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New opportunities for 3D materials science of polycrystalline materials at the micrometre lengthscale by combined use of X-ray diffraction and X-ray imaging

机译:通过结合使用X射线衍射和X射线成像技术,在微米级的多晶材料3D材料科学领域获得了新的机遇

摘要

Non-destructive, three-dimensional (3D) characterization of the grain structure in mono-phase polycrystalline materials is an open challenge in material science. Recent advances in synchrotron based X-ray imaging and diffraction techniques offer interesting possibilities for mapping 3D grain shapes and crystallographic orientations for certain categories of polycrystalline materials. Direct visualisation of the three-dimensional grain boundary network or of two-phase (duplex) grain structures by means of absorption and/or phase contrast techniques may be possible, but is restricted to specific material systems. A recent extension of this methodology, termed X-ray diffraction contrast tomography (DCT), combines the principles of X-ray diffraction imaging, three-dimensional X-ray diffraction microscopy (3DXRD) and image reconstruction from projections. DCT provides simultaneous access to 3D grain shape, crystallographic orientation and local attenuation coefficient distribution. The technique applies to the larger range of plastically undeformed, polycrystalline mono-phase materials, provided some conditions on grain size and texture are fulfilled. The straightforward combination with high-resolution microtomography opens interesting new possibilities for the observation of microstructure related damage and deformation mechanisms in these materials. © 2009 Elsevier B.V. All rights reserved.
机译:单相多晶材料中晶粒结构的无损三维(3D)表征是材料科学中的一个开放挑战。基于同步加速器的X射线成像和衍射技术的最新进展为映射某些种类的多晶材料的3D晶粒形状和晶体学取向提供了有趣的可能性。借助于吸收和/或相衬技术可以直接可视化三维晶粒边界网络或两相(双相)晶粒结构,但仅限于特定的材料系统。这种方法的最新扩展,称为X射线衍射对比层析成像(DCT),结合了X射线衍射成像,三维X射线衍射显微镜(3DXRD)以及投影图像重建的原理。 DCT可同时访问3D晶粒形状,晶体学取向和局部衰减系数分布。该技术适用于较大范围的塑性不变形多晶单相材料,只要满足一定的晶粒尺寸和织构条件即可。与高分辨率显微断层照相术的直接结合为观察这些材料中与微观结构相关的破坏和变形机制开辟了有趣的新可能性。 ©2009 Elsevier B.V.保留所有权利。

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