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Micromechanical Modeling Approach to Derive the Yield Surface for BCC and FCC Steels Using Statistically Informed Microstructure Models and Nonlocal Crystal Plasticity

机译:利用统计信息化微观结构模型和非局部晶体可塑性推导BCC和FCC钢屈服面的微机械建模方法

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摘要

In order to describe irreversible deformation during metal forming processes, the yield surface is one of the most important criteria. Because of their simplicity and efficiency, analytical yield functions along with experimental guidelines for parameterization become increasingly important for engineering applications. However, the relationship between most of these models and microstructural features are still limited. Hence, we propose to use micromechanical modeling, which considers important microstructural features, as a part of the solution to this missing link. This study aims at the development of a micromechanical modeling strategy to calibrate material parameters for the advanced analytical initial yield function Barlat YLD 2004-18p. To accomplish this, the representative volume element is firstly created based on a method making use of the statistical description of microstructure morphology as input parameter. Such method couples particle simulations to radical Voronoi tessellations to generate realistic virtual microstructures as representative volume elements. Afterwards, a nonlocal crystal plasticity model is applied to describe the plastic deformation of the representative volume element by crystal plasticity finite element simulation. Subsequently, an algorithm to construct the yield surface based on the crystal plasticity finite element simulation is developed. The primary objectives of this proposed algorithm are to automatically capture and extract the yield loci under various loading conditions. Finally, a nonlinear least square optimization is applied to determine the material parameters of Barlat YLD 2004-18p initial yield function of representative volume element, mimicking generic properties of bcc and fcc steels from the numerical simulations.
机译:为了描述金属成型过程中不可逆的变形,屈服面是最重要的标准之一。由于其简单性和效率,分析屈服函数以及用于参数化的实验准则对于工程应用变得越来越重要。但是,大多数这些模型与微观结构特征之间的关系仍然有限。因此,我们建议使用考虑了重要的微结构特征的微机械建模作为该缺失环节解决方案的一部分。本研究旨在开发一种微机械建模策略,以校准用于先进分析初始屈服函数Barlat YLD 2004-18p的材料参数。为此,首先基于利用微观结构形态的统计描述作为输入参数的方法来创建代表性体积元素。这种方法将粒子模拟与基本的Voronoi镶嵌耦合,以生成逼真的虚拟微结构作为代表的体积元素。然后,使用非局部晶体可塑性模型通过晶体可塑性有限元模拟来描述代表性体积元的塑性变形。随后,开发了基于晶体可塑性有限元模拟的构造屈服面的算法。该算法的主要目的是在各种负载条件下自动捕获和提取产量位点。最后,采用非线性最小二乘法优化来确定代表体积元素的Barlat YLD 2004-18p初始屈服函数的材料参数,并通过数值模拟模仿了bcc和fcc钢的通用性能。

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