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High-Temperature Nano-Indentation Creep of Reduced Activity High Entropy Alloys Based on 4-5-6 Elemental Palette

机译:基于4-5-6个元素调色板的高温纳米凹陷蠕变减少活性高熵合金

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摘要

There is a strong demand for materials with inherently high creep resistance in the harsh environment of next-generation nuclear reactors. High entropy alloys have drawn intense attention in this regard due to their excellent elevated temperature properties and irradiation resistance. Here, the time-dependent plastic deformation behavior of two refractory high entropy alloys was investigated, namely HfTaTiVZr and TaTiVWZr. These alloys are based on reduced activity metals from the 4-5-6 elemental palette that would allow easy post-service recycling after use in nuclear reactors. The creep behavior was investigated using nano-indentation over the temperature range of 298 K to 573 K under static and dynamic loads up to 5 N. Creep stress exponent for HfTaTiVZr and TaTiVWZr was found to be in the range of 20−140 and the activation volume was ~16−20b3, indicating dislocation dominated mechanism. The stress exponent increased with increasing indentation depth due to a higher density of dislocations and their entanglement at larger depth and the exponent decreased with increasing temperature due to thermally activated dislocations. Smaller creep displacement and higher activation energy for the two high entropy alloys indicate superior creep resistance compared to refractory pure metals like tungsten.
机译:对下一代核反应堆的恶劣环境中具有固有高蠕变性的材料的强烈需求。由于其优异的温度性能和辐照性,高熵合金在这方面引起了强烈的关注。这里,研究了两种耐火高熵合金的时间依赖性塑性变形行为,即Hftativzr和Tativwzr。这些合金基于4-5-6个元素调色板的减少的活性金属,其在核反应堆使用后可以容易地进行后期再生回收。在静态和动态载荷下使用纳米凹陷在高达5n的动态载荷的温度范围内研究蠕变行为。发现Hftativzr和Tativwzr的蠕变应力指数在20-140的范围内和激活体积为〜16-20b3,表明位错占主导地位机制。由于较高的位错密度和较大深度的缠结较高,并且指数由于热活化的脱位而导致的缠结增加,应力指数随着缩进深度而增加。对于两种高熵合金的较小蠕变位移和更高的激活能量表示与钨等耐火纯金属相比,较高的蠕变电阻。

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