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Simultaneous ply-order, ply-number and ply-drop optimization of laminate wind turbine blades using the inverse finite element method

机译:使用逆有限元方法同时进行层合风力涡轮机叶片的层序,层数和层落优化

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AbstractThis paper presents a novel methodology to simultaneously determine the optimal ply-order, ply-number and ply-drop configuration of laminate wind turbine blades using simulation-based optimization, considering the shape that the laminates are expected to attain after large elastic deformations. This methodology combines Genetic Algorithms with the Inverse Finite Element Method.As an actual engineering application, we redesigned the composite stacking layout of a medium-power 40-kW wind turbine blade to reduce its weight, subjected to mechanical and manufacturing constraints such as allowable tip deflection, maximum stress, natural frequencies, and maximum number of successive identical plies. Results demonstrate weight reductions of up to 15% compared to the initial layout, proving that the proposed methodology is a robust redesign tool capable of effectively determining the optimal composite stacking layout of laminate wind turbine blades.
机译: 摘要 本文提出了一种新颖的方法,可以同时确定层压风力涡轮机叶片的最佳层序,层数和层降配置使用基于仿真的优化,考虑到预期的层压板在大的弹性变形后将获得的形状。这种方法结合了遗传算法和逆有限元法。 作为实际的工程应用,我们重新设计了复合材料的堆放布局一种中功率40 kW风力涡轮机叶片,以减轻其重量,并受到机械和制造方面的限制,例如允许的叶尖偏斜,最大应力,固有频率以及连续的相同层片的最大数量。结果表明,与初始布局相比,其重量减少了多达15%,证明了该方法是一种可靠的重新设计工具,能够有效地确定层压风轮机叶片的最佳复合堆叠布局。

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