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首页> 外文期刊>Engineering Optimization >Optimal curved fibre orientations of a composite panel with cutout for improved buckling load using the Efficient Global Optimization algorithm
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Optimal curved fibre orientations of a composite panel with cutout for improved buckling load using the Efficient Global Optimization algorithm

机译:用高效全局优化算法改进屈曲负荷的切口复合板的最佳弯曲纤维方向

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摘要

Composite structures with cutouts (like panels with holes) are a challenge to design because discontinuities of this kind provoke stress concentrations and become critical regions. With curved fibres, the effect of these discontinuities can be decreased by choosing the fibre paths properly. In this article, fibre-path optimization to improve the buckling load of laminated composite panels with cutouts is studied. Two fibre path parameterizations are tested: the usual curvilinear Cartesian and the radial one, proposed in this article, in which the fibre orientations vary linearly with the Euclidean distance from the centre of the panel. To reduce the simulation costs associated with the optimization, the Efficient Global Optimization (EGO) algorithm is used. EGO is a technique based on a stochastic process approach (Kriging) that approximates expensive-to-evaluate functions and sequentially maximizes the expected improvement to update the surrogate at each iteration. A stiffened panel with a cutout subjected to compression and in-plane shearing loads is analysed. The results show that the buckling load when curved fibres are used is substantially higher than the buckling load for straight-fibre laminates. In addition, the optimization framework indicates a low final computational burden.
机译:具有切口的复合结构(如带孔的面板)是设计的挑战,因为这种挑衅应力集中的不连续性并成为关键区域。通过弯曲纤维,通过正确选择纤维路径,可以降低这些不连续性的效果。在本文中,研究了改善用切口改善层压复合板的屈曲负荷的光纤路径优化。测试了两个光纤路径参数化:本文中提出的通常的曲线笛卡尔和径向1,其中纤维取向随着距离面板中心的欧几里德距离而变化。为了减少与优化相关的仿真成本,使用有效的全局优化(EGO)算法。 EGO是基于随机处理方法(Kriging)的技术,其近似于昂贵的评估功能,并且顺序地最大化预期的改进以在每次迭代时更新代理。分析了具有压缩和面内剪切载荷的切口的加强面板。结果表明,使用弯曲纤维时屈曲负荷基本上高于直纤维层压板的屈曲负荷。此外,优化框架表示最终的最终计算负担。

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