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The Effect of Crystal Defects on 3D High-Resolution Diffraction Peaks: A FFT-Based Method

机译:晶体缺陷对3D高分辨率衍射峰的影响:基于FFT的方法

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摘要

Forward modeling of diffraction peaks is a potential way to compare the results of theoretical mechanical simulations and experimental X-ray diffraction (XRD) data recorded during in situ experiments. As the input data are the strain or displacement field within a representative volume of the material containing dislocations, a computer-aided efficient and accurate method to generate these fields is necessary. With this aim, a current and promising numerical method is based on the use of the fast Fourier transform (FFT)-based method. However, classic FFT-based methods present some numerical artifacts due to the Gibbs phenomenon or “aliasing” and to “voxelization” effects. Here, we propose several improvements: first, a consistent discrete Green operator to remove “aliasing” effects; and second, a method to minimize the voxelization artifacts generated by dislocation loops inclined with respect to the computational grid. Then, we show the effect of these improvements on theoretical diffraction peaks.
机译:衍射峰的正向建模是比较理论机械模拟结果和现场实验记录的实验X射线衍射(XRD)数据的一种潜在方法。由于输入数据是包含位错的材料在代表体积内的应变或位移场,因此需要计算机辅助有效而准确的方法来生成这些场。为此目的,当前的和有希望的数值方法是基于基于快速傅里叶变换(FFT)的方法的使用。但是,由于吉布斯现象或“混叠”和“体素化”效应,基于FFT的经典方法会出现一些数字失真。在此,我们提出了一些改进措施:首先,使用一致的离散Green运算符消除“混叠”效果。其次,一种使由相对于计算网格倾斜的位错环产生的体素化伪影最小化的方法。然后,我们显示了这些改进对理论衍射峰的影响。

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