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Application of chord length distributions and principal component analysis for quantification and representation of diverse polycrystalline microstructures

机译:弦长分布和主要成分分析的应用,多种多晶微观结构的量化和表示

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Quantification of mesoscale microstructures of polycrystalline materials is important for a range of practical tasks of materials design and development. The current protocols of quantifying grain size and morphology often rely on microstructure metrics (e.g., mean grain diameter) that overlook important details of the mesostructure. In this work, we present a quantification framework based on directionally resolved chord length distribution and principal component analysis as a means of extracting additional information from 2-D microstructural maps. Towards this end, we first present in detail a method for calculating chord length distribution based on boundary segments available in modem digital datasets (e.g., from microscopy post-processing) and their low rank representations by principal component analysis. The utility of the proposed framework for capturing grain size, morphology, and their anisotropy for efficient visualization, representation, and specification of polycrystalline microstructures is then demonstrated in case studies on datasets from synthetic generation, experiments (on Ni-base superalloys), and simulations (on steel during recrystallization).
机译:多晶材料的Messcale微观结构的定量对于一系列材料设计和开发的实际任务是重要的。当前定量晶粒尺寸和形态的协议通常依赖于俯视介于结构的重要细节的微观结构度量(例如,平均粒径)。在这项工作中,我们提出了一种基于定向解的和弦长度分布和主要成分分析的量化框架,作为从2-D微结构映射提取附加信息的方法。朝向此结束,我们首先详细介绍了一种基于调制解调器数字数据集(例如,从显微镜后处理)中可用的边界段计算和弦长度分布的方法及其通过主成分分析的低等级表示。捕获晶粒尺寸,形态和各向异性的提议框架的效用,然后在来自合成产生的数据集(在Ni基超合金)和模拟中的数据集(在重结晶期间钢)。

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