原位微柱压缩研究FeCrAl合金辐射诱发硬化机制

Yuchi Cui, E. Aydogan, J. Gigax, S. Maloy, Yongqiang Wang, A. Misra
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引用次数: 27

摘要

摘要:研究了300℃下5mev Fe2+离子辐照对FeCrAl C26M合金微观组织演变和变形行为的影响。在1 ~ 16 dpa辐照范围内,位错环密度增加了一个数量级,而位错环尺寸随着损伤的增加而趋于饱和。制备了直径为600 nm、高1.3µm的微柱,并将其压缩在晶体取向为、和晶体取向的颗粒内。{112}已被确定为未辐照和辐照合金中的主要滑移系统。辐照后屈服应力的增加具有沿和沿可测量的变化。应用Orowan分散势垒模型,发现屈服应力的增加主要是由于辐射产生的缺陷环的抗滑性。进行了详细的透射电子显微镜(TEM)研究,以量化汉堡载体和辐照引起的位错在升高菌株中的分布。结果表明,局部剪切失稳是由1 / 2位错滑出试验柱的雪崩滑移事件引起的。同时,滑移带附近形成了大量的固位错,导致了高应变下的硬化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
In Situ Micro-Pillar Compression to Examine Radiation-Induced Hardening Mechanisms of FeCrAl Alloys
Abstract The effects of 5 MeV Fe2+ ion irradiation at 300°C on the microstructure evolution and deformation behavior of a FeCrAl C26M alloy are presented. It has been found that dislocation loop density increases an order of magnitude from 1 dpa to 16 dpa irradiations, whereas, the dislocation loop size saturates with increasing damage. Micropillars, 600 nm in diameter and 1.3 µm in height, were fabricated and compressed inside grains with , and crystallographic orientations, respectively. {112} has been identified as the primary slip system in both unirradiated and irradiated alloys. The increase in yield stress after irradiation is observed with measurable variation along and vs. along . By applying the Orowan dispersed barrier model, the increase of yield stress is found mainly due to the slip resistance of radiation generated defect loops. Detailed transmission electron microscopy (TEM) studies were performed to quantify the Burgers vector and the distribution of irradiation induced dislocations at elevated strains. It is revealed that localized shear instability is caused by avalanche slip events of ½ dislocations gliding out of tested pillars. Simultaneously, a large number of sessile/immobile dislocations formed in the vicinity of slip band, leading to the hardening at elevated strains.
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