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Selection of Interface DoFs in Hub-Blade(s) Coupling of Ampair Wind Turbine Test Bed

机译:Ampair风力涡轮机试验台的枢纽刀片耦合界面DOF的选择

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Substructure coupling is an important tool in several applications of modal analysis. It is particularly relevant in virtual prototyping of complex systems and responds to actual industrial needs, especially in an experimental context. Furthermore, the reverse problem, the decoupling of a substructure from an assembled system, arises when a substructure cannot be tested separately but only when coupled to neighboring substructures, a situation often encountered in practice. In this paper, the dynamic behavior of the Ampair test bed wind turbine rotor, made by three blades - each one bolted to the hub at three points - is analyzed. The aim is both to identify the dynamic behavior of the rotor starting from the frequency response functions (FRFs) of blades and hub, and to select a reduced set of relevant DoFs to represent the interface between blades and hub. FRFs to be used in the coupling procedure are obtained starting from FE model of each substructure, by using a super-element based computational approach. The decoupling problem, with the aim of identifying the dynamic behavior of each blade from the FRFs of the assembled rotor and of the hub, is also considered.
机译:子结构耦合是模态分析的几种应用中的重要工具。它在复杂系统的虚拟原型中尤其相关,并响应实际工业需求,尤其是在实验环境中。此外,反向问题,来自组装系统的子结构的解耦时,当不能单独测试,但仅在耦合到相邻的子结构时,在实践中经常遇到的情况。本文采用三刀片制造的Ampair试验台风力涡轮机转子的动态行为 - 分析了三个点螺栓到毂的每一个。目的既可识别从刀片和集线器的频率响应函数(FRF)开始的转子的动态行为,并选择一组减少的相关DOF,以表示叶片和集线器之间的界面。通过使用基于超元素的计算方法从每个子结构的FE模型开始获得耦合过程中的FRFS。还考虑了去耦问题,目的是识别从组装转子和毂的组装转子的FRF的每个刀片的动态行为。

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