The following relates to the field of wind turbines, in particular to wind turbines comprising a cooling system for cooling the wind turbine generator during operation.
It is known to cool wind turbine generators by feeding cooling air from the nacelle into the generator where it is circulated to cool the coils or windings of the generator.
EP2615299B1 discloses a cooling system of a wind turbine axially transporting cooling air from non-drive-end to drive-end side of the generator-stator via air-ducts running axially through the generator-stator room. Unfortunately, the cooling air arriving at the drive-end sided end windings of the stator is warmer than at the non-drive end sided end windings due to the heated air in the generator-stator room warming up the air in the said air-ducts.
To prevent corrosion in the generator, it is important that the cooling air is sufficiently dry. In order to lower the humidity of the cooling air, a part of the heated return air may be blended with the cooling air from the nacelle as disclosed in EP2806542A.
Therefore, there may be a need for an improved cooling of a wind turbine generator.
This need may be met by the subject matter according to the independent claims. Advantageous embodiments are described by the dependent claims.
According to a first aspect of embodiments of the invention which provide a wind turbine comprising (a) a nacelle supported by a tower, (b) a generator, (c) a rotatable front assembly arranged on a side of the generator facing away from the nacelle, and (d) a cooling system for cooling the generator by feeding cooling air from the rotatable front assembly to the generator.
This aspect of embodiments of the invention are based on the idea that cooling air is fed from the rotatable front assembly and into the drive end of the generator, i.e. the part of the generator that is farthest away from the nacelle. Thereby, an efficient cooling of the generator, in particular of the drive end part of the generator, can be obtained.
The nacelle is supported by the tower which is fastened to the ground or sea bottom at its lower end. The nacelle constitutes the rear part of the wind turbine while the rotatable front assembly constitutes the front part (relative to the wind direction). The generator is arranged essentially between the nacelle and the rotatable front assembly in the sense that one side of the generator (the non-drive end) faces or is located within the nacelle while the opposite side of the generator (the drive end) faces the rotatable front assembly. In case of a direct drive (gearless) wind turbine, the generator is usually located between the nacelle and the rotatable front assembly and does not extend into the nacelle. In case of a geared wind turbine, the generator may, at least in part, extend into the nacelle. The rotatable front assembly comprises a number of components which interact to convert wind energy into rotational (mechanical) energy which in turn is converted into electrical energy by the generator.
According to an embodiment of the invention, the rotatable front assembly comprises a front assembly air intake and the cooling air comprises air taken in through the front assembly air intake.
In other words, the cooling air, which the cooling system feeds from the rotatable front assembly to the generator, comprises ambient air taken in through a front assembly air intake.
According to a further embodiment of the invention, the rotatable front assembly comprises a hub, at least one rotor blade mounted on the hub, and a spinner covering the hub.
The at least one rotor blade causes the hub to rotate around an axis (and thereby drive the generator) when incoming wind hits the rotor blade(s). The spinner is a housing or shield that covers the hub in order to protect it from the environment.
According to a further embodiment of the invention, the front assembly air intake is at least partially coincident with an opening in the spinner through which the at least one rotor blade extends.
In other words, ambient air may enter the rotatable front assembly through an opening in the spinner which allows the blade to extend from the hub.
According to a further embodiment of the invention, the front assembly air intake comprises a ring-shaped opening surrounding the at least one rotor blade.
The width of the ring-shaped opening, i.e. the difference between the outer diameter and inner diameter of the ring-shaped opening, is sufficiently large to take in a substantial amount of air and on the same time small enough to assure that larger objects and significant amounts of water (rain) cannot enter the rotatable front assembly. The sum of all air intake openings, i.e. the ring-shaped openings around the blades and the optional ring-shaped opening between stator and hub, may preferably have a total area between 0.4 m2 and 1 m2, in particular around 0.6 m2.
Any water entering the rotatable front assembly is preferably guided through the rotor blades and ejected through openings at the blade tips as a result of the centrifugal force.
According to a further embodiment of the invention, the front assembly air intake comprises an air guide arranged on an outer surface of the spinner.
In other words, ambient air may be guided into the rotatable front assembly through an air guide, such as a duct, arranged on the outer surface of the spinner.
The opening of the air guide is sufficiently large to take in a substantial amount of air and on the same time small enough to assure that larger objects and significant amounts of water (rain) cannot enter the rotatable front assembly. The opening of the air guide may preferably have a total cross-sectional area between 0.1 m2 and 0.3 m2, in particular around 0.2 m2.
According to a further embodiment of the invention, the front assembly air intake comprises an intake filter and/or an intake fan.
The intake filter may for example be a moisture filter, a dirt filter, a salt filter or a combination of such filters.
According to a further embodiment of the invention, the tower comprises a tower air intake located at a base portion of the tower and power cables for transmitting power from the generator to the base portion, wherein the cooling system comprises means for guiding air from the tower air intake to the rotatable front assembly such that the air is heated by the power cables, whereby the cooling air comprises air taken in through the tower air intake. Typically, the electrical losses of the cables are typically in the range between 300 Watt and 500 Watt per meter.
The power cables, in particular power cables transmitting power from the generator down through the tower to transformers and other electrical installations located at the base portion of the tower, will heat the ambient air taken in through the tower air intake as the air is guided upwards through the tower by the guiding means. This heating of the air is mainly produced by the electrical losses of the cables and causes a reduction in the relative humidity of the air. Thus, once the tower air reaches the rotatable front assembly, it will be drier (in the sense that its relative humidity is smaller) than the air surrounding the wind turbine.
Accordingly, the air taken in through the tower air intake and guided upwards by the guiding means will be relatively dry and thus well suited for cooling the generator by itself or for blending with possibly more humid cooling air from other sources.
Furthermore, the tower air may advantageously be mixed with air in the rotatable front assembly origination from one or more different air intakes, such as air intakes corresponding to the above-described front assembly air intakes. In this case, the dry tower air will reduce the relative humidity of the cooling air resulting from the mixing. Accordingly, the tower air may advantageously be used to adjust the relative humidity of the cooling air, thereby reducing the risk of causing corrosion in the stator windings 131.
According to a further embodiment of the invention, the cooling system further comprises a tower fan arranged within the tower.
The tower fan may cause a larger amount of ambient air to be drawn in through the tower air intake.
In some embodiments, more than one tower fan may be arranged at various positions within the tower, e.g. in the vicinity of the tower air intake, close to the upper end of the tower, etc.
According to a further embodiment of the invention, the rotatable front assembly comprises one or more openings facing the generator, the openings being adapted to feed the cooling air to the generator.
The openings may in particular be formed in a rotor front plate between the hub and the generator.
According to a further embodiment of the invention, a filter is arranged in the vicinity of each of the one or more openings, i.e. in such a way that the cooling air passing through the respective opening is filtered before entering the generator.
According to a further embodiment of the invention, the filter arranged in each of the one or more openings is selected from the group consisting of a moisture filter, a dirt filter, and a salt filter.
According to a further embodiment of the invention, the cooling system further comprises one or more front fans arranged in the vicinity of at least one of the one or more openings.
More specifically, a front fan may be arranged in the vicinity of each opening, i.e. on the generator side of the opening, on the hub side of the opening, or within the opening itself. Preferably, each opening is equipped with at least one fan, such that the cooling air from the rotatable front assembly is drawn through the openings and into the generator.
According to a further embodiment of the invention, the cooling system further comprises a rear fan (main fan) arranged at a side of the generator facing away from the rotatable front assembly, the rear fan being adapted to draw the cooling air from the rotatable front assembly through the generator and towards the nacelle.
The rear fan may preferably be arranged within the nacelle at a position close to the generator to draw the cooling air from the rotatable front assembly through the generator and into an exhaust duct extending within the nacelle.
According to a further embodiment of the invention, the cooling system is further adapted to feed additional cooling air from the nacelle to the generator.
In this embodiment, cooling air is drawn into the generator from both sides, i.e. from the side facing the nacelle and from the side facing the rotatable front assembly. Thereby, a uniform cooling of the generator may be obtained.
According to a second aspect of embodiments of the invention which provide a method of cooling a generator of a wind turbine, the wind turbine comprising a nacelle supported by a tower, the generator, and a rotatable front assembly arranged on a side of the generator facing away from the nacelle. The method comprises (a) feeding cooling air from the rotatable front assembly to the generator.
This aspect of embodiments of the invention are based on the same idea as the first aspect discussed above.
According to a further embodiment of the invention, the cooling air comprises air taken in through a front assembly air intake and/or air taken in through a tower air intake.
In other words, the cooling air may consist of air taken in through the front assembly air intake, of air taken in through the tower air intake, or of a blend of air taken in through the front assembly air intake and air taken in through the tower air intake.
According to a further embodiment of the invention, the cooling air comprises a mixture of air taken in through a front assembly air intake and tower air taken in through a tower air intake located at a base portion of the tower, wherein the tower air is guided up through the tower and heated by power cables extending within the tower such that the relative humidity of the tower air is lower than the relative humidity of the air taken in through the front assembly air intake.
It is noted that embodiments of the invention have been described with reference to different subject matters. In particular, some embodiments have been described with reference to method type claims whereas other embodiments have been described with reference to apparatus type claims. However, a person skilled in the art will gather from the above and the following description that, unless otherwise indicated, in addition to any combination of features belonging to one type of subject matter also any combination of features relating to different subject matters, in particular to combinations of features of the method type claims and features of the apparatus type claims, is part of the disclosure of this document.
The aspects defined above and further aspects of embodiments of the present invention are apparent from the examples of embodiments to be described hereinafter and are explained with reference to the examples of embodiments. The invention will be described in more detail hereinafter with reference to examples of embodiments. However, it is explicitly noted that the invention is not limited to the described exemplary embodiments.
Some of the embodiments will be described in detail, with reference to the following figures, wherein like designations denote like members, wherein:
The wind turbine further comprises a cooling system for cooling the generator 130, 131, 132, in particular the generator windings 131, 132, by feeding cooling air 144 from the rotatable front assembly 140 into the generator 130, 131, 132. The cooling air 144 is obtained through front assembly air intake 141, or as tower air 122 which is guided from the tower 120 through tower air guiding means 152, such as a pipe. The cooling air may also be a blend of air taken in through the front assembly air intake 141 and tower air 122. In the latter case, the tower air 122 may in particular be useful for reducing the humidity of the cooling air 144, as will be described in more detail below in conjunction with
An inlet filter 142, such as a moisture filter, dirt filter, salt filter or a combination thereof, is arranged in the air intake 141 to filter the ambient air that is taken into the front assembly 140. Optionally, an inlet fan 143 may also be arranged in the vicinity of the air intake 141.
The cooling air 144 is guided into the generator 130, 131, 132 through suitable openings connecting the rotatable front assembly 140 and the generator 130, 131, 132. As will be discussed in more detail further below in conjunction with
In an optional modification of the embodiment, cooling air 113 may also be supplied from the nacelle 110 into the generator 130, 131, 132. For this purpose, ambient air is taken into the nacelle through filer 111 with support from fans 112 and guided into the generator 130, 131, 132 as shown in
It is explicitly noted that although
With regard to the remaining structure of the wind turbine shown in
With regard to
In a modification of the embodiment shown in
It is noted that
It is noted that the term “comprising” does not exclude other elements or steps and the use of the articles “a” or “an” does not exclude a plurality. Also elements described in association with different embodiments may be combined. It is further noted that reference signs in the claims are not to be construed as limiting the scope of the claims.
Number | Date | Country | Kind |
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102016214543.6 | Aug 2016 | DE | national |
16182958.5 | Aug 2016 | EP | regional |
This application claims priority to European Application No. EP 16182958.5, German Application No. DE 102016214543.6, and U.S. Application No. 62/371,388, all having a filing date of Aug. 5, 2016, the entire contents of all of which are hereby incorporated by reference.
Number | Date | Country | |
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62371388 | Aug 2016 | US |