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A variable-fidelity hybrid surrogate approach for quantifying uncertainties in the nonlinear response of braided composites

机译:一种用于量化编织复合材料非线性响应中的不确定性的可变保真性混合替代方法

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摘要

The ultimate strength prediction of textile composite materials requires high-fidelity FE modeling with information-passing multiscale schemes and damage initiation and propagation algorithms. The numerical demand of this procedure together with the complexity of the observed response surface, hampers the quantification of uncertainties contributing to the scatter of strength values. This study proposes a surrogate methodology able to efficiently emulate the nonlinear multiscale procedure, based on a combination of artificial neural networks and Kriging modeling under a variable-fidelity framework. A triaxially braided textile under longitudinal tension is used as a use-case and the methodology is employed to identify the most critical parameters in terms of variance via a global sensitivity analysis technique. Results show strong interaction effects between the uncertain parameters. The approach is non-intrusive and can be easily extended to other types of textiles and load cases. (C) 2021 Elsevier B.V. All rights reserved.
机译:纺织复合材料的最终强度预测需要具有信息通过多尺度方案和损伤启动和传播算法的高保真FE模型。该程序的数值需求与观察到的响应表面的复杂性一起,妨碍了有助于强度值散射的不确定性的量化。本研究提出了一种能够在可变保真框架下的人工神经网络和Kriging建模的组合有效地模拟非线性多尺度程序的代理方法。在纵向张力下的三轴编织纺织品用作用例,并且使用方法来通过全局敏感性分析技术在方差方面识别最关键的参数。结果显示不确定参数之间的强烈互动效应。该方法是非侵入性的,可以很容易地扩展到其他类型的纺织品和负载情况。 (c)2021 elestvier b.v.保留所有权利。

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