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A micromechanical model for loading and unloading behavior of fiber reinforced plastics under cyclic loading

机译:循环载荷下纤维增强塑料装载和卸载行为的微机械模型

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摘要

The high fatigue resistance and low weight features make the unidirectional-carbon fiber reinforced plastics (UD-CFRP) attractive for cyclic loading applications. However, the complex damage mechanisms within the composite hinder the understanding of its fatigue response. An energy-based fatigue model has been proposed for the fatigue behavior of epoxy polymers. However, this kind of approaches dependent on the accurate description of the material's behavior. Our work aims to build a representative volume element model (RVE) for the simulation of the cyclic shear loading behavior of UD-CFRP, which could support the later extension of an energy-based fatigue model. To precisely reproduce the micromechanical stress-strain distribution within the matrix, a nonlinear viscoelastic model has been implemented and validated against experimental data. As a result, the simulated UD-CFRP hysteresis, as well as the stiffness and strain energy density were accurately reproduced for two load ratios (R= 0.1andR= - 1). Additionally, the cyclic strain accumulation observed in the UD-CFRP can be accurately described by the proposed model.
机译:高疲劳性和低重量特征使单向碳纤维增强塑料(UD-CFRP)对循环加载应用具有吸引力。然而,复合材料内的复杂损伤机制阻碍了对其疲劳反应的理解。已经提出了一种基于能量的疲劳模型,用于环氧聚合物的疲劳行为。然而,这种方法取决于材料行为的准确描述。我们的工作旨在建立一个代表性体积元素模型(RVE),用于模拟UD-CFRP的循环剪切加载行为,这可以支持后来的能量基疲劳模型的延伸。为了精确地再现矩阵内的微机械应力 - 应变分布,已经实施了非线性粘弹性模型和验证了实验数据。结果,对于两个负载比(R = 0.1andr = -1)精确地再现模拟的UD-CFRP滞后以及刚度和应变能密度。另外,可以通过所提出的模型来精确描述在UD-CFRP中观察到的循环应变累积。

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