Detecting grain-scale plastic deformation events with time-resolved far-field high-energy diffraction microscopy.

IF 2.8 3区 材料科学 Q1 Biochemistry, Genetics and Molecular Biology
Journal of Applied Crystallography Pub Date : 2025-09-12 eCollection Date: 2025-10-01 DOI:10.1107/S1600576725007009
Yuefeng Jin, Wenxi Li, Amlan Das, Katherine Shanks, Ashley Bucsek
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引用次数: 0

Abstract

Far-field high-energy diffraction microscopy (ff-HEDM) bridges a critical gap between microscale and macroscale plasticity by enabling three-dimensional (3D) time-resolved observations of grain-scale deformation. It can be used to measure the grain-averaged elastic strain tensor, crystallographic orientation, centroid and relative volume of each individual grain. Researchers have also proposed methods to extract information about grain-scale plastic deformation from time-resolved ff-HEDM measurements, using e.g. signature changes in a grain's equivalent or resolved shear stress, orientation or diffraction peak width. However, the accuracy of these different methods is largely unexplored due to the absence of an independent ground truth, particularly for plastic deformation that occurs prior to the macroscopic yield point. In the present work, we evaluate four methods for detecting grain-scale plastic deformation events using ff-HEDM: (i) equivalent stress relaxation, (ii) resolved shear stress relaxation, (iii) orientation change and (iv) diffraction peak shape evolution. Using ff-HEDM data from room-temperature creep tests of a Ti-7Al alloy, we cross-validate these approaches. The achieved high validation rates support confidence in the identified events. Two types of stress relaxation are observed among the detected events - fast and large versus gradual and small - suggesting different deformation mechanisms. The spatiotemporal distribution of plastic events is also captured, revealing clustered activity and intergranular propagation. These findings open avenues for future studies to explore the initiation and propagation of plasticity among grains.

用时间分辨远场高能衍射显微镜检测晶粒级塑性变形事件。
远场高能衍射显微镜(ff-HEDM)通过实现三维(3D)时间分辨的晶粒尺度变形观测,弥合了微观尺度和宏观尺度塑性之间的关键差距。它可以用来测量晶粒的平均弹性应变张量、晶体取向、质心和相对体积。研究人员还提出了从时间分辨的非hedm测量中提取晶粒尺度塑性变形信息的方法,例如利用晶粒等效或分辨剪切应力、取向或衍射峰宽度的特征变化。然而,这些不同方法的准确性在很大程度上是未经探索的,因为缺乏独立的基础真理,特别是在宏观屈服点之前发生的塑性变形。在目前的工作中,我们评估了使用ff-HEDM检测晶粒级塑性变形事件的四种方法:(i)等效应力松弛,(ii)分辨剪切应力松弛,(iii)取向变化和(iv)衍射峰形状演变。利用Ti-7Al合金室温蠕变试验的非hedm数据,我们交叉验证了这些方法。获得的高验证率支持对已识别事件的信心。在检测到的事件中观察到两种类型的应力松弛-快速和大与渐进和小-表明不同的变形机制。还捕获了塑性事件的时空分布,揭示了群集活动和晶间传播。这些发现为进一步研究晶粒间塑性的发生和扩展开辟了道路。
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来源期刊
CiteScore
10.00
自引率
3.30%
发文量
178
审稿时长
4.7 months
期刊介绍: Many research topics in condensed matter research, materials science and the life sciences make use of crystallographic methods to study crystalline and non-crystalline matter with neutrons, X-rays and electrons. Articles published in the Journal of Applied Crystallography focus on these methods and their use in identifying structural and diffusion-controlled phase transformations, structure-property relationships, structural changes of defects, interfaces and surfaces, etc. Developments of instrumentation and crystallographic apparatus, theory and interpretation, numerical analysis and other related subjects are also covered. The journal is the primary place where crystallographic computer program information is published.
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