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Shape optimization under uncertainty for rotor blades of horizontal axis wind turbines

机译:水平轴风力涡轮机转子叶片不确定性下的形状优化

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We present a computational framework for the shape optimization of a Horizontal-Axis Wind Turbine (HAWT) rotor blade under uncertainty. Our framework integrates aerodynamic simulations based on the blade element method which utilizes reduced order models of the blade structure and wind load with design sensitivity analysis and nonlinear programming. The wind velocity is modeled as a stochastic process to account for variations in time and space. An additional stochastic process accounts for uncertainties in the structural material properties. The uncertainty propagation is based on a non-intrusive polynomial chaos expansion that allows accurate estimation of stochastic performance metrics such as generated power and structural compliance. Sensitivities of cost and constraint functions with respect to shape parameters namely twist angles are computed with an efficient scheme to enable gradient based optimization. To demonstrate the effect of uncertainty, designs obtained from optimization under uncertainty are compared to those obtained from deterministic optimization. (C) 2019 Elsevier B.V. All rights reserved.
机译:我们在不确定度下呈现用于水平轴风力涡轮机(HAWT)转子叶片的形状优化的计算框架。我们的框架基于叶片元件方法集成了空气动力学模拟,其利用刀片结构的减少阶模型和具有设计敏感性分析和非线性编程的风力载量。风速被建模为随机过程,以考虑时间和空间的变化。额外的随机过程占结构材料特性中的不确定性。不确定性传播基于非侵入式多项式混沌扩展,其允许精确地估计随机性能度量,例如产生的功率和结构顺应性。成本和约束函数相对于形状参数的敏感性,包括有效方案来计算扭曲角度,以实现基于梯度的优化。为了证明不确定性的效果,将从不确定性的优化获得的设计与从确定性优化获得的那些进行比较。 (c)2019 Elsevier B.v.保留所有权利。

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