The present invention concerns a stator ring for an electric generator, in particular a synchronous generator or a ring generator of a wind turbine. The invention further concerns such a synchronous generator or ring generator. In addition the invention concerns a wind turbine having such a generator.
Stator rings of the above-indicated kind are basically known. They usually have a large number of grooves for receiving the stator winding, in which electric power is induced by the rotor moving along the winding. The stator rings are typically of such a structure that they have a magnetic yoke adjacent to the portion which carries the grooves. In the case of stator rings for internal rotors the magnetic yoke is disposed radially outside the region in which the grooves are provided. In the case of stator rings for external rotors the situation is correspondingly reversed. Here the grooves are radially outside the magnetic yoke.
As a consequence of the induction of electrical power heat is generated in an electric generator of the above-indicated kind, in particular in the stator ring. In order to keep the power losses caused thereby as low as possible efficient heat dissipation is desirable.
Various approaches for also directly dissipating heat from the stator ring are known from the state of the art. For example citation EP 2 419 991 B1 discloses the use of tubes which extend through the stator ring and are hydraulically expanded to be applied firmly in the recesses, this being intended to provide for better heat transfer. While cooling in accordance with the procedure referred to by way of example hereinbefore is generally deemed to be operable in practice nonetheless the required apparatus expenditure and also the amount of time required for fitting the tubes and for expanding the tubes is found to be a disadvantage. In addition in the case of some types of generator there is the possibility of operating with air cooling instead of liquid cooling.
A principle involved in air cooling is known for example from WO 2010/040659 A2. It is proposed therein that a plurality of cooling passages which have a radial afflux flow are provided in an outer carrier structure of the stator ring, which cooling passages cooperate with a stator bell for providing a pressure chamber with an increased pressure or a reduced pressure to provide an air flow. The cooling concept set forth therein is deemed to be satisfactory in terms of its mode of operation. Nonetheless there is still a need to further improve the cooling efficiency aspects in a generator and a stator of the kind set forth in opening part of this specification.
Provided is a stator ring with an improved possibility of cooling.
In particular at least one embodiment of the stator ring has a plurality of grooves for receiving the stator winding, and a magnetic yoke adjacent to the grooves, wherein the stator ring in the region of the magnetic yoke has a plurality of cooling recesses through which cooling air can flow and wherein the stator ring has a plurality of stator plates which are stacked in succession in the axial direction of the stator ring, wherein the cooling recesses extend through all stator plates.
The magnetic yoke preferably has a first region directly adjacent to the grooves, and a radially further outwardly disposed second region which is referred to as an enlarged magnetic yoke. In a preferred configuration the cooling recesses are arranged in the enlarged magnetic yoke.
Heat dissipation is effected at its most efficient where it occurs.
The higher efficiency in terms of heat dissipation compensates for the power losses which are accepted due to the disturbances, which arise in particular out of the preferred developments of the invention.
An advantageous provides that cooling ribs for increasing the surface area are provided in one, more of all of the cooling recesses.
In a preferred embodiment the cooling recesses are in the form of slots. Preferably the long sides of the slots extend in the radial direction of the stator ring. The term slot is also used in accordance with the invention to mean those recesses, the ends of which are not of a semicircular configuration. Therefore recesses of a rectangular cross-section, possibly also with rounded corners, are also deemed to be slots.
Preferably at least two cooling recesses of the plurality of cooling recesses are separated from each other by a web, the highest thickness of which in the peripheral direction of the stator ring is preferably equal to or less than the internal width of the cooling recesses in the peripheral direction. The web which is dimensioned in that way therefore also functions as a cooling rib, in addition to its supporting function.
In a preferred embodiment the stator ring has a plurality of sets each comprising at least two cooling recesses separated from each other by a web. In preferred alternative embodiments there is preferably one set for each third groove or particularly preferably one set for each second groove or alternatively and particularly preferably one set for each groove.
The spacing between two sets of cooling recesses is preferably greater than the spacing between two cooling recesses which are adjacent within a set.
The highest thickness of the web between two cooling recesses within a set in the peripheral direction of the stator ring is preferably equal to or less than the internal width of the cooling recesses in the peripheral direction.
In a further preferred embodiment of the stator ring the cooling recesses are arranged displaced in the peripheral direction relative to the grooves. The displaced arrangement of the cooling recesses relative to the grooves provides for a very uniform flow of heat, when the cooling recess is of a sufficiently large size.
In a preferred embodiment of the stator ring the surface of the cooling recesses is contoured in such a way that the production of turbulence effects within the cooling recesses is promoted. The formation of a turbulent air flow within the cooling recesses provides for an increase in the heat transfer from the air to the surface of the cooling recesses. Preferably the contour in the configuration having a plurality of stator plates stacked in succession is produced by means of a displacement in a radial direction and/or in a peripheral direction of the cooling recesses between adjacent stator plates. By virtue of the displacement, the surface of the cooling recesses is roughened, when considered technically.
In a further aspect the invention concerns an electric generator, in particular a synchronous generator or ring generator of a wind turbine, having a rotor and a stator, wherein the stator has a stator ring. In accordance with that aspect the stator ring is designed in accordance with one of the above-described preferred embodiments.
In a first preferred embodiment of the generator the rotor is in the form of an internal rotor. In a second preferred embodiment the rotor of the generator is in the form of an external rotor.
In a further aspect the present invention concerns a wind turbine, in particular a gear-less wind turbine, having an electric generator, in particular a synchronous generator or ring generator. In the case of such a wind turbine the generator is designed in accordance with one of the embodiments described herein.
Preferably the wind turbine has at least one motor-driven, preferably electric motor-driven fan for producing a cooling air flow through the cooling recesses of the stator ring.
The invention is described in greater detail hereinafter by means of preferred embodiments with reference to the accompanying Figures in which:
The pod 104 is shown in
As can be seen from the cross-sectional view in
A plurality of sets 15 of cooling recesses 19 (see
The diagrammatic partial view in
The cooling recesses 19 within a respective set are spaced from each other by a thin web 20. As its widest location the web 20 is of a thickness 23 which is less than a spacing 25 between the cooling recesses 19 of adjacent sets. Preferably the width 23 of a respective web is less than or equal to the width in the peripheral direction of one of the cooling recesses 19.
As can be seen from the foregoing the cooling recesses 19 can be of a smooth-walled configuration as shown in
Number | Date | Country | Kind |
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10 2015 213 514.4 | Jul 2015 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2016/064290 | 6/21/2016 | WO | 00 |