Automated classification of granular bainite and polygonal ferrite by electron backscatter diffraction verified through local structural and mechanical analyses

IF 0.7 4区 材料科学 Q4 METALLURGY & METALLURGICAL ENGINEERING International Journal of Materials Research Pub Date : 2023-08-24 DOI:10.1557/s43578-023-01113-7
R. Jentner, S. Tsai, A. Welle, K. Srivastava, S. Scholl, J. Best, C. Kirchlechner, G. Dehm
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引用次数: 3

Abstract

Differentiation of granular bainite and polygonal ferrite in high-strength low-alloy (HSLA) steels possesses a significant challenge, where both nanoindentation and chemical analyses do not achieve an adequate phase classification due to the similar mechanical and chemical properties of both constituents. Here, the kernel average misorientation from electron backscatter diffraction (EBSD) was implemented into a Matlab code to differentiate and quantify the microstructural constituents. Correlative electron channeling contrast imaging (ECCI) validated the automated phase classification results and was further employed to investigate the effect of the grain tolerance angle on classification. Moreover, ECCI investigations highlighted that the grain structure of HSLA steels can be subdivided into four grain categories. Each category contained a different nanohardness or substructure size that precluded a nanoindentation-based phase classification. Consequently, the automated EBSD classification approach based on local misorientation achieved a reliable result using a grain tolerance angle of 5°.
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通过局部结构和力学分析,验证了电子背散射衍射对粒状贝氏体和多边形铁素体的自动分类
在高强度低合金(HSLA)钢中,颗粒贝氏体和多边形铁素体的区分具有重大的挑战,其中纳米压痕和化学分析都无法获得足够的相分类,因为这两种成分的机械和化学性质相似。在此,将电子背散射衍射(EBSD)的核平均取向偏差实现到Matlab代码中,以区分和量化微结构成分。相关电子通道对比成像(ECCI)验证了自动相位分类结果,并进一步研究了晶粒公差角对分类的影响。此外,ECCI研究强调,HSLA钢的晶粒结构可以细分为四种晶粒类型。每个类别包含不同的纳米硬度或亚结构尺寸,这排除了基于纳米压痕的相分类。因此,基于局部取向误差的EBSD自动分类方法在5°晶粒公差角下获得了可靠的分类结果。
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来源期刊
CiteScore
1.30
自引率
12.50%
发文量
119
审稿时长
6.4 months
期刊介绍: The International Journal of Materials Research (IJMR) publishes original high quality experimental and theoretical papers and reviews on basic and applied research in the field of materials science and engineering, with focus on synthesis, processing, constitution, and properties of all classes of materials. Particular emphasis is placed on microstructural design, phase relations, computational thermodynamics, and kinetics at the nano to macro scale. Contributions may also focus on progress in advanced characterization techniques. All articles are subject to thorough, independent peer review.
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