Lidar measurements of yawed-wind-turbine wakes: characterization and validation of analytical models
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Published:2020-10-08
Issue:4
Volume:5
Page:1253-1272
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ISSN:2366-7451
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Container-title:Wind Energy Science
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language:en
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Short-container-title:Wind Energ. Sci.
Author:
Brugger PeterORCID, Debnath Mithu, Scholbrock Andrew, Fleming PaulORCID, Moriarty PatrickORCID, Simley EricORCID, Jager DavidORCID, Roadman JasonORCID, Murphy Mark, Zong Haohua, Porté-Agel Fernando
Abstract
Abstract. Wake measurements of a scanning Doppler lidar mounted on the nacelle of a full-scale wind turbine during a wake-steering experiment were used for the characterization of the wake flow, the evaluation of the wake-steering set-up, and the validation of analytical wake models. Inflow-scanning Doppler lidars, a meteorological mast, and the supervisory control and data acquisition (SCADA) system of the wind turbine complemented the set-up.
Results from the wake-scanning Doppler lidar showed an increase in the wake deflection with the yaw angle and that the wake deflection was not in all cases beneficial for the power output of a downstream turbine due to a bias of the inflow wind direction perceived by the yawed wind turbine and the wake-steering design implemented. Both observations could be reproduced with an analytical model that was initialized with the inflow measurements. Error propagation from the inflow measurements that were used as model input and the power coefficient of a waked wind turbine contributed significantly to the model uncertainty. Lastly, the span-wise cross section of the wake was strongly affected by wind veer, masking the effects of the yawed wind turbine on the wake cross sections.
Funder
Office of Energy Efficiency and Renewable Energy
Publisher
Copernicus GmbH
Subject
Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment
Reference36 articles.
1. Abdulrahman, M. A.: Wind Farm Layout Optimization Considering Commercial
Turbine Selection and Hub Height Variation, PhD thesis, University of
Calgary, Calgary, Canada, https://doi.org/10.11575/PRISM/28711, 2017. a 2. Abkar, M., Sørensen, J. N., and Porté-Agel, F.: An Analytical Model for the Effect of Vertical Wind Veer on Wind Turbine Wakes, Energies, 11,
7, https://doi.org/10.3390/en11071838, 2018. a 3. Adaramola, M. and Krogstad, P.-Ã.: Experimental investigation of wake effects on wind turbine performance, Renew. Energ., 36, 2078–2086,
https://doi.org/10.1016/j.renene.2011.01.024, 2011. a 4. Annoni, J., Fleming, P., Scholbrock, A., Roadman, J., Dana, S., Adcock, C., Porte-Agel, F., Raach, S., Haizmann, F., and Schlipf, D.: Analysis of control-oriented wake modeling tools using lidar field results, Wind Energ. Sci., 3, 819–831, https://doi.org/10.5194/wes-3-819-2018, 2018. a 5. Barthelmie, R. J., Pryor, S. C., Frandsen, S. T., Hansen, K. S., Schepers,
J. G., Rados, K., Schlez, W., Neubert, A., Jensen, L. E., and Neckelmann, S.:
Quantifying the Impact of Wind Turbine Wakes on Power Output at Offshore Wind
Farms, J. Atmos. Ocean. Tech., 27, 1302–1317, https://doi.org/10.1175/2010JTECHA1398.1, 2010. a, b
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