TY - JOUR
T1 - Large-eddy simulation of scaled floating wind turbines in a boundary layer wind tunnel
AU - Wang, J.
AU - Wang, C.
AU - Castañeda, O. D.
AU - Campagnolo, F.
AU - Bottasso, C. L.
N1 - Publisher Copyright:
© Published under licence by IOP Publishing Ltd.
PY - 2018/6/19
Y1 - 2018/6/19
N2 - Floating offshore wind turbines are attracting an ever increasing interest for deep-water applications. Among the many different research aspects of floating offshore technology, understanding wake interactions of multiple floating wind turbines under complex motions is a particularly challenging task, which requires both suitable high-fidelity numerical models and relevant experimental observations. In this work, we first present a framework for the large-eddy simulation of FOWTs. Then, the simulation model is verified with the help of wind tunnel experimental data. Measurements were obtained in a neutrally stratified atmospheric boundary layer for very closely spaced wind turbine models, whose pitching motion is prescribed to simulate various wave-wind conditions. The pitching motion of the wind turbines induces vertical meandering of the wakes that interact with downstream turbines. Simulations are compared to experimental measurements in terms of inflow conditions and turbine response parameters, showing a reasonable matching, although longer runs are necessary for a more complete characterization of the results.
AB - Floating offshore wind turbines are attracting an ever increasing interest for deep-water applications. Among the many different research aspects of floating offshore technology, understanding wake interactions of multiple floating wind turbines under complex motions is a particularly challenging task, which requires both suitable high-fidelity numerical models and relevant experimental observations. In this work, we first present a framework for the large-eddy simulation of FOWTs. Then, the simulation model is verified with the help of wind tunnel experimental data. Measurements were obtained in a neutrally stratified atmospheric boundary layer for very closely spaced wind turbine models, whose pitching motion is prescribed to simulate various wave-wind conditions. The pitching motion of the wind turbines induces vertical meandering of the wakes that interact with downstream turbines. Simulations are compared to experimental measurements in terms of inflow conditions and turbine response parameters, showing a reasonable matching, although longer runs are necessary for a more complete characterization of the results.
UR - http://www.scopus.com/inward/record.url?scp=85049688935&partnerID=8YFLogxK
U2 - 10.1088/1742-6596/1037/7/072032
DO - 10.1088/1742-6596/1037/7/072032
M3 - Conference article
AN - SCOPUS:85049688935
SN - 1742-6588
VL - 1037
JO - Journal of Physics: Conference Series
JF - Journal of Physics: Conference Series
IS - 7
M1 - 072032
T2 - 7th Science of Making Torque from Wind, TORQUE 2018
Y2 - 20 June 2018 through 22 June 2018
ER -