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Verification of a Numerical Model of the Offshore Wind Turbine from the Alpha Ventus Wind Farm Within OC5 Phase III

, , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , and . Proceedings of the ASME 37th International Conference on Ocean, Offshore and Arctic Engineering 2018, 10 : Ocean Renewable Energy, page OMAE2018-77589, V010T09A056. ASME, (2018)

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Validation of Numerical Models of the Offshore Wind Turbine From the Alpha Ventus Wind Farm Against Full-Scale Measurements Within OC5 Phase III, , , , , , , , , and 17 other author(s). Journal of offshore mechanics and arctic engineering, 143 (1): 012002 (2021)FAST.Farm load validation for single wake situations at alpha ventus, , , and . Wind energy science, 6 (5): 1247-1262 (2021)OC6 project Phase III : validation of the aerodynamic loading on a wind turbine rotor undergoing large motion caused by a floating support structure, , , , , , , , , and 52 other author(s). Wind energy science, 8 (4): 465-485 (2023)INNWIND.EU scaled experiments of the OC4-DeepCwind semi-submersible, , , , , , , , , and 8 other author(s). Dataset, (2020)Related to: Lemmer, F., Azcona, J., Matha, D., Amann, F., Campagnolo, F., Bredmose, H., & Montinari, P. (2014). INNWIND.EU D4.24: Floating wind model tests Ecole Centrale de Nantes 2014.Verification of a Numerical Model of the Offshore Wind Turbine from the Alpha Ventus Wind Farm Within OC5 Phase III, , , , , , , , , and 23 other author(s). Proceedings of the ASME 37th International Conference on Ocean, Offshore and Arctic Engineering 2018, 10 : Ocean Renewable Energy, page OMAE2018-77589, V010T09A056. ASME, (2018)Progress in the validation of rotor aerodynamic codes using field data, , , , , , , , , and 13 other author(s). Wind energy science, 8 (2): 211-230 (2023)