一种捕获纯钛三维晶体结构的新型衍射对比层析成像(DCT)采集策略

Eshan Ganju , Eugenia Nieto-Valeiras , Javier LLorca , Nikhilesh Chawla
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引用次数: 3

摘要

高保真三维晶粒图的获取对于推进我们对多晶材料微观力学行为的理解至关重要。晶粒取向、晶界取向差和晶粒形状在滑移传递机制和晶粒生长现象中起着重要作用。在过去的几年里,使用基于实验室的衍射对比层析成像(LabDCT)在获取高可靠性晶粒图方面取得了长足的进步。此外,随着先进的实验室DCT采集策略的最新发展,如螺旋叶序实验室DCT(HP-DCT),具有挑战性的样品几何形状的微观结构在实验室规模上变得更加容易获得。与传统的Lab DCT(C-DCT)扫描不同,在传统的Lab-DCT扫描中,细长的样本被扫描成多个部分,HP-DCT扫描采用螺旋状叶序运动,以在单个扫描中照亮样本的不同部分。理论上,这种策略可以在一个过程中扫描和重建具有挑战性的样品几何形状,例如细长和高纵横比的样品,具有更少的衍射投影和减少的扫描和分析时间。在本研究中,对从C-DCT和HP-DCT扫描数据获得的纯Ti样品的晶粒图进行了详细分析。将DCT晶粒图与从真实EBSD和SEM扫描获得的表面晶粒图进行比较。此外,还定量评估了晶粒重建的质量、晶粒取向、晶界取向差、晶粒形状和形态,并强调了从传统和螺旋叶序扫描中获得的晶粒图的准确性差异。这些结果表明,HP-DCT扫描的晶粒重建与C-DCT扫描的晶粒保真度相当,传统扫描在晶粒形状和取向方面表现稍好,但时间成本较高。
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A novel diffraction contrast tomography (DCT) acquisition strategy for capturing the 3D crystallographic structure of pure titanium

The acquisition of high-fidelity 3D grain maps is essential for advancing our understanding of the micromechanical behavior of polycrystalline materials. Grain orientations, grain boundary misorientations, and grain shapes play a significant role in slip transfer mechanisms and grain growth phenomena. The past few years have seen considerable advances in the acquisition of high-reliability grain maps using laboratory-based Diffraction Contrast Tomography (LabDCT). Additionally, the microstructures of challenging sample geometries have become more accessible at the lab scale with recent developments in advanced Lab DCT acquisition strategies, such as helical phyllotaxis Lab DCT (HP-DCT). Unlike a conventional Lab DCT (C-DCT) scan, in which an elongated sample is scanned in multiple sections, a helical phyllotaxis motion is employed in an HP-DCT scan to illuminate the different parts of the sample in a single scan. This strategy can theoretically allow to scan and reconstruct challenging sample geometries, such as elongated and high aspect ratio samples, in a single process with fewer diffraction projections and reduced scan and analyses times. In this study, a detailed analysis of the grain maps for a pure Ti sample obtained from C-DCT and HP-DCT scan data is carried out. The DCT grain maps are compared with the surface grain maps obtained from ground-truth EBSD and SEM scans. Furthermore, the quality of grain reconstructions, grain orientations, grain boundary misorientations, grain shapes and morphology is quantitatively assessed, and the differences in accuracy of grain maps obtained from the conventional and helical phyllotaxis scans are highlighted. These results indicate that the grain reconstructions from HP-DCT scans have comparable grain fidelity to those obtained from C-DCT scan, with the conventional scans performing marginally better in terms of grain shape and orientation but at a higher time cost.

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