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A Two-Stage Reconstruction of Microstructures with Arbitrarily Shaped Inclusions

机译:具有任意形状夹杂物的微结构的两阶段重建

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摘要

The main goal of our research is to develop an effective method with a wide range of applications for the statistical reconstruction of heterogeneous microstructures with compact inclusions of any shape, such as highly irregular grains. The devised approach uses multi-scale extended entropic descriptors (ED) that quantify the degree of spatial non-uniformity of configurations of finite-sized objects. This technique is an innovative development of previously elaborated entropy methods for statistical reconstruction. Here, we discuss the two-dimensional case, but this method can be generalized into three dimensions. At the first stage, the developed procedure creates a set of black synthetic clusters that serve as surrogate inclusions. The clusters have the same individual areas and interfaces as their target counterparts, but . Then, from a given number of easy-to-generate synthetic cluster configurations, we choose the one with the lowest value of the cost function defined by us using extended ED. At the second stage, we make a significant change in the standard technique of simulated annealing (SA). Instead of swapping pixels of different phases, we randomly move each of the selected synthetic clusters. To demonstrate the accuracy of the method, we reconstruct and analyze two-phase microstructures with irregular inclusions of silica in rubber matrix as well as stones in cement paste. The results show that the two-stage reconstruction (TSR) method provides convincing realizations for these complex microstructures. The advantages of TSR include the ease of obtaining synthetic microstructures, very low computational costs, and satisfactory mapping in the statistical context of inclusion shapes. Finally, its simplicity should greatly facilitate independent applications.
机译:我们研究的主要目标是开发一种有效的方法,用于统计重建具有各种形状的紧密夹杂物(例如高度不规则晶粒)的异质微结构。所设计的方法使用多尺度扩展熵描述符(ED)来量化有限大小对象的配置在空间上的不均匀程度。这项技术是对先前用于统计重建的熵方法的创新发展。在这里,我们讨论二维情况,但是该方法可以推广到三个方面。在第一阶段,已开发的过程创建了一组黑色的合成簇,这些簇用作替代夹杂物。集群具有与目标集群相同的单个区域和接口,但是。然后,从给定数量的易于生成的合成集群配置中,我们选择使用扩展ED定义的成本函数值最低的一个。在第二阶段,我们对标准模拟退火(SA)技术进行了重大更改。代替交换不同相位的像素,我们随机移动每个选定的合成簇。为了证明该方法的准确性,我们重建和分析了两相微观结构,其中橡胶基质中的二氧化硅不规则夹杂物以及水泥浆中的石头不规则夹杂物。结果表明,两阶段重建(TSR)方法为这些复杂的微结构提供了令人信服的实现。 TSR的优点包括易于获得合成的微结构,非常低的计算成本以及在夹杂物形状的统计范围内令人满意的映射。最后,其简单性应极大地促进独立应用程序的发展。

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