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Microstructural design of composite materials using fixed-grid modeling and noise-resistant smoothed Kriging-based approximate optimization

机译:复合材料的微结构设计,使用固定网格模型和基于抗噪平滑Kriging的近似优化

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This paper discusses a microstructural optimization of composites using a fixed-grid modeling technique and an approximate optimization approach. In particular, we design a microscopic structure of composites to improve its reliability. As the response surface becomes nonlinear and inaccuracies may be included in the sampling results in using the fixed-grid model, applicability of several approximation methods such as a polynomial-based approach, neural network, and Kriging method are investigated. Especially, the inaccuracy is regarded as a noise in sampling data, and applicability of the noise-resistant smoothed Kriging (ns-Kriging) is investigated. As an example, cross-sectional shape of fiber in a unidirectional fiber-reinforced plastics is optimized. By applying several approximate optimization methods to the problem, applicability of those methods is investigated. Next, cross-sectional shape of fibers in a composite plate subject to bending and compression is optimized using the ns-Kriging-based method. Numerical results illustrate applicability of the proposed approach.
机译:本文讨论了使用固定网格建模技术和近似优化方法对复合材料进行微结构优化。特别是,我们设计了复合材料的微观结构以提高其可靠性。在使用固定网格模型的情况下,由于响应面变为非线性并且采样结果中可能包含不准确性,因此对几种近似方法(如基于多项式的方法,神经网络和Kriging方法)的适用性进行了研究。尤其是,在采样数据中将不准确性视为噪声,并且研究了抗噪声平滑Kriging(ns-Kriging)的适用性。例如,单向纤维增强塑料中纤维的横截面形状被优化。通过对问题应用几种近似优化方法,研究了这些方法的适用性。接下来,使用基于ns-Kriging的方法优化复合板中经受弯曲和压缩的纤维的截面形状。数值结果说明了该方法的适用性。

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