This application claims priority of European application No. 10187375.0 filed Oct. 13, 2010, which is incorporated by reference herein in its entirety.
The present invention relates to a generator, in particular for a wind turbine, comprising a stator and a rotor with a number of magnets, arranged in circumferential direction of a rotor yoke.
Wind turbines are provided with a rotor shaft which is part of the electrical generator producing electricity during movement of the rotor relative to the stator of the generator. The stator comprises a number of coils, the rotor comprises a number of permanent magnets or electrically charged magnets so that an electric voltage is induced when the rotor is turned.
In generators heat losses occur, mainly from copper losses. A substantial amount of heat has to be removed in order to avoid hot spots and insulation wearing. The second major part of heat losses comes from magnets.
In conventional generators for wind turbines the stack may be cooled by blowing air through the windings into an air gap between rotor and stator. This air flows through stator radial ducts and cools the magnets as well. As an alternative it is known that the stator can be liquid-cooled through pipes or hollow copper strands.
It is therefore an object of the present invention to provide a generator, in particular for a wind turbine, with an improved cooling.
According to the present invention this object is achieved in the above defined generator in that a magnet is connected to a cooling fin on the outer side of the rotor yoke by a connection means which permits a heat flow from the permanent magnet to the cooling fin.
Due to the cooling fin heat can directly flow through the connection means from a permanent magnet to the cooling fin, from where it is dissipated by the air flow. Accordingly the permanent magnet can be cooled so that high temperatures are prevented, which are unwanted.
In the inventive generator it is preferred that the connection means is a metal connector, connecting the cooling fin and the permanent magnet. A metal connector has an excellent thermal conductivity allowing for heat dissipation from the magnet to a cooling fin.
In the inventive generator the connection means can be a screw, a bolt or a rivet. Further it is possible that the connection means and the cooling fin are formed, e. g. as a threaded bolt. In this case the cooling fin can easily be connected to the permanent magnet by the connection means.
According to a further development of the inventive generator the fins can be arranged along a spiral path on the outer side of the rotor yoke. The small fins are placed along a skew shape to provide a better cooling.
According to preferred embodiment of the inventive generator a turbulator may be arranged between two neighbouring magnets. The turbulator has the effect that the convection heat transfer coefficient in the air gap between rotor and stator is improved so that a better cooling is achieved.
In a preferred embodiment the turbulator may have a tapered shape and an outer end positioned in the air gap whereby heat removal through the magnets is improved.
In order to further improve the heat transfer the inventive generator may comprise a finger plate which is bell-mouth shaped. Further a small bell-mouth piece may also be attached to a magnet at the air gap entrance, so that the pressure drop is significantly reduced when the air enters the air gap.
Further the invention refers to a wind turbine. The inventive wind turbine comprises a generator as described above.
The invention and its underlying principle will be better understood when consideration is given to the following description of preferred embodiments. In the accompanying drawings:
Preferably all permanent magnets 3, which are arranged in circumferential direction of the rotor yoke 2 are connected to cooling fins 4 through respective connectors. The connector improves cooling of the permanent magnets 3 so that hot spots and defects are avoided.
In accordance with the first embodiment a number of permanent magnets 3 is positioned on a rotor yoke 2, on the outer side of the rotor yoke 2 a cooling fin 4 is provided. In contrast to the first embodiment the connector 5 is a screw 6 connecting the cooling fin 4 and the permanent magnet 3. The screw 6 is inserted through a hole in the cooling fin 4 and the rotor yoke 2, the permanent magnet 3 is provided with a thread for the screw 6. Accordingly heat which is generated in the permanent magnet 3 flows through screw 6 to cooling fin 4, from where it dissipates.
The permanent magnets 14 are spaced apart from each other, a turbulator 15 is disposed between two neighbouring permanent magnets 14, respectively. Between the permanent magnets 14 and the stator 12 an air gap 16 is provided. As can be seen in
Number | Date | Country | Kind |
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EP10187375 | Oct 2010 | EP | regional |