The present invention relates to approaches for designing wind farm layouts.
Wind turbines with more compact and sophisticated drivetrains and larger rotors are being installed in locations with more challenging wind conditions increasing risk of premature failure of turbine components due to incorrect design, excessive loading or non-optimised operation. Accurate estimation of the turbine loads becomes even more important. It is possible to instrument the turbine in order to measure such loads, however the cost of hardware and subsequent integration and data analysis is usually prohibitively expensive. The alternative approach could be instrumenting one or two turbines and extrapolating the data to the rest of the wind park. However, such approach while still being useful for relatively steady wind conditions, does not capture many important transient wind conditions for example turbulence, wake effects or wind shear. Wind park CFD modelling could provide this information, but is too computationally intensive to be practical.
The proposed method allows more representative, cost effective and faster estimation of turbine loads using wind loading model developed using wind park level modelling and wind park SCADA data. Results of such model can then be used as an input into turbine level aeroelastic load model converting wind regime experienced by turbine into drivetrain loads. Resulting turbine loading model can be used for on-line or off-line turbine loads calculations and does not require permanent turbine instrumentation.
The invention is easily implemented and computationally efficient because intensive CFD and aeroelastic modelling is replaced by 3D airflow database and turbine loads transfer function developed offline.
The invention will now be described with reference to the drawings, in which:
In the following, the term “windpark” can mean an area in which wind turbines are located, or an area in which wind turbines are proposed to be located.
Referring now to
Turbine level wind flow 130 is obtained from 3D wind flow database 150 and windpark level wind flow parameters 160. Windpark level wind flow parameters 160 include wind speed, wind direction, turbulence, ambient temperature and air density and are obtained from wind park level atmospheric conditions 170. For an existing windpark, these parameters can be obtained from, for example, SCADA, met-mast or LIDAR data. For example, data from anemometers or other wind-sensing sensors mounted on a wind turbine may be used. For a windpark under development, these parameters can be from met masts located at proposed locations of the wind turbines. It is important to note that 3D wind flow database 150 is constructed from data relating to turbine level wind flow 130 at one or more turbines at different locations in the wind farm under a range of wind park atmospheric conditions. Typically this is previously obtained wind park atmospheric conditions. Typically 3D wind flow database 150 is a look-up table.
Turbine operating parameters 120 are obtained from turbine operating state 180, typical derived from SCADA data.
It will be appreciated that turbine loads transfer function 140 is specific to the turbine and wind flow . . . .
Referring now to
Once constructed, the 3D airflow database can be used ‘offline’, for example, as a look-up table, with real-time turbine operating data to give real-time hub-loading data. This eliminates the need for intensive CFD modelling of incoming wind airflow data in real time.
If necessary, the model can be tuned further using instrumentation campaign where one or more turbines in selected locations are instrumented with load measurements hardware for a limited period of time.
Resulting model allows to estimate wind turbine hub loads faster (because it substitutes computationally intensive wind park CFD modelling and turbine hub loads calculations with databases developed off-line, more accurately (because it captures transient atmospheric conditions through CFD modelling) and in a cost effective way (no additional load measuring equipment is required) using readily available wind park level wind conditions and turbine SCADA data. Wind park level wind conditions can be measured using metmasts or estimated from the SCADA data from the most appropriate turbines (depending on the wind direction and turbine operation).
Advantages of this approach include the following outcomes:
Estimated turbine loads include loads due to wind turbulence and wind shear by using readily available SCADA data and without an additional instrumentation.
The resulting model can be used as look up table or a function in combination with turbine controller data for on-line load calculations.
This method can be used during wind park planning and design stage to optimise turbine locations producing maximum power while minimising damage from operating loads. This means that the approach can be used for designing a wind park layout using the approach described above in a method comprising the steps of:
Combined with long-term wind assessment for the wind park and damage calculations for the turbine components, method can be used for the useful life assessment for turbine components.
The method can be used for defining wind turbine control strategies optimal for the wind park (e.g. maximise power production while optimising damage accumulation, extend the useful life of turbine components, etc.)
| Number | Date | Country | Kind |
|---|---|---|---|
| 1617584.6 | Oct 2016 | GB | national |
| Filing Document | Filing Date | Country | Kind |
|---|---|---|---|
| PCT/IB2017/056230 | 10/9/2017 | WO | 00 |