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CFD Validation of Scaled Floating Offshore Wind Turbine Rotor

机译:鳞片浮式海上风力发电机转子的CFD验证

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Offshore wind turbines are lucrative than land based turbines for its high and consistent wind speed. Since the floating wind turbines are economical than gravity based or fixed bottom type wind turbines, offshore wind industry is exploring all possible ways to adopt well established oil and gas floating platform technologies. Unlike fixed bottom wind turbines, floating platform is subjected to complex motions in all 6 degrees of freedom that introduces new challenges in predicting the aerodynamic forces on the rotor. The conventional approach to determine the aerodynamic forces is not applicable for offshore floating turbines that is subjected to hydrodynamic and all other forces. The current study is focused on computationally validating the scaled model of NREL 5MW wind turbine that is experimentally investigated for various frequencies of platform surge motions at University of Strathclyde. The thrust forces and rotor torque are computed by numerically simulation and compared with experimental outcome showing a good agreement in the trend. The minor deviation in the aerodynamic forces is attributed to the higher prediction of lift and drag forces by XFOIL.
机译:海上风力涡轮机因其高且稳定的风速而比陆基风力涡轮机有利可图。由于浮动式风力发电机比重力式或固定式底盘式风力发电机更经济,因此海上风力产业正在探索所有可能的方法来采用成熟的油气浮动平台技术。与固定式底部风力涡轮机不同,浮动平台在所有6个自由度上都要经受复杂的运动,这在预测转子上的空气动力方面带来了新的挑战。确定空气动力的常规方法不适用于承受水动力和所有其他力的海上浮动式涡轮机。当前的研究重点是通过计算验证NREL 5MW风力发电机的比例模型,该模型在Strathclyde大学进行了各种频率的平台喘振运动的实验研究。通过数值模拟计算推力和转子扭矩,并将其与实验结果进行比较,显示出趋势上的一致性。空气动力的较小偏差归因于XFOIL对升力和阻力的更高预测。

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