REDUCED POWER OPERATION OF A WIND TURBINE
20210115898 · 2021-04-22
Inventors
Cpc classification
Y02E10/76
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
H02J3/46
ELECTRICITY
F05B2220/706
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2270/3201
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D7/0276
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
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
F03D7/0284
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D7/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2270/1077
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D9/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02J3/38
ELECTRICITY
Abstract
A method for operating a wind power installation is provided. The wind power installation comprises an aerodynamic rotor with rotor blades, where the rotor can be operated with a variable rotor rotation speed. The wind power installation outputs an output power generated from wind for feeding into an electrical supply grid. The wind power installation can be operated in a normal operating mode without power reduction and in a reduced operating mode with power reduction, in which a specified power reduced with respect to a rated installation power is specified. When operating in the reduced operating mode for wind speeds above a rated wind speed, at least in one rotation speed increase region, the wind power installation increases its rotor rotation speed as the wind speed rises further.
Claims
1. A method for operating a wind power installation, comprising: operating the wind power installation in a normal operating mode without power reduction, the wind power installation including an aerodynamic rotor operable with a rotation speed that is variable and having a plurality of rotor blades, and the wind power installation being configured to output an output power generated from wind for feeding into an electrical supply grid; and in a reduced operating mode, setting a power that is less than a rated installation power of the wind power installation, wherein when operating in the reduced operating mode and for wind speeds above a rated wind speed, at least in one rotation speed increase region, the wind power installation increases the rotation speed as wind speed increases.
2. The method as claimed in claim 1, wherein: depending on the wind speed, the wind power installation is operated in a partial-load operation, a full-load operation, or a storm operation, in the partial-load operation, the wind speed is below the rated wind speed so that a maximum power cannot be generated, in the full-load operation, the wind speed is equal to or greater than the rated wind speed and below an initial storm wind speed so that the maximum power is reachable, in the storm operation the wind speed is equal to or greater than the initial storm wind speed, and the power generated is less than the maximum power to protect the wind power installation, and in the reduced operating mode in the full-load operation, the wind power installation: holds the rotation speed constant at a reduced rated rotation speed for wind speeds greater than the rated wind speed and up to an escalation wind speed, which is greater than the rated wind speed and less than the initial storm wind speed.
3. The method as claimed in claim 1, comprising: in the reduced operating mode, setting the output power and/or the rotation speed in a partial-load operation depending on a predefined characteristic curve until the output power reaches the set power; as the wind speed continues to rise a full-load operation, regulating the output power to the set power and setting the rotation speed depending on the wind speed and a characteristic wind speed-rotation speed curve; and/or as the wind speed increases above an initial storm wind speed, setting the output power depending on the wind speed and a characteristic wind speed-power curve and setting the rotation speed depending on the wind speed and the characteristic wind speed-rotation speed curve.
4. The method as claimed in claim 2, comprising: increasing the rotation speed, in the reduced operating mode, above the reduced rated rotation speed and depending on a variable representative of stress on the plurality of rotor blades; increasing the rotation speed in the reduced operating mode above the reduced rated rotation speed in response to the variable representative of the stress exceeding stress threshold; and/or increasing the rotation speed in the reduced operating mode at values above a rated rotation speed.
5. The method as claimed in claim 1, wherein: operating in the normal operating mode is based on a normal characteristic rotation speed curve that depends on the wind speed, operating in the reduced operating mode is based on a reduced characteristic rotation speed curve that depends on the wind speed, in full-load operation, the reduced characteristic rotation speed curve has lower rotation speed values than the normal characteristic rotation speed curve for the same wind speed values up to a unification wind speed, the reduced characteristic rotation speed curve partially or fully matches the normal characteristic rotation speed curve for wind speeds exceeding the unification wind speed, and/or the reduced characteristic rotation speed curve has, in at least one section, higher rotation speeds than the normal characteristic rotation speed curve.
6. The method as claimed in claim 5, wherein: in the reduced operating mode, the rotation speed is lower at the rated wind speed than at a initial storm wind speed, and/or the unification wind speed corresponds to the initial storm wind speed or is less than the initial storm wind speed.
7. The method as claimed in claim 1, wherein: before the output power reaches the set power, a rotation speed curve that depends on the wind speed in a partial-load operation is specified, wherein the rotation speed curve is used in the normal operating mode and in the reduced operating mode, a reduced rated rotation speed is a rotation speed reached when the output power reaches the set power, wherein a reduced rated wind speed is less than an installation rated rotation speed and an installation rated wind speed, and in the reduced operating mode, as the wind speed increases to an escalation wind speed, the plurality of rotor blades are adjusted such that: the output power is not further increased, and the rotation speed is held at the reduced rated rotation speed.
8. The method as claimed in claim 1, wherein before the output power reaches the set power and/or up to a reduced rated power, the rotation speed and the output power in a partial-load operation are controlled depending on a characteristic rotation speed-power curve in the normal operating mode and the reduced operating mode, the rotation speed and the output power are reduced as the wind speed increases above a second storm wind speed, wherein the second storm wind speed is greater than an initial storm wind speed, a characteristic rotation speed curve that depends on the wind speed is specified for reducing the rotation speed, a characteristic power curve is specified for reducing the output power, and the characteristic rotation speed curve and the characteristic power curve are used for the normal operating mode and the reduced operating mode for wind speeds above the second storm wind speed.
9. A wind power installation, comprising: an electric generator configured to generate electric power; an aerodynamic rotor, having a plurality of rotor blades, configured to generate a mechanical power from wind for driving the electric generator, wherein the rotor is operated with variable rotor speeds; an inverter configured to feed output power generated from the wind into an electrical supply grid at a grid connection point; and a first controller configured to switch operation of the wind power installation between a normal operating mode without power reduction and a reduced operating mode with the power reduction, wherein: in the reduced operating mode a power that is less than a rated installation power is set, and a second controller is configured to control the wind power installation such that: when operating in the reduced operating mode and for wind speeds above a rated wind speed, at least in a rotation speed increase region, the rotation speed is increased as the wind speed increases.
10. (canceled)
11. A wind farm, comprising: a plurality of wind power installations including the wind power installation as claimed in claim 9, wherein the plurality of wind power installations are configured to feed respective output powers into the electrical supply grid at a common grid connection point.
12. The wind farm as claimed in claim 11, comprising: a central farm controller configured to set respective reduced powers for the plurality of wind power installations depending on an externally-received total power reduction value for the wind farm.
13. The method as claimed in claim 2, wherein in the reduced operating mode in the full-load operation, the wind power installation, as the wind speed increases further: increases the rotation speed continuously up to the initial storm wind speed; and/or increases it continuously up to a rated rotation speed.
14. The method as claimed in claim 13, wherein increasing the rotation speed continuously up to the initial storm wind speed is increasing the rotation speed linearly up to the initial storm wind speed.
15. The method as claimed in claim 3, wherein the predefined characteristic curve is a characteristic rotation speed-power curve.
16. The method as claimed in claim 4, wherein the stress is determined oscillation of at least one rotor blade of the plurality of rotor blades or torsional oscillation.
17. The method as claimed in claim 7, wherein in the reduced operating mode, as the wind speed increases to an escalation wind speed, the plurality of rotor blades are adjusted such that the output power is held to the set power.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0068] The invention will now be explained by way of example in more detail below with reference to forms of embodiment and with reference to the accompanying figures.
[0069]
[0070]
[0071]
[0072]
[0073]
[0074]
DETAILED DESCRIPTION
[0075]
[0076] In
[0077] A control apparatus (controller) 140 that operates the inverter 132, which forms a feed apparatus, is provided for control of the inverter 132. For a reduced-power operating mode, a reduction signal R can be supplied to a switching apparatus (processor, computer or controller) 142. The switching apparatus 142, which can also be part of the control apparatus 140, then initiates a change from normal operating mode into the reduced operating mode.
[0078]
[0079] The wind farm 112 of
[0080]
[0081] A reduced-power characteristic operating curve 302 at least initially matches the first characteristic operating curve, that is the first characteristic rotation speed-power curve 301, until it has reached the reduced rated rotation speed n.sub.NR and the reduced rated power P.sub.NR. The reduced specified power, which corresponds to this reduced rated power P.sub.NR, is then reached, and the output power must not be increased further. At the same time the rotor rotation speed n is frozen, so to speak, at this low rotation speed value. The rotor rotation speed n thus then has this reduced rated power rotation speed value n.sub.NR and retains it.
[0082] According to one form of embodiment,
[0083] Operation of the installation above the rated wind speed is thus to be illustrated with the aid of
[0084] The power optimized curve 401 thus shows the power-optimized operating mode OM0. Above the rated wind speed V.sub.Rated,OM0 the installation is regulated to the constant rated rotation speed N.sub.Soll up to the initial storm wind speed V.sub.SA, at which the installation changes over to storm operation in which the rotation speed is lowered linearly from the rated rotation speed N.sub.Soll of the power-optimized mode OM0 down to the spin rotation speed Nt at the switch-off wind speed Vmax.
[0085] As explained, the reduced power mode has a lower rated rotation speed N.sub.red and a rated wind speed V.sub.Rated,red that is also lowered, illustrated in
[0086] It has now been recognized that this procedure has, however, the disadvantage, that when operating at the lowered rated rotation speed N.sub.red low tip speed ratios develop, which entail distributions of the angle of attack with high negative angles of attack in the outer region of the rotor blade. Due to possible aero-elastic problems, however, these high negative angles of attack are not desirable, as has now been recognized.
[0087] An improved operational control in the full-load range in reduced-power operating modes is therefore proposed, since these high negative angles of attack are avoided, illustrated in
[0088] The wind speed V.sub.SA,red does not, as indicated in the illustration, have to be greater than V.sub.Rated,OM0, but can also lie below it although in any event is greater than V.sub.Rated,red. The wind speed V.sub.SA,red can be determined in advance through simulations, and depends at least on the installation type and on the reduced rated power. As an alternative it is proposed that oscillations are measured when the installation is operating, and that when threshold values are exceeded the installation is taken to a higher rotation speed. The wind speed V.sub.SA,red is in any event not a fixed value, but differs from one installation type to another installation type as a result of the different rotor blade designs.
[0089]
[0090] At wind speeds above the rated wind speed V.sub.Rated the tip speed ratios on the one hand continuously fall, while the blade angles, which can also be referred to as the pitch angles, continuously rise. The fall in the tip speed ratio λ, which is related to the rotation speed n, the blade radius R and the wind speed v.sub.wind through the equation
can easily be seen, since the rotation speed n, and thereby the blade tip speed v.sub.tip is constant in the full-load region. The radius R ish derived from the radius of the aerodynamic rotor, and is used in this context as the radius R of the rotor blade, and thus basically refers to the length of the rotor blade plus the remaining distance between the blade root and the axis of rotation. The radial positions of the rotor blade according to the diagrams of
[0091] In any event, the increase in the pitch angle with rising wind speed can equally easily be understood, since the wind power increases with the increasing wind speed, and only a reducing fraction of the energy contained in the incoming flow may be converted into mechanical energy at the rotor shaft in order to achieve the constant rated power. The blades are thus turned correspondingly far out of the wind.
[0092] The smaller is the rated power, for example when operating at reduced rated power, the higher are the necessary pitch angles. The effect of the falling tip speed ratio and the rising pitch angle on the angle of attack present at the blade is different, and is to be illustrated with the aid of
[0093] If the tip speed ratio is now reduced and the pitch angle initially remains largely constant, it can be the case, for example at the transition from the partial load region into the rated load region, i.e., at the transition from partial-load operation to full-load operation, that an angle of attack curve such as is illustrated by the dotted line 502 in
[0094] The increases in the angle of attack are greatest in the inner region of the blade and fall towards the blade tip, indicated in
[0095] In particular at high wind speeds and low power take-up by the generator, the situation in which very low tip speed ratios occur in combination with simultaneously large pitch angles then arises at the rotor blade. The consequence of this is a high gradient in the aerodynamic angles of attack over the blade radius, with higher angles of attack in the inner blade region and correspondingly lower angles of attack in the outer blade region, which can have large negative values. Above a predictable combination of wind speed and reduced-power operating mode, the angles of attack even become so low that stalling can occur on the rear side of the rotor blade profile, which is referred to as negative stalling.
[0096] It has in particular been recognized that these incoming flow conditions are to be avoided, since remaining in this state can lead to oscillation of the rotor blade and finally to structural damage at the blade. On top of this, this flow state should also be avoided for acoustic reasons, since the stalling can have high sound emissions as a result, and these, due to their frequency spectrum, can also be perceived as even more unpleasant.
[0097]
[0098] A simultaneous rise in the tip speed ratio and fall in the pitch angle with unchanged installation power then leads, in the proposed new operating mode, to an angle of attack distribution as shown in
[0099] Thus, the purpose of avoiding operating states in the operation of the wind power installation in which aero-elastic phenomena lead to rotor blade oscillations that can lead to increased installation stresses is served. Furthermore, the purpose of avoiding greatly increased sound emissions in heavy wind or when the installation is in storm operation is served.