Henningsson Axel, Hendriks Johannes
Division of Solid Mechanics, Lund University, Lund, Sweden.
School of Engineering, The University of Newcastle, Callaghan, NSW 2308, Australia.
J Appl Crystallogr. 2021 Jun 14;54(Pt 4):1057-1070. doi: 10.1107/S1600576721005112. eCollection 2021 Aug 1.
A new method for estimation of intragranular strain fields in polycrystalline materials based on scanning three-dimensional X-ray diffraction (scanning 3DXRD) data is presented and evaluated. Given an known anisotropic compliance, the regression method enforces the balance of linear and angular momentum in the linear elastic strain field reconstruction. By using a Gaussian process (GP), the presented method can yield a spatial estimate of the uncertainty of the reconstructed strain field. Furthermore, constraints on spatial smoothness can be optimized with respect to measurements through hyperparameter estimation. These three features address weaknesses discussed for previously existing scanning 3DXRD reconstruction methods and, thus, offer a more robust strain field estimation. The method is twofold validated: firstly by reconstruction from synthetic diffraction data, and secondly by reconstruction of a previously studied tin (Sn) grain embedded in a polycrystalline specimen. Comparison against reconstructions achieved by a recently proposed algebraic inversion technique is also presented. It is found that the GP regression consistently produces reconstructions with lower root-mean-square errors, mean absolute errors and maximum absolute errors across all six components of strain.
提出并评估了一种基于扫描三维X射线衍射(扫描3DXRD)数据估算多晶材料晶内应变场的新方法。在已知各向异性柔度的情况下,回归方法在弹性应变场重建中强制实现线性和角动量平衡。通过使用高斯过程(GP),该方法能够给出重建应变场不确定性的空间估计。此外,通过超参数估计,可以针对测量优化空间平滑约束。这三个特性解决了先前存在的扫描3DXRD重建方法中讨论的弱点,从而提供了更稳健的应变场估计。该方法经过双重验证:首先通过合成衍射数据进行重建,其次通过重建嵌入多晶试样中的先前研究的锡(Sn)晶粒。还给出了与最近提出的代数反演技术所实现的重建结果的比较。结果发现,在应变的所有六个分量上,GP回归始终能产生具有更低均方根误差、平均绝对误差和最大绝对误差的重建结果。