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Experimental investigation and numerical modeling of creep response of glass fiber reinforced polymer composites

机译:玻璃纤维增​​强聚合物复合材料蠕变响应的实验研究与数值模拟

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Predictive models play an important role for increasing the reliability of composite structures over time, but a great deal of experimental data is requested. In this paper, results from creep experiments on uniaxial E-glass fiber reinforced polymer (FRP) single ply laminates, performed at different stress levels, are presented. The tests duration was of 42 months. Analytical modeling of the viscous behavior of the tested GFRP composite, under linear and nonlinear viscoelastic hypotheses, is reported. A discussion on the comparison of creep strain response by Burgers model, with parameters obtained from fitting of data for different test duration, is also proposed. Finally, predictive finite element method (FEM) simulations were carried out for discussing the deferred behavior induced by creep, for composite layers used for repair purposes in hydrogen transportation pipes. Numerical results highlighted a non-negligible difference in creep strain values, pointing out that a model based on experimental tests with shorter duration leads to a conservative composite design.
机译:预测模型在随着时间的推移提高复合结构的可靠性,但请求大量实验数据。在本文中,提出了在不同应力水平下进行单轴E-玻璃纤维增​​强聚合物(FRP)单层层压材料的蠕变实验的结果。测试持续时间为42个月。据报道,在线性和非线性粘弹性假设下测试GFRP复合材料的粘性行为的分析建模。还提出了关于Burgers模型的蠕变应变响应比较的讨论,其中提出了根据不同测试持续时间的数据获得的参数。最后,进行预测有限元方法(FEM)模拟,用于讨论蠕变诱导的渗透行为,用于修复氢气输送管中的复合层。数值结果强调了蠕变应变值的不可忽略的差异,指出基于持续时间较短的实验测试的模型导致保守的复合设计。

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