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Simulating in-plane fatigue damage in woven glass fibre-reinforced composites subject to fully reversed cyclic loading

机译:模拟玻璃纤维增​​强复合材料在完全反向循环载荷下的面内疲劳损伤

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摘要

The interest in using fibre-reinforced composites in structural components is increasing. Some of these structural composites, such as wind turbine blades, aircraft components and torsion shafts are subject to fatigue loadings. It is widely accepted that fully reversed cyclic loading is the most adverse loading for fibre-reinforced composites, but the modelling of the material behaviour under this loading condition is very difficult. In this paper, a damage model is presented for woven glass fibre-reinforced composites subject to fully reversed cyclic loading. First fatigue experiments have been conducted in displacement-controlled fully reversed bending and the stiffness degradation and damage patterns have been observed. Based on these experimental data, a damage model has been developed, which includes the in-plane stress components and the degradation of the in-plane elastic properties. The model has been implemented in a commercial finite-element code and simulation of the successive stages in the fatigue life has been performed. The model has been validated for a plain woven glass fabric reinforced composite and simulated stiffness degradation, damage growth and damage distribution have been compared with experimental data.
机译:在结构部件中使用纤维增强复合材料的兴趣正在增加。这些结构复合材料中的一些,例如风力涡轮机叶片,飞机部件和扭力轴,会承受疲劳载荷。对于纤维增强的复合材料来说,完全逆向循环载荷是最不利的载荷,这一点已被广泛接受,但是在这种载荷条件下对材料性能进行建模非常困难。在本文中,提出了玻璃纤维增​​强复合材料承受完全反向循环载荷的损伤模型。在位移控制的完全反向弯曲中进行了第一个疲劳实验,并观察到了刚度的下降和损伤模式。基于这些实验数据,开发了一种损伤模型,其中包括面内应力分量和面内弹性特性的退化。该模型已经以商业有限元代码实现,并且已经执行了疲劳寿命的连续阶段的仿真。该模型已针对平纹玻璃纤维增​​强复合材料进行了验证,并将模拟的刚度退化,损伤增长和损伤分布与实验数据进行了比较。

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