xrd_simulator: 3D X-ray diffraction simulation software supporting 3D polycrystalline microstructure morphology descriptions.

IF 6.1 3区 材料科学 Q1 Biochemistry, Genetics and Molecular Biology
Axel Henningsson, Stephen A Hall
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引用次数: 1

Abstract

An open source Python package named xrd_simulator, capable of simulating geometrical interactions between a monochromatic X-ray beam and a polycrystalline microstructure, is described and demonstrated. The software can simulate arbitrary intragranular lattice variations of single crystals embedded within a multiphase 3D aggregate by making use of a tetrahedral mesh representation where each element holds an independent lattice. By approximating the X-ray beam as an arbitrary convex polyhedral region in space and letting the sample be moved continuously through arbitrary rigid motions, data from standard and non-standard measurement sequences can be simulated. This implementation is made possible through analytical solutions to a modified, time-dependent version of the Laue equations. The software, which primarily targets three-dimensional X-ray diffraction microscopy (high-energy X-ray diffraction microscopy) type experiments, enables the numerical exploration of which sample quantities can and cannot be reconstructed for a given acquisition scheme. Similarly, xrd_simulator targets investigations of different measurement sequences in relation to optimizing both experimental run times and sampling.

Abstract Image

Abstract Image

Abstract Image

xrd_simulator: 3D x射线衍射模拟软件,支持3D多晶微观结构形态描述。
描述并演示了一个名为xrd_simulator的开源Python包,它能够模拟单色x射线束和多晶微观结构之间的几何相互作用。该软件可以通过使用四面体网格表示来模拟嵌入多相3D聚集体中的单晶的任意颗粒内晶格变化,其中每个元素都拥有一个独立的晶格。通过将x射线束近似为空间中的任意凸多面体区域,并让样品通过任意刚性运动连续移动,可以模拟标准和非标准测量序列的数据。这种实现是通过对劳厄方程的修改后的时变版本的解析解来实现的。该软件主要针对三维x射线衍射显微镜(高能x射线衍射显微镜)类型的实验,可以对给定的采集方案中哪些样品数量可以重建,哪些不能重建进行数值探索。同样,xrd_simulator的目标是研究不同的测量序列,以优化实验运行时间和采样。
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来源期刊
CiteScore
10.00
自引率
3.30%
发文量
178
审稿时长
4.7 months
期刊介绍: Many research topics in condensed matter research, materials science and the life sciences make use of crystallographic methods to study crystalline and non-crystalline matter with neutrons, X-rays and electrons. Articles published in the Journal of Applied Crystallography focus on these methods and their use in identifying structural and diffusion-controlled phase transformations, structure-property relationships, structural changes of defects, interfaces and surfaces, etc. Developments of instrumentation and crystallographic apparatus, theory and interpretation, numerical analysis and other related subjects are also covered. The journal is the primary place where crystallographic computer program information is published.
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