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Aeroelastic load control of large and flexible wind turbines through mechanically driven flaps

机译:通过机械驱动的风门片控制大型,柔性风力涡轮机的气动弹性载荷

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摘要

The load reduction of the wind turbine through the use of flaps actuated through novel mechanical network is studied. The aeroservoelastic model of the wind turbine couples the composite beam description for blades and tower to the unsteady vortex-lattice method for the aerodynamics. The trailing-edge flap dynamics are incorporated to the wind turbine model to enable the use of mechanical network to control the flap rotation. A passive mechanical controller is proposed, which senses the relative angular velocity of the trailing-edge flap and generate the control torque. The mechanical controller is realised by passive components including springs, dampers and inerters in rotational form. The parameters of the mechanical components and flap configuration parameters are optimised by H-infinity and H-2 optimisation, respectively. It is shown that mechanical controllers exhibit marked reductions in blade root-bending moment, blade tip deflection and tower top fore-aft deflection in the presence of external disturbances, especially with the optimised flap configuration parameters. (C) 2019 The Franklin Institute. Published by Elsevier Ltd. All rights reserved.
机译:通过使用新颖的机械网络驱动的风门片,研究了风力涡轮机的负荷降低。风力涡轮机的气动弹性模型将叶片和塔架的复合梁描述与空气动力学的非定常涡旋格子方法相结合。后缘襟翼动力学已合并到风力涡轮机模型中,以允许使用机械网络控制襟翼旋转。提出了一种被动机械控制器,该控制器可感测后缘襟翼的相对角速度并生成控制扭矩。机械控制器由被动组件实现,包括旋转形式的弹簧,阻尼器和惰轮。机械组件的参数和襟翼配置参数分别通过H-无穷大和H-2优化来优化。结果表明,在存在外部干扰的情况下,尤其是采用优化的襟翼配置参数时,机械控制器的叶片根部弯曲力矩,叶片梢部挠度和塔顶前后偏差均明显降低。 (C)2019富兰克林研究所。由Elsevier Ltd.出版。保留所有权利。

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  • 来源
    《Journal of the Franklin Institute》 |2019年第14期|7810-7835|共26页
  • 作者单位

    Univ Warwick Sch Engn Coventry CV4 7AL W Midlands England;

    Nanyang Technol Univ Sch Mech & Aerosp Engn Singapore 639798 Singapore;

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