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Model-based aeroelastic analysis and blade load alleviation of offshore wind turbines

机译:基于模型的空气弹性分析和叶片装载近海风力涡轮机

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Offshore wind turbines take advantage of the vast energy resource in open waters but face structural integrity challenges specific to their operating environment that require cost-effective load alleviation solutions. This paper introduces a computational methodology for model-based two- and three-dimensional design of load alleviation systems on offshore wind turbines. The aero-hydro-servoelastic model is formulated in a convenient state-space representation, coupling a multi-body composite beam description of the main structural elements with unsteady vortex-lattice aerodynamics and Morison's description of the hydrodynamics. The aerodynamics does not require empirical corrections and focuses on a control-oriented approach to the modelling. Numerical results show that through trailing-edge flaps actuated by a robust controller, more than 60% reduction in dynamic loading due to atmospheric turbulence can be achieved for the sectional model and close to 13% reduction in blade loads is obtained for the complete three-dimensional floating turbine.
机译:海上风力涡轮机利用了开放水域的广大能源资源,而是面临特定于其操作环境的结构完整性挑战,需要具有成本效益的负载缓解解决方案。本文介绍了在海上风力涡轮机上的载荷缓解系统的基于模型的两维设计的计算方法。 Aero-Cumro-Servoelastic型号在方便的状态空间表示中配制,耦合多体组合梁描述,具有非稳态涡流 - 格式空气动力学和摩托的流体动力学描述。空气动力学不需要经验校正,并侧重于面向控制的建模方法。数值结果表明,通过由鲁棒控制器驱动的后缘襟翼,可以为截面模型实现由于大气湍流引起的动态负荷减少超过60%,并且为完整的三个较低的刀片载荷减少了13%。尺寸浮动涡轮机。

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