CONTROL METHOD FOR A WIND TURBINE
20180355846 ยท 2018-12-13
Inventors
Cpc classification
F05B2270/802
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D7/0224
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D7/0204
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2270/32
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
F05B2270/321
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Method of controlling a wind turbine. A data set is obtained that includes a direction of the wind relative to the wind turbine and a pitch angle parameter representing a pitch angle of at least one of the wind turbine blades. Based on the obtained data sets, a statistical representation of the pitch angle parameter as a function of the relative wind direction is determined, which is then used in estimating a wind direction offset corresponding to the relative wind direction where the pitch angle parameter attains a maximum. The relative wind direction of the wind turbine is then adjusted as a function of the wind direction offset.
Claims
1. A method of controlling a wind turbine, the wind turbine comprising a wind direction sensor, a yawing system, wind turbine blades attached to a rotor hub, and a control system for pitching the blades relative to the rotor hub and for turning the wind turbine rotor relative to the wind, the method comprising: obtaining, at time intervals, a data set comprising a direction of the wind relative to the wind turbine as measured by the wind direction sensor and a pitch angle parameter representing a pitch angle of at least one of the wind turbine blades; determining over time a statistical representation of the pitch angle parameter as a function of the relative wind direction based on the obtained data sets; estimating from the statistical representation a wind direction offset corresponding to the relative wind direction where the pitch angle parameter is a maximum; adjusting the relative wind direction as a function of the wind direction offset; determining a control parameter of the wind turbine as a function of the adjusted relative wind direction; and controlling the wind turbine according to the control parameter.
2. A method of controlling according to claim 1, further comprising pre-setting a number of intervals of the pitch angle parameter, and determining a statistical representation for each interval based on the obtained data sets for that interval.
3. A method of controlling according to claim 2, wherein the relative wind direction is adjusted as a function of the wind direction offset estimated from the statistical representation of the interval comprising the pitch angle parameter at the time of adjusting.
4. A method of controlling according to claim 2, further comprising estimating a wind direction offset for each interval of pitch angle parameter, and wherein the relative wind direction is adjusted by using an interpolation between the wind direction offsets of the different intervals.
5. A method of controlling according to claim 1, wherein a data set is disregarded if the detected wind speed is below a first wind speed threshold.
6. A method of controlling according to claim 1, wherein a data set is disregarded if the power is below a first power threshold.
7. A method of controlling according to claim 1 wherein a data set is disregarded if the pitch angle is below a first pitch angle threshold.
8. A method of controlling according to claim 1, where the first wind speed threshold or first power threshold or first pitch angle threshold corresponds to a full load operation of the wind turbine.
9. A method of controlling according to claim 6, where the first power threshold corresponds to a factor times a nominal power of the wind turbine, the factor being in the interval of 0.8-1.2, such as in the range of 0.9-1.0.
10. A method of controlling according to claim 7, where the first pitch angle threshold corresponds to a factor times a nominal pitch angle of the wind turbine, the factor being in the interval of 0.8-1.5, such as in the range of 0.95-1.3.
11. A method of controlling according to claim 1, where the statistical representation is determined over a predetermined time period.
12. A method of controlling according to claim 1, where the statistical representation is determined based on a predetermined number of data sets.
13. A method of controlling according to claim 1, where the statistical representation is determined based on at least a predetermined number of data sets within at least one predetermined interval of relative wind direction, such as in an interval of [(6)(4)], [(1)1 ] and/or [46].
14. A method of controlling according to claim 1, wherein of obtaining the data set and determining the statistical representation are repeated at time intervals.
15. A method of controlling according to claim 1, where each data set further includes an estimated wind speed and wherein determining the statistical representation further includes determining a statistical representation for a number of wind speed intervals, such as for wind speed intervals of 14-15 m/s, 15-16 m/s, 16-17 m/s, and/or 17-18 m/s, and wherein a wind direction offset is estimated from each statistical representation, the method further comprising adjusting the relative wind direction as a function of the wind direction offset corresponding to the wind speed at the time of adjusting.
16. A method of controlling according to claim 1, where the adjusting of the relative wind direction comprises subtracting the wind direction offset times a gain factor smaller than one, wherein the gain factor is the interval of 0.1-0.95, such as in the interval of 0.4-0.6, such as equal to 0.5.
17. A method of controlling according to claim 1, where the relative wind direction is further adjusted as a function of earlier wind direction offsets.
18. A method of controlling according to claim 1, comprising correcting the relative wind direction as measured by the wind direction sensor according to a predefined set of wind correction parameters.
19. A method of controlling according to claim 1, wherein the control parameter comprises a yaw angle for the wind turbine and the controlling of the wind turbine comprises yawing the wind turbine according to the yawing parameter.
20. A control system for a wind turbine configured to perform an operation, comprising: obtaining, at time intervals, a data set comprising a direction of the wind relative to the wind turbine as measured by the wind direction sensor and a pitch angle parameter representing a pitch angle of at least one of the wind turbine blades; determining over time a statistical representation of the pitch angle parameter as a function of the relative wind direction based on the obtained data sets; estimating from the statistical representation a wind direction offset corresponding to the relative wind direction where the pitch angle parameter is a maximum; adjusting the relative wind direction as a function of the wind direction offset; determining a control parameter of the wind turbine as a function of the adjusted relative wind direction; and controlling the wind turbine according to the control parameter.
21. (canceled)
22. A wind turbine, comprising: a wind direction sensor; a yawing system; wind turbine blades attached to a rotor hub; and a control system for pitching the blades relative to the rotor hub and for turning the wind turbine rotor relative to the wind, the control system configured to perform an operation, comprising: obtaining, at time intervals, a data set comprising a direction of the wind relative to the wind turbine as measured by the wind direction sensor and a pitch angle parameter representing a pitch angle of at least one of the wind turbine blades; determining over time a statistical representation of the pitch angle parameter as a function of the relative wind direction based on the obtained data sets; estimating from the statistical representation a wind direction offset corresponding to the relative wind direction where the pitch angle parameter is a maximum; adjusting the relative wind direction as a function of the wind direction offset; determining a control parameter of the wind turbine as a function of the adjusted relative wind direction; and controlling the wind turbine according to the control parameter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0082] In the following different embodiments of the invention will be described with reference to the drawings, wherein:
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DETAILED DESCRIPTION OF THE DRAWINGS
[0090]
[0091] Generally, the wind turbine is therefore controlled according to partial load operation until a certain reference power is reached and the controlling is switched to full load operation. Often the reference power is the same as the nominal power for the wind turbine but may under some conditions and in some situations like for example during unstable weather conditions, be reduced by a factor to increase the safety of the wind turbine. Likewise, the reference power may under some conditions be uprated by a factor for example during favourable weather conditions.
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[0093] The determination of the wind direction offset parameter may be repeated at time intervals based on new and recollected sets of data, 206.
[0094] The determination of the wind direction offset parameter and thereby the adjustment of the wind direction may be improved by sorting the data sets used in the statistical representation and disregard invalid data or data of lower quality, 207. For example a data set may be disregarded if the wind speed and/or the power is outside a certain range. The control system may further include counting the number of samples or data sets at each relative wind direction, 208, thereby ensuring that the statistical representation is based on a certain minimum amount of data in different wind direction intervals. Also, the quality of the statistical representation may be further improved by checking before estimating the wind direction offset parameter that the overall shape of the histogram of the average pitch angle parameter as a function of the measured wind direction is as expected, 209.
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[0097] Preferably and yielding a more accurate wind direction correction, the wind direction offset parameters may be determined independently of the wind speed. This is illustrated in
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[0099] This approach may be improved even further by interpolating between the wind direction offsets determined from the different pitch intervals to thereby obtain interpolated values for the wind direction offset parameters. This is illustrated in
[0100] Often, several wind direction sensors 800 are used on a wind turbine. In that case the wind direction measurements from each sensor 800 may be corrected individually by different sets of wind direction offset parameters, and the adjusted relative wind direction from each sensor then fused to yield a common final corrected relative wind direction to be applied in the control system of the wind turbine. This is illustrated in
[0101] Fault detection and fault diagnosis may be performed of each of the sensors, and the more failures or abnormal behaviour a sensor shows, the lower it will be weighted in the sensor fusion 805. In the event that both sensors show abnormal behaviour, the fusion may start to take into account previous sensor results as well.
[0102] The examples and embodiments described above are for example purposes only, and it will be appreciated that features of different embodiments may be combined with one another in any combination.
[0103] While preferred embodiments of the invention have been described, it should be understood that the invention is not so limited and modifications may be made without departing from the invention. The scope of the invention is defined by the appended claims, and all devices that come within the meaning of the claims, either literally or by equivalence, are intended to be embraced therein.