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在钻石光源的I12 JEEP光束线实施和评估远场3D X射线衍射。

Implementing and evaluating far-field 3D X-ray diffraction at the I12 JEEP beamline, Diamond Light Source.

作者信息

Ball James A D, Kareer Anna, Magdysyuk Oxana V, Michalik Stefan, Vrettou Anastasia, Parkes Neal, Connolley Thomas, Collins David M

机构信息

School of Metallurgy and Materials, University of Birmingham, Edgbaston, Birmingham B15 2TT, United Kingdom.

Department of Materials, University of Oxford, Oxford OX1 3PH, United Kingdom.

出版信息

J Synchrotron Radiat. 2022 Jul 1;29(Pt 4):1043-1053. doi: 10.1107/S1600577522004088. Epub 2022 May 16.

Abstract

Three-dimensional X-ray diffraction (3DXRD) is shown to be feasible at the I12 Joint Engineering, Environmental and Processing (JEEP) beamline of Diamond Light Source. As a demonstration, a microstructually simple low-carbon ferritic steel was studied in a highly textured and annealed state. A processing pipeline suited to this beamline was created, using software already established in the 3DXRD user community, enabling grain centre-of-mass positions, orientations and strain tensor elements to be determined. Orientations, with texture measurements independently validated from electron backscatter diffraction (EBSD) data, possessed a ∼0.1° uncertainty, comparable with other 3DXRD instruments. The spatial resolution was limited by the far-field detector pixel size; the average of the grain centre of mass position errors was determined as ±∼80 µm. An average per-grain error of ∼1 × 10 for the elastic strains was also measured; this could be reduced in future experiments by improving sample preparation, geometry calibration, data collection and analysis techniques. Application of 3DXRD onto I12 shows great potential, where its implementation is highly desirable due to the flexible, open architecture of the beamline. User-owned or designed sample environments can be used, thus 3DXRD could be applied to previously unexplored scientific areas.

摘要

三维X射线衍射(3DXRD)已被证明在钻石光源的I12联合工程、环境与加工(JEEP)光束线上是可行的。作为一个示范,对一种微观结构简单的低碳铁素体钢在高度织构化和退火状态下进行了研究。利用3DXRD用户社区中已有的软件,创建了一个适用于该光束线的处理流程,从而能够确定晶粒质心位置、取向和应变张量元素。通过电子背散射衍射(EBSD)数据独立验证的织构测量得到的取向具有约0.1°的不确定性,与其他3DXRD仪器相当。空间分辨率受远场探测器像素尺寸限制;质心位置误差的平均值被确定为±约80μm。还测量了弹性应变的平均每晶粒误差约为1×10;在未来的实验中,通过改进样品制备、几何校准、数据采集和分析技术,这一误差可能会降低。将3DXRD应用于I12显示出巨大潜力,由于该光束线灵活、开放的架构,非常需要其实施。可以使用用户自己拥有或设计的样品环境,因此3DXRD可以应用于以前未探索的科学领域。

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