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Microstructure Refinement of a Transformation-Induced Plasticity High-Entropy Alloy

机译:转化诱导的可塑性高熵合金的微观结构细化

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摘要

High-entropy alloys (HEAs) have attracted extensive interest due to their unprecedented structure and mechanical performance. We recently proposed a series of novel corich twinning induced plasticity (TWIP) and transformation induced plasticity (TRIP) HEAs with superior tensile properties at room temperature; however, the hot deformation behavior has not been reported. Here, we investigated the dynamic recrystallization behavior and grain refinement of a representative TRIP-HEA, compressed at temperatures of 1123–1273 K with strain rates of 0.1–0.001 s−1. We characterized the impact of the temperature and strain rate on the grain structure evolution. A constitutive equation was constructed to reveal the correlations between the flow stress, strain rate, temperature, and strain. The apparent activation energy was estimated to be ~385.7 kJ/mol. The discontinuous dynamic recrystallization played an important role in the grain refinement, particularly at a relatively higher temperature and a lower strain rate, and the volume fraction and morphology of the recrystallized grains exhibited a strong dependency on the Zener–Hollomon parameter. The study provides guidelines for the grain refinement of HEAs through thermomechanical processing.
机译:由于其前所未有的结构和机械性能,高熵合金(HEA)引起了广泛的利益。我们最近提出了一系列新型核心孪生诱导可塑性(TWIP)和转化诱导的塑性(TRIP)HEAS,在室温下具有卓越的拉伸性能;但是,尚未报告热变形行为。在此,我们研究了代表性曲束的动态再结晶行为和晶粒细化,在1123-1273K的温度下压缩,其应变率为0.1-0.001 s-1。我们的特征在于对晶粒结构进化的温度和应变率的影响。构建组成方程以揭示流量应力,应变率,温度和菌株之间的相关性。表观激活能量估计为约385.7 kJ / mol。不连续的动态重结晶在晶粒细化中起重要作用,特别是在相对较高的温度下和较低的应变率,并且重结晶晶粒的体积分数和形态表现出对ZENER-HOLLOMON参数的强依赖性。该研究提供了通过热机械加工的遗址细化的指导。

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