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Wind Turbine Fluid-Structure Interaction using an Actuator Line Solver and a Structural Dynamics Solver in a Tightly-Coupled Implementation

机译:风力涡轮机流体结构使用致动器线求解器和结构动力学求解器在紧密耦合的实施方案中的相互作用

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A partitioned fluid-structure interaction (FSI) solver is developed from an existing actuator-line method solver and an author-developed structural dynamics solver to evaluate the deformation of a wind turbine's blades in response to uniform inflow. The main focus of the present analysis is to assess the importance of blade flexibility on wind turbine response by comparing force and generated power estimates between simulations with rigid and deformable blades. A secondary objective is to improve the understanding of the blade deformation-wind loading coupling by comparing cases with loose and tight coupling between the velocity field and the structural displacements. The present study will provide the framework for future simulations on a refined fluid mesh, which will incorporate spatially and temporally varying loadings from atmospheric boundary layer (ABL) turbulence.
机译:从现有的致动器线方法求解器和作者开发的结构动力学求解器开发了分隔的流体结构相互作用(FSI)求解器,以评估风力涡轮机叶片的变形响应均匀的流入。本分析的主要重点是通过比较力与刚性和可变形叶片的模拟之间的力和产生功率估计来评估叶片灵活性对风力涡轮机响应的重要性。次要目的是通过比较速度场和结构位移之间的松动和紧密联接的情况来改善叶片变形风装载耦合的理解。本研究将提供用于在精制的流体网上的未来模拟的框架,其将包括来自大气边界层(ABL)湍流的空间和时间变化的负载。

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