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A continuum damage mechanics model for fatigue and degradation of fiber reinforced materials

机译:一种连续损伤力学模型,用于疲劳和纤维增强材料的降解

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摘要

Objective of the present study is the definition of a continuum damage mechanics material model describing the degradation of fiber reinforced materials under fatigue loads up to final failure. Based on the linear elastic framework, a brittle damage model for fatigue conditions is derived, where the damage constitutes the only nonlinearity. The model accounts for damage effects by successive degradation of the elastic moduli. Assuming that material damage is driven by microplastic work, a stress-driven damage evolution equation is defined. For generality, a fully three-dimensional formulation on single ply level is employed. The model is implemented into a finite element program. In a validation against experimental data on filament-wound carbon fiber reinforced material, the model proves to provide a good numerical approximation of the damage during the cyclic loading history up to final material failure.
机译:本研究的目的是一种连续损伤力学材料模型的定义,描述了疲劳负荷下纤维增强材料的降解达到最终失效。 基于线性弹性框架,推导出疲劳条件的脆性损伤模型,其中损坏构成唯一的非线性。 该模型通过连续降解弹性模量来造成损伤效应。 假设材料损坏由微塑性工作驱动,定义了应力驱动的损伤演化方程。 对于一般性,采用单层水平的完全三维配方。 该模型实现为有限元程序。 在针对丝织碳纤维增强材料上对实验数据的验证中,该模型证明了在循环负载历史期间损坏的良好数值近似,直至最终的材料失效。

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