In-situ heating observations on microstructure relaxation of ultrafine-grained high-entropy alloys using neutron diffraction and laser-scanning confocal microscopy

Megumi Kawasaki, Jae-Kyung Han, Suk-Chun Moon, K. Liss
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引用次数: 1

Abstract

Abstract. The thermal stability of ultrafine-grained metals can be fully understood when observing time-resolved microstructural changes over multiple-length scales. The global microstructural relaxation behavior upon heating of an ultrafine-grained (UFG) CoCrFeNi high-entropy alloy (HEA) was characterized by in-situ heating neutron diffraction measurements. Before heating, the nanocrystalline microstructure was introduced by applying high-pressure torsion (HPT), leading to severe lattice distortion by excess dislocations and defects. The sequential information on the structural relaxation of recovery, recrystallization, and grain growth are identified by in-situ heating neutron diffraction analysis defining the texture development, linear thermal lattice expansion, and stress relaxation behaviors of the UFG HEA with increasing temperature up to 1300K. By contrast, nanocrystalline metals processed by HPT are often inhomogeneous microstructurally and compositionally. The influence of such inhomogeneity on the macro-scale microstructural relaxation is monitored using an HPT-processed CoCrFeNiMn high-entropy alloy through in-situ heating laser-scanning confocal microscopy. This study emphasizes the importance of characterization techniques for further in-depth exploration of the SPD-processed ultrafine-grained structure.
用中子衍射和激光扫描共聚焦显微镜观察超细晶高熵合金的显微组织弛豫
摘要在多长度尺度上观察时间分辨的微观结构变化,可以充分理解超细晶金属的热稳定性。采用原位加热中子衍射测量方法,研究了超细晶CoCrFeNi高熵合金(HEA)加热后的整体组织弛豫行为。在加热之前,通过高压扭转(HPT)引入纳米晶微观结构,导致过量位错和缺陷导致严重的晶格畸变。通过原位加热中子衍射分析,确定了UFG HEA随温度升高至1300K时的织构发育、线性热晶格膨胀和应力松弛行为,从而确定了恢复、再结晶和晶粒长大的顺序结构松弛信息。相比之下,HPT加工的纳米晶金属在微观结构和成分上往往是不均匀的。采用原位加热激光扫描共聚焦显微技术,对高温高温处理的CoCrFeNiMn高熵合金进行了宏观微观组织弛豫研究。本研究强调了表征技术对于进一步深入探索spd加工的超细晶结构的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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