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Computational schemes on the bending fatigue deformation and damage of three-dimensional orthogonal woven composite materials

机译:三维正交编织复合材料弯曲疲劳变形与损伤的计算方案

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摘要

This paper reports a computational scheme on three-dimensional orthogonal woven composites (3DOWC) fatigue behavior under three-point low-cycle bending. Based on three-point cyclic bending fatigue tests, a microstructure model was established at yarn level for predicting the fatigue behaviors. The stiffness degradation and damage morphologies of the 3DOWC were obtained from finite element analysis (FEA) and compared with those from experimental. The stress distribution, energy absorption and damage morphologies in the different parts of the 3DOWC sample were obtained to analyze fatigue failure mechanisms. The influences of warp yarns, weft yarns and Z-yarn systems were discussed. It is found that warp yarn system bears the most cyclic load as well as energy absorption. The stress concentration area was located in the central loading area, especially in the warp yarns that is close to the Z-yarns side and its channels. The triangle damage area was gradually generated from up to down in the stress concentration area as the loading cycle increased.
机译:本文报告了在三点低周弯曲下三维正交编织复合材料(3DOWC)疲劳行为的计算方案。基于三点循环弯曲疲劳试验,在纱线水平建立了微观结构模型,以预测疲劳行为。 3DOWC的刚度退化和损伤形态是通过有限元分析(FEA)获得的,并与实验进行了比较。获得了3DOWC样品不同部分的应力分布,能量吸收和损伤形态,以分析疲劳破坏机理。讨论了经纱,纬纱和Z纱系统的影响。发现经纱系统承担着最大的循环载荷以及能量吸收。应力集中区域位于中央负载区域,特别是在靠近Z纱侧及其通道的经纱中。随着加载周期的增加,三角形破坏区域在应力集中区域从上到下逐渐生成。

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