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Micromechanical simulations of additively manufactured aluminum alloys

机译:含有铝合金的微机械模拟

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摘要

A computational approach to simulating the deformation response of additively manufactured aluminum alloys is presented. A three-dimensional microstructure with the grain geometry typical for aluminum alloys produced by selective laser melting is generated by the method of step-by-step packing. The grain behavior is described in terms of crystal plasticity with explicit consideration of the slip systems. A phenomenological equation is used to describe the critical resolved shear stress taking into account the grain cellular-dendritic substructure, grain boundary strengthening, and strain hardening. The microstructure-based constitutive model is used in simulations of quasistatic tension. In order to reduce the computational costs, quasistatic loading is simulated in terms of dynamics using an explicit time integration scheme which provides high numerical efficiency for solving non-linear problems. The calculation results for a polycrystalline model of additively manufactured aluminum alloy subjected to tension and shear along three different directions are presented to illustrate what might be obtained from the micromechanical simulations. (C) 2020 Elsevier Ltd. All rights reserved.
机译:提出了一种模拟加成制造的铝合金变形响应的计算方法。通过逐步填充方法产生具有选择性激光熔化产生的铝合金颗粒几何形状的三维微观结构。晶粒行为在结晶可塑性方面描述了具有明确考虑滑动系统的晶体可塑性。现象学等式用于描述考虑晶粒细胞 - 树突状的晶体结构,晶界强化和应变硬化的临界分辨剪切应力。基于微结构的本构体型模型用于拟型张力的模拟。为了降低计算成本,使用明确的时间集成方案在动态方面模拟了Quasistatic加载,这为解决非线性问题提供了高数效率的高度数值效率。提出了对张力和剪切沿三个不同方向进行张力和剪切的铝合金的多晶模型的计算结果以说明从微机械模拟中可以获得的内容。 (c)2020 elestvier有限公司保留所有权利。

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