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Fiber-level numerical simulation of biaxial braids for mesoscopic morphology prediction validated by X-ray computed tomography scan

机译:X射线计算机断层扫描验证的介于思科形态预测的双轴辫状纤维级数值模拟

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摘要

This paper proposes a modeling methodology to predict the 3D and internal geometry of biaxial braids. Inspired by the digital element approach, braided yarns are modeled as a bundle of virtual fibers. Here we adopt truss elements to a virtual fiber with actual material properties instead of beam elements that have limitations due to the beam flexural rigidity. The mesoscopic morphology prediction of two common braid patterns of the diamond (1/1) and regular (2/2) are validated by a comprehensive quantitative comparison with X-ray micro-computed tomography (CT) scans of braided carbon fibers. We find that the fiber-level frictional behavior is able to explain the jammed state of braids wherein the frictional dissipation energy quickly grows, while the braid has a stable elongation, diameter, and braid angle. Parametric studies illustrate how the increase in the coefficient of friction affects the yarn cross-sectional shape, whereas it has an insignificant effect on the crimp and jammed state of braids. Models also reveal that changing a wide range of the fiber modulus of elasticity hardly impacts the mesoscopic morphology and crimp of the braids.
机译:本文提出了一种建模方法来预测双轴辫子的3D和内部几何形状。灵感来自数字元素方法,编织纱线被建模为一束虚拟纤维。在这里,我们采用桁架元件,具有实际材料特性而不是由于光束弯曲刚度而具有限制的光束元件。通过与编织碳纤维的X射线微型计算机断层扫描(CT)扫描的综合定量比较,验证了金刚石(1/1)和常规(2/2)的两种常见编织图案的介观形态预测。我们发现纤维级摩擦行为能够解释摩擦散热能量迅速增长的搅拌状态,而编织物具有稳定的伸长率,直径和编织角。参数研究说明了摩擦系数的增加如何影响纱线横截面形状,而它对卷曲和堵塞状态具有微不足道的曲线效果。模型还揭示了改变广泛的纤维弹性模量几乎不会影响辫子的介观形态和卷曲。

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