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A fiber orientation-adapted integration scheme for computing the hyperelastic Tucker average for short fiber reinforced composites

机译:一种用于计算短纤维增强复合材料的超塑料褶卡平均值的纤维取向适应的集成方案

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摘要

In this article we introduce a fiber orientation-adapted integration scheme for Tucker's orientation averaging procedure applied to non-linear material laws, based on angular central Gaussian fiber orientation distributions. This method is stable w.r.t. fiber orientations degenerating into planar states and enables the construction of orthotropic hyperelastic energies for truly orthotropic fiber orientation states. We establish a reference scenario for fitting the Tucker average of a transversely isotropic hyperelastic energy, corresponding to a uni-directional fiber orientation, to microstructural simulations, obtained by FFT-based computational homogenization of neo-Hookean constituents. We carefully discuss ideas for accelerating the identification process, leading to a tremendous speed-up compared to a naive approach. The resulting hyperelastic material map turns out to be surprisingly accurate, simple to integrate in commercial finite element codes and fast in its execution. We demonstrate the capabilities of the extracted model by a finite element analysis of a fiber reinforced chain link.
机译:在本文中,我们将基于角度中央高斯纤维取向分布引入适用于应用于非线性材料规律的Tucker定向平均程序的纤维取向适应的集成方案。这种方法是稳定的w.r.t.纤维取向退化为平面状态,使得能够构建真正正交纤维取向状态的正交性高弹性能量。我们建立了拟合横向各向同性超弹性能量的Tucker平均值的参考场景,该电流对应于单向纤维取向,以通过Neo-Hookean成分的基于FFT的计算均化获得的微观结构模拟。我们仔细讨论了加速识别过程的想法,导致与天真的方法相比巨大的速度。由此产生的超弹性材料贴图结果令人惊讶地准确,简单地集成在商业有限元代码中,并在其执行中快速。我们通过纤维增强链环节的有限元分析来证明提取模型的能力。

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