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A data-informatics method to quantitatively represent ternary eutectic microstructures

机译:定量表示三元共晶微观结构的数据信息学方法

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Many of the useful properties of modern engineering materials are determined by the material’s microstructure. Controlling the microstructure requires an understanding of the complex dynamics underlying its evolution during processing. Investigating the thermal and mass transport phenomena responsible for a structure requires establishing a common language to quantitatively represent the microstructures being examined. Although such a common language exists for some of the simple structures, which has allowed these materials to be engineered, there has yet to be a method to represent complex systems, such as the ternary microstructures, which are important for many technologies. Here we show how stereological and data science methods can be combined to quantitatively represent ternary eutectic microstructures relative to a set of exemplars that span the stereological attribute space. Our method uniquely describes ternary eutectic microstructures, allowing images from different studies, with different compositions and processing histories, to be quantitatively compared. By overcoming this long-standing challenge, it becomes possible to begin to make progress toward a quantitatively predictive theory of ternary eutectic growth. We anticipate that the method of quantifying instances of an object relative to a set of exemplars spanning attribute-space will be broadly applied to classify materials structures, and may also find uses in other fields.
机译:现代工程材料的许多有用特性取决于材料的微观结构。控制微观结构需要了解其在加工过程中演变的复杂动力学。要研究造成结构的热和质量传输现象,需要建立一种通用语言来定量表示所检查的微结构。尽管对于一些简单的结构已经存在这样的通用语言,这使得可以对这些材料进行工程设计,但是还没有一种方法可以表示复杂的系统,例如三元微结构,这对于许多技术都非常重要。在这里,我们展示了如何将立体学和数据科学方法相结合,以定量地表示相对于跨越立体属性空间的一系列示例的三元共晶微观结构。我们的方法独特地描述了三元共晶微观结构,可以对来自不同研究,具有不同成分和加工历史的图像进行定量比较。通过克服这一长期挑战,有可能开始朝着三元共晶生长的定量预测理论发展。我们预计,相对于一组跨越属性空间的示例量化对象实例的方法将广泛应用于材料结构的分类,并且可能还会在其他领域中找到用途。

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