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Simulation of micromechanical damage to obtain mechanical properties of bimodal Al using XFEM

机译:使用XFEM模拟微机械损伤以获得双峰Al的机械性能

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In this paper, we focus on the stress-strain behavior prediction of the bimodal bulk Al5083 series which are comprised of Ultra-Fine Grains (UFG) separated by Coarse Grain (CG) regions. This material is selected due to the availability of the required data in the literature. The CGs in the UFG matrix effectively prevents microcracks from propagation, leading to enhance ductility and toughness while the strength remains high. In this work, initially the dependency of stress-strain behavior of the model on the CG distribution in constant volume fraction is investigated by extraction of RVEs from optical microscopy (OM) images of the real material. Then, XFEM is implemented for bimodal materials considering various fracture criteria for brittle and ductile phases in maximum traction and cohesive law. The solution convergence of such a problem with irregular geometry, plasticity and crack initiation-propagation without any defined pre-cracks demanded extreme effort that accomplished by refining and arranging meshes and adding damage stabilizations. As a result of the above procedures, the sensitivity of the modeling procedure to various RVEs is obtained, the crack initiation-propagation pattern in microscale is predicted and consequently, the global stress-strain behavior result is obtained. It is shown that the predicted results are in good agreement with the available experimental results. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在本文中,我们集中于双峰Al5083系列的应力-应变行为预测,该系列由被粗粒(CG)区域分隔的超细粒(UFG)组成。选择该材料是因为文献中提供了所需数据。 UFG基体中的CG有效地防止了微裂纹的传播,从而在强度保持较高的同时增强了延展性和韧性。在这项工作中,最初是通过从真实材料的光学显微镜(OM)图像中提取RVE来研究模型在恒定体积分数下应力-应变行为对CG分布的依赖性。然后,针对双峰材料实施XFEM,以最大的牵引力和内聚规律考虑脆性和延性相的各种断裂准则。这种问题的解决方案具有不规则的几何形状,可塑性和裂纹萌生-扩展,而没有任何预先定义的裂纹,需要通过精炼和布置网格并增加损伤稳定性来付出极大的努力。作为上述过程的结果,获得了建模过程对各种RVE的敏感性,预测了微观尺度下裂纹的萌生扩展模式,从而获得了整体应力应变行为结果。结果表明,预测结果与实验结果吻合良好。 (C)2015 Elsevier Ltd.保留所有权利。

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