZA MATTEO (IT)
PABST OTTO (IT)
FASOLO ALESSANDRO (IT)
Application Number:
PCT/IB2012/051133
Publication Date:
September 13, 2012
Filing Date:
March 10, 2012
Export Citation:
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Assignee:
WILIC SARL (LU)
CASAZZA MATTEO (IT)
PABST OTTO (IT)
FASOLO ALESSANDRO (IT)
International Classes:
H02K1/27; F03D9/00; H02K5/18; H02K7/18
Domestic Patent References:
WO2006017377A22006-02-16
WO2007063370A12007-06-07
WO2009091248A22009-07-23
Foreign References:
DE102009025929A12010-12-09
US20060255679A12006-11-16
US4445062A1984-04-24
EP2282397A12011-02-09
GB2080707A1982-02-10
Other References:
None
Attorney, Agent or Firm:
JORIO, Paolo et al. (Via Viotti 9, Torino, IT)
Download PDF:
Claims:
CLAIMS

1) A wind turbine comprising an electric machine (6) in turn comprising a stator (10), and a rotor (11) which rotates about an axis of rotation (A2) with respect to the stator (10); the rotor (11) comprising a plurality of magnetized modules (25) , and a rotor cylinder (20; 40) which extends circumferentially, rotates about an axis of rotation (A2), and is designed to support the plurality of magnetized modules (25) ; and wherein the rotor cylinder (20; 40) is made of nonmagnetic material.

2) A wind turbine as claimed in Claim 1, wherein the rotor (11) comprises supports (23; 41) arranged about and extending radially with respect to the axis of rotation (A2) , and fitted to the rotor cylinder (20; 40) to support the magnetized modules (25) .

3) A wind turbine as claimed in Claim 2, wherein the rotor (11) comprises cooling members (22; 42) arranged about and extending radially with respect to the axis of rotation (A2), and fitted to the rotor cylinder (20; 40) to cool the rotor (11); and the cooling members (22; 42) preferably extend from the opposite side to the supports (23; 41) of the rotor (11) -

4) A wind turbine as claimed in Claim 2 or 3, wherein the supports (23) comprise grippers (23) connected to the rotor cylinder (20) to support the plurality of magnetized modules (25) .

5) A wind turbine as claimed in one of Claims 2 to 4, wherein the cooling members (22) comprise cooling fins (22) connected to the rotor cylinder (20) , on the opposite side to the supports (23) , to cool the rotor (11) -

6) A wind turbine as claimed in Claims 2 and 3, wherein the supports (41) comprise arms (41) extending radially with respect to the axis of rotation (A2) to support the magnetized modules (25) .

7) A wind turbine as claimed in Claim 6, wherein the cooling members (42) comprise cooling fins (42) extending radially with respect to the axis of rotation (A2) to cool the rotor (11); the cooling fins (42) preferably extending on the opposite side to the arms (41) .

8) A wind turbine as claimed in Claim 6 or 7, wherein the arms (41) are made of nonmagnetic material and integrally with the rotor cylinder (40) .

9) A wind turbine as claimed in Claim 7, wherein the cooling fins (42) are made of nonmagnetic material and integrally with the rotor cylinder (40).

10) A wind turbine as claimed in any one of the foregoing Claims, wherein the nonmagnetic material is aluminium, an aluminium alloy, stainless steel, copper, or polymer material.

11) A wind turbine as claimed in any one of the foregoing Claims, wherein the rotor (11) comprises pairs of magnetic guides (24), each pair of magnetic guide

(24) being fitted to at least a respective magnetized module (25) to guide the flux of the magnetized module

(25) .

Description:
WIND TURBINE

TECHNICAL FIELD

The present invention relates to a wind turbine for producing electric power.

More specifically, the present invention relates to a wind turbine comprising an electric machine having a stator, and a rotor which rotates with respect to the stator about an axis of rotation.

BACKGROUND ART

The stator comprises a stator cylinder, and stator segments arranged about the axis of rotation along the stator cylinder. And, similarly, the rotor comprises a rotor cylinder, and rotor segments arranged about the axis of rotation along the rotor cylinder. Each rotor segment comprises a support extending parallel to the axis of rotation; and magnetized modules arranged inside the support, parallel to the axis of rotation. The rotor segments are fitted to the rotor cylinder, and the stator segments to the stator cylinder. The rotor cylinder is fitted to the stator cylinder by means of at least one bearing, and is connected to a hub and to blades arranged about the hub.

One drawback of the known art lies in part of the energy transmitted from the blades to the electric machine being dispersed in so-called electromagnetic losses, particularly in the rotor.

Electromagnetic losses are caused by electromagnetic fields interacting between the stator and rotor, thus resulting in power dissipation and a reduction in the efficiency of the electric machine.

One particular type of electromagnetic loss originating in the rotor is caused by the magnetic flux which closes on the rotor, is produced by the harmonics of the magnetomotive force of the stator, and induces parasitic currents in the rotor without producing any drive torque.

Another problem of the known art lies in power dissipation overheating the component parts of the rotor .

OBJECT OF THE INVENTION

It is an object of the present invention to provide a wind turbine designed to limit the drawbacks of the known art .

A further object of the present invention is to provide a wind turbine designed to reduce electromagnetic losses in the rotor caused by harmonics of the magnetomotive force of the stator.

A further object of the present invention is to provide a wind turbine designed to reduce overheating of the rotor.

According to the present invention, there is provided a wind turbine comprising an electric machine, in turn comprising a stator, and a rotor which rotates about an axis of rotation with respect to the stator; the rotor comprising a plurality of magnetized modules, and a rotor cylinder which extends circumferentially, rotates about an axis of rotation, and is designed to support the plurality of magnetized modules; and wherein the rotor cylinder is made of nonmagnetic material.

By virtue of the present invention, the magnetic flux produced by the harmonics of the magnetomotive force of the stator, and which closes through the nonmagnetic rotor cylinder, is greatly attenuated with respect to the known art, in which the rotor cylinder is made of ferromagnetic material. Consequently, the parasitic currents circulating in the rotor, and power dissipation are also reduced, thus reducing heating of the rotor.

In a preferred embodiment of the present invention, the nonmagnetic material is aluminium, aluminium alloy, stainless steel, copper, or polymer material.

An aluminium rotor cylinder is a good neat conductor and extremely lightweight; and an aluminium rotor can be extruded to form the rotor cylinder, cooling fins and supports simultaneously, provided the fins and supports are parallel to the rotor axis.

BRIEF DESCRIPTION OF THE DRAWINGS

A number of non-limiting embodiments of the present invention will be described by way of example with reference to the accompanying drawings, in which :

Figure 1 shows a side view of a wind turbine;

Figure 2 shows a schematic front view, with parts removed for clarity, of an electric machine of the Figure 1 wind turbine;

Figure 3 shows a larger-scale side view, with parts removed for clarity, of the Figure 2 electric machine;

Figure 4 shows a larger-scale side view, with parts removed for clarity, of an alternative embodiment of the Figure 2 electric machine.

PREFERRED EMBODIMENTS OF THE INVENTION

Number 1 in Figure 1 indicates as a whole a wind turbine for producing electric power.

In the Figure 1 example, wind turbine 1 is a direct-drive, variable-angular-speed type, and comprises a supporting structure 2, a nacelle 3, a hub 4, three blades 5 (only two shown in Figure 1), and an electric machine 6.

Blades 5 are fitted to hub 4, in turn fitted to nacelle 3, in turn fitted to supporting structure 2.

Supporting structure 2 is a structural member supporting nacelle 3.

In a variation (not shown) of the present invention, supporting structure 2 is a pylon, preferably made of ferrous material.

As shown in Figure 1, nacelle 3 is mounted to rotate about an axis Al with respect to supporting structure 2, to position blades 5 into the wind; hub 4 is mounted to rotate about an axis of rotation A2 with respect to nacelle 3; and each blade 5 is fitted to hub 4 to rotate about an axis A3 with respect to hub 4. Electric machine 6 comprises a stator 10, and a rotor 11 which rotates with respect to stator 10 about axis of rotation A2. And hub 4, blades 5, and rotor 11 define a rotary assembly 12, which rotates with respect to nacelle 3 about axis of rotation A2.

As shown in Figures 2 and 3, stator 10 comprises a stator cylinder 15; cooling fins 16 fixed to the outer face of stator cylinder 15; and a whole number of stator segments 18 arranged about axis of rotation A2 and fixed to the inner face of stator cylinder 15 by fastening devices not shown. Cooling fins 16 cool stator cylinder 15 and therefore the whole of stator 10. More specifically, cooling fins 16 and stator cylinder 15 are made of heat-conducting material, so the heat produced by Joule effect and otherwise inside stator 10 is transferred to stator cylinder 15 and from this to cooling fins 16 designed to dissipate it. Each stator segment 18 comprises windings, and packs of stator laminations 19 wound with a winding associated with only one stator segment 18, so that said stator segment 18 can be removed from stator 10 without interfering with the other stator segments 18. Stator cylinder 15 covers, protects, and supports stator segments 18. Rotor 11 comprises a rotor cylinder 20; rotor segments 21 arranged about axis of rotation A2; and cooling fins 22 fixed to the inner face of rotor cylinder 20. Rotor cylinder 20 is made of nonmagnetic material and, in one embodiment of the invention, is made of aluminium or aluminium alloy.

In a variation of the invention, rotor cylinder 20 is made of nonmagnetic material, in particular stainless steel .

In another variation of the invention, rotor cylinder 20 is made of nonmagnetic material, in particular copper.

In another variation of the invention, rotor cylinder 20 is made of nonmagnetic material, in particular polymer, and preferably heat-conducting polymer material.

Cooling fins 22 cool rotor cylinder 20 and therefore the whole of rotor 11. More specifically, cooling fins 22 and rotor cylinder 20 are made of heat- conducting nonmagnetic material, so the heat produced in rotor 11 is transferred to rotor cylinder 20 and from this to cooling fins 22 designed to dissipate it.

As shown in Figure 3, each rotor segment 21 comprises a gripper 23, magnetic guides 24, magnetized modules 25, and bolts 26.

Gripper 23 extends parallel to and radially with respect to axis of rotation A2 , is fixed to rotor cylinder 20 of rotor 11 by bolts 26, is made of nonmagnetic material, and, in a preferred non-limiting embodiment of the invention, is made of aluminium or aluminium alloy.

In a variation of the invention, gripper 23 is made of nonmagnetic material, in particular stainless steel.

In another variation of the invention, gripper 23 is made of nonmagnetic material, in particular copper.

In another variation of the invention, gripper 23 is made of nonmagnetic, preferably heat-conducting polymer material.

In each rotor segment 21, magnetized modules 25 are aligned radially with respect to axis of rotation A2 (Figure 2) to form groups of modules 25, which in turn are arranged successively, parallel to axis of rotation A2 (Figure 2), along the whole of rotor segment 21.

With particular reference to Figures 2 and 3, each group of modules 25 comprises two modules 25 aligned radially with respect to axis of rotation A2 ; and, by way of a non-limiting example, each rotor segment 21 comprises eleven groups of modules 25 (not shown in the drawings) arranged successively, parallel to axis of rotation A2.

With reference to Figures 2 and 3, each group of modules 25 is located between a respective pair of magnetic guides 24, each defined by respective packs of laminations made of ferromagnetic material, to guide the magnetic flux of magnetized modules 25. Each rotor segment 21 therefore comprises eleven pairs of magnetic guides 24. Each pair of magnetic guides 24 is located inside gripper 23, which is fixed to rotor cylinder 20 by bolts 26 and defines a support for the respective pair of magnetic guides 24 and the respective group of modules 25. Each pair of magnetic guides 24 has two faces 27, is traversed in use by the magnetic flux of magnetized modules 25, and defines the field lines. Group of modules 25 is protected at the top end by two insulating members 28 between magnetic guides 24, and is protected at the bottom end by an insulating member 28a between magnetic guides 24.

In electric machine 6 described above, the magnetic flux defined by the main frequency component of the magnetomotive force of stator 10 assists in defining the torque of electric machine 6 and converting kinetic to electric energy and vice versa, whereas the magnetic flux defined by the harmonics of the magnetomotive force of stator 10 plays no part in defining the torque of electric machine 6 and merely dissipates energy in heat.

By virtue of rotor cylinder 20 of nonmagnetic material, the magnetic flux defined by the harmonics of the magnetomotive force of stator 10, and which closes in nonmagnetic rotor cylinder 20, is attenuated, i.e. is not attracted to rotor cylinder 20, as in the known art, and is reduced with respect to the known art, thus reducing parasitic currents in rotor 11 and power dissipation. Moreover, reducing power dissipation also reduces the heat generated in rotor 11 with respect to the known art .

In the Figure 4 variation of the invention, rotor cylinder 20, fins 22 and grippers 23 are eliminated, and rotor 11 comprises a rotor cylinder 40, arms 41, and cooling fins 42, all made of nonmagnetic material and formed integrally in one piece. Rotor cylinder 40 extends longitudinally, parallel to axis of rotation A2. Arms 41 extend radially, with respect to axis of rotation A2, towards stator 10, and are designed to engage magnetic guides 24, and more specifically to support magnetic guides 24 and magnetized modules 25. Arm 41 define supports for magnetized modules 25.

Cooling fins 42 extend radially, with respect to axis of rotation A2, in the opposite direction to arms 41 and towards the centre of rotor 11, and are designed to dissipate heat from rotor cylinder 40.

The nonmagnetic material from which rotor cylinder 40, arms 41 and cooling fins 42 are made is aluminium or aluminium alloy.

In a variation of the invention, the nonmagnetic material from which rotor cylinder 40, arms 41 and cooling fins 42 are made is a nonmagnetic, preferably heat-conducting polymer material.

By way of a non-limiting example, rotor 11 of aluminium, aluminium alloy or polymer material may be extruded to form rotor cylinder 40, cooling fins 42 and arms 41 simultaneously.

In a variation of the invention, the nonmagnetic material from which rotor cylinder 40, arms 41 and cooling fins 42 are made is stainless steel. In another variation of the invention, the nonmagnetic material from which rotor cylinder 40, arms 41 and cooling fins 42 are made is copper-based.

Though electric machine 6 described is a radial- flux, buried permanent magnet type, the protective scope of the invention extends to any other type of permanent magnet electric machine, such as radial-flux surface- magnet, or axial-flux, or cross-flux electric machines. Also, the wind turbine is a direct-drive type, i.e. in which the hub and electric machine rotor are connected directly.

The present invention also covers embodiments not described in the present detailed description, as well as equivalent embodiments, within the protective scope of the accompanying Claims.