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Four-dimensional wind field generation for the aeroelastic simulation of wind turbines with lidars

, , , and . Wind energy science, 7 (2): 539-558 (2022)
DOI: 10.5194/wes-7-539-2022

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Nonlinear model predictive controller design for extreme load mitigation in transition operation region in wind turbines., , and . CCA, page 1167-1172. IEEE, (2015)Control Design For Disturbance Rejection in Wind Turbines., , , and . ACC, page 1515-1519. IEEE, (2018)The space-time structure of turbulence for lidar-assisted wind turbine control, , , , and . Renewable energy, 195 (August): 293-310 (2022)Loop shaping based robust control for floating offshore wind turbines, , , and . The Science of Making Torque from Wind (TORQUE 2020), 1618, 2, page 022066. Institute of Physics Publishing, (2020)Lidar-assisted Extreme Load Reduction by Multi-variable Protective Derating, , and . The Science of Making Torque from Wind (TORQUE 2018), 1037, page 032025. Bristol, IOP Publishing, (2018)Lidar-assisted control concepts for wind turbines. Universität Stuttgart, München, Dissertation, (2015)Erscheint auch als Online-Ausgabe unter https://doi.org/10.18419/opus-8796.Model of the Correlation between Lidar Systems and Wind Turbines for Lidar-Assisted Control, , and . Journal of Atmospheric and Oceanic Technology, 30 (10): 2233--2240 (2013)Optimization of a feed-forward controller using a CW-lidar system on the CART3., , , , , , , , , and . ACC, page 3715-3720. IEEE, (2015)Analysis of control-oriented wake modeling tools using lidar field results, , , , , , , , , and . Wind Energy Science, 3 (2): 819-831 (2018)IEAWind Task 32: Wind Lidar Identifying and Mitigating Barriers to the Adoption of Wind Lidar, , , , , , , , , and . Remote Sensing, 10 (3): 406 (2018)