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Microscale simulation of adhesive and cohesive failure in rough interfaces

机译:粗界面的粘合剂和内聚失效的微观模拟

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摘要

Multi-material lightweight designs, e.g. the combination of aluminum with fiber reinforced composites, are a key feature for the development of innovative and resource efficient products. The connection properties of such bi-material interfaces are influenced by the geometric structure on different length scales. In this article a modeling strategy is presented to study the failure behavior of rough interfaces within a computational homogenization scheme. We study different local phenomena and their effects on the overall interface characteristics, e.g. the surface roughness and different local failure types as cohesive failure of the bulk material and adhesive failure of the local interface. Since there is a large separation in the length scales of the surface roughness, which is in the micrometer range, and conventional structural components, we employ a numerical homogenization approach to extract effective traction-separation laws to derive effective interface parameters. Adhesive interface failure is modeled by cohesive elements based on a traction separation law and cohesive failure of the bulk material is described by an elastic-plastic model with progressive damage evolution. (C) 2017 Elsevier Ltd. All rights reserved.
机译:多材料轻质设计,例如铝与纤维增强复合材料的组合,是开发创新和资源高效产品的关键特征。这种双层界面的连接特性受到不同长度尺度上的几何结构的影响。在本文中,提出了一种建模策略,以研究计算均质化方案中粗糙接口的故障行为。我们研究了不同的局部现象及其对整体界面特征的影响,例如,表面粗糙度和不同的局部故障类型作为散装材料的粘性故障和局部界面的粘合衰竭。由于在千分尺范围和传统的结构部件中的表面粗糙度的长度尺度中,我们采用了数值均质化方法来提取有效的牵引分离法来实现有效的界面参数。粘合界面故障由基于牵引分离法的粘性元件建模,并且由渐进式损伤进化的弹性塑料模型描述了散装材料的粘性故障。 (c)2017 Elsevier Ltd.保留所有权利。

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