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Global Sensitivity Analysis for the Elastic Properties of Unidirectional Carbon Fibre Reinforced Composites Based on Metamodels

机译:基于元模型的单向碳纤维增强复合材料弹性性能的全局敏感性分析

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摘要

A fast and effective numerical method to predict mechanical properties of carbon fibre reinforced polymer (CFRP) composites, even elastic properties, is complicated due to the mismatch of mechanical properties among the constituents. Furthermore, it is not possible to completely characterise the influence of multiple parameters including mechanical and structural parameters on the bulk properties of CFRP by experiments. In this study, a three-phase finite-element model consisting of matrix, carbon fibre and interface was developed to predict the elastic mechanical behaviour of unidirectional CFRP. The elastic properties in terms of two Young's moduli, two Poisson's ratios and a shear modulus were calculated by means of a homogenisation method. High-accuracy Kriging surrogate models were constructed to fast-calculate the elastic responses for a large number of samples. Combining Kriging and high dimensional model representation (HDMR) methods, a global sensitivity analysis was performed to study how the microscopic parameters influence the elastic responses to get a deeper understanding of elastic property-structure relationship. Eleven parameters, including mechanical and geometry properties of constituent phases, were chosen as inputs. Independent and cooperative effects of input parameters on the elastic properties of the studied composites were surveyed via first- and second-order sensitivity indices, respectively. An impbrtance ranking of these parameters for each elastic response was derived directly by these indices. The procedure proposed in this work could serve as a theoretical guide for further design optimisation of CFRP.
机译:由于碳纤维增强聚合物(CFRP)复合材料组分之间的力学性能不匹配,一种快速有效的预测其力学性能,甚至弹性性能的数值方法非常复杂。此外,通过实验无法完全描述包括机械和结构参数在内的多个参数对CFRP整体性能的影响。本研究建立了由基体、碳纤维和界面组成的三相有限元模型,用于预测单向碳纤维复合材料的弹性力学行为。通过均化方法计算了两个杨氏模量、两个泊松比和一个剪切模量的弹性性质。为了快速计算大量样本的弹性响应,建立了高精度克里格替代模型。结合克里格法和高维模型表示(HDMR)方法,进行了全局灵敏度分析,以研究微观参数如何影响弹性响应,从而更深入地了解弹性性质-结构关系。选择了11个参数作为输入,包括组成相的力学和几何性质。通过一阶和二阶灵敏度指数分别考察了输入参数对所研究复合材料弹性性能的独立和协同效应。通过这些指数直接得出了每个弹性响应的这些参数的重要性排序。本文提出的程序可为碳纤维布的进一步优化设计提供理论指导。

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