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Microstructure-sensitive investigation on the plastic deformation and damage initiation of amorphous particles reinforced composites

机译:非晶颗粒增强复合材料塑性变形和损伤萌生的微观敏感研究

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In this paper, new analytical modeling and simulation methodology based on finite element method are proposed to study microstructure sensitivity of damage initiation and plastic deformation in amorphous particles reinforced Mg-composites. In this simulation methodology, composite microstructure has been discussed based on the real morphology considering the inclusions with their actual size, shape, spatial positioning, and in the exact amount. The main purpose of this study is to develop an in-depth understanding of relationship between the microstructure, plastic deformation and damage initiation of these novel light metal composites. Results indicate that when particles are closely associated in the cluster, the plastic flow of the matrix inside the cluster is constrained and would initiate only after plastic flow begins in the regions without clusters. The constraint of deformation will promote early the void formation in the matrix and interface debonding in the clustering region. Experimental findings show that there is a strong relationship between damage formation and the local volume fraction of the reinforcement. Moreover, the results of tensile testing and microstructural characterization clearly reveal that the distribution of reinforcement particles controls the extrusion load which obviously reflects the 0.2%YS of the composite samples. (c) 2016 Elsevier Ltd. All rights reserved.
机译:本文提出了一种基于有限元方法的新的分析建模和仿真方法,以研究非晶态颗粒增强镁复合材料的损伤萌生和塑性变形的微观结构敏感性。在这种模拟方法中,已经基于真实的形态讨论了复合材料的微观结构,其中考虑了夹杂物的实际尺寸,形状,空间位置以及确切数量。这项研究的主要目的是深入了解这些新型轻金属复合材料的微观结构,塑性变形和损伤引发之间的关系。结果表明,当颗粒在团簇中紧密结合时,团簇内部基质的塑性流动受到限制,并且仅在没有团簇的区域开始塑性流动之后才开始。变形的约束将提早促进基体中空隙的形成以及聚集区域中界面的剥离。实验结果表明,损伤形成与钢筋的局部体积分数之间存在很强的关系。此外,拉伸测试和微观结构表征的结果清楚地表明,增强颗粒的分布控制了挤出载荷,这明显反映了复合材料样品的0.2%YS。 (c)2016 Elsevier Ltd.保留所有权利。

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