Mechanical Instability and Tensile Properties of TiZrHfNbTa High Entropy Alloy at Cryogenic Temperatures

Shubin Wang, Ming. H. Wu, D. Shu, G. Zhu, Donghong Wang, Bao-de Sun
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引用次数: 89

Abstract

Abstract The equiatomic TiZrHfNbTa alloy is one of the few refractory high entropy alloys that exhibit tensile ductility at room temperature, the deformation of which is only dominated by dislocation slip. Here, we observed the activation of {112} nano-twinning accompanied by the deformation induced body-centered cubic structure (BCC) to non-closed packed hexagonal ω phase transformation along with the dislocation slip during tensile deformation at cryogenic temperatures, which indicates the intrinsic mechanical instability of the single-phase BCC TiZrHfNbTa solid solution. The alloy maintains a high tensile elongation of 20.8% while the yield strength increases significantly up to 1,549 MPa as the temperature is decreased from 277 K to 77 K, without obvious ductile to brittle transition. This exceptional combination of high strength and high ductility at cryogenic temperatures can be interpreted by considering the synergistic effect of screw dislocation glide, {112} mechanical twinning and BCC → ω phase transformation. These results provide new insights on our understanding of the refractory TiZrHfNbTa-based alloys and extend their application to cryogenic temperatures at the extreme service conditions like aerospace, marine shipbuilding and natural gas industries, albeit they are promising for high-temperature application.
低温下TiZrHfNbTa高熵合金的力学不稳定性和拉伸性能
等原子TiZrHfNbTa合金是少数具有室温拉伸延展性的难熔高熵合金之一,其变形仅以位错滑移为主。在低温拉伸变形过程中,我们观察到{112}纳米孪晶的活化伴随着变形诱导的体心立方结构(BCC)向非封闭堆积六方ω相变以及位错滑移,这表明单相BCC TiZrHfNbTa固溶体具有固有的机械不稳定性。当温度从277 K降至77 K时,合金的抗拉伸长率高达20.8%,屈服强度显著提高至1549 MPa,无明显的韧脆转变。这种低温下高强度和高延展性的特殊组合可以通过考虑螺位错滑动、{112}机械孪晶和BCC→ω相变的协同效应来解释。这些结果为我们对难熔tizrhfnbta基合金的理解提供了新的见解,并将其应用范围扩展到航空航天、船舶制造和天然气工业等极端服务条件下的低温,尽管它们有可能用于高温应用。
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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