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Identifying Structure–Property Relationships Through DREAM.3D Representative Volume Elements and DAMASK Crystal Plasticity Simulations: An Integrated Computational Materials Engineering Approach

机译:通过Dream.3D代表性容量元素和锦缎晶体塑性模拟识别结构性质关系:综合计算材料工程方法

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Abstract Predicting, understanding, and controlling the mechanical behavior is the most important task when designing structural materials. Modern alloy systems—in which multiple deformation mechanisms, phases, and defects are introduced to overcome the inverse strength–ductility relationship—give raise to multiple possibilities for modifying the deformation behavior, rendering traditional, exclusively experimentally-based alloy development workflows inappropriate. For fast and efficient alloy design, it is therefore desirable to predict the mechanical performance of candidate alloys by simulation studies to replace time- and resource-consuming mechanical tests. Simulation tools suitable for this task need to correctly predict the mechanical behavior in dependence of alloy composition, microstructure, texture, phase fractions, and processing history. Here, an integrated computational materials engineering approach based on the open source software packages DREAM.3D and DAMASK (Düsseldorf Advanced Materials Simulation Kit) that enables such virtual material development is presented. More specific, our approach consists of the following three steps: (1) acquire statistical quantities that describe a microstructure, (2) build a representative volume element based on these quantities employing DREAM.3D, and (3) evaluate the representative volume using a predictive crystal plasticity material model provided by DAMASK. Exemplarily, these steps are here conducted for a high-manganese steel.
机译:<标题>抽象 ara id =“par1”>预测,理解和控制机械行为是设计结构材料时最重要的任务。推出了多种变形机制,阶段和缺陷的现代合金系统,以克服逆强度 - 延展性关系 - 给予改变变形行为的多种可能性,呈现传统,专门的实验基合金发育工作流量不合适。因此,为了快速高效的合金设计,希望通过模拟研究预测候选合金的机械性能,以更换时间和资源消耗的机械测试。适用于该任务的仿真工具需要正确地预测合金组成,微观结构,质地,相位分数和加工历史的机械行为。这里,呈现了一种基于开源软件包Dream.3D和锦缎(Düsseldorf先进材料仿真套件)的集成计算材料工程方法,可以提供这种虚拟材料开发。更具体地,我们的方法包括以下三个步骤:(1)获取描述微观结构的统计量,(2)基于采用Dream.3D的这些数量构建代表体积元素,并且使用A评估代表体积锦缎提供的预测晶体塑性材料模型。示例性地,这里对这些步骤进行了高锰钢。

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