论文标题

筛选一般堆叠故障能,表面能和难治性多组分合金的内在延性效力

Screening of generalized stacking fault energies, surface energies and intrinsic ductile potency of refractory multicomponent alloys

论文作者

Hu, Yong-Jie, Sundar, Aditya, Ogata, Shigenobu, Qi, Liang

论文摘要

以人体为中心的立方体(BCC)难治性多组分合金引起了极大的兴趣,因为它们在高温下的强度显着。同时,进一步优化这些合金的化学成分,以实现高强度和室温延展性的结合,这仍然具有挑战性,这将需要对庞大的合成空间中相关合金特性进行系统的预测。在目前的工作中,我们使用特殊的准随机结构(SQS)方法进行了第一原则计算,以预测$(1 \ bar10)的不稳定堆叠断层能量($γ_{usf} $)[111] $ $(1 \ bar10)$(1 \ bar10)$(1 \ bar10)$ - 平面能量($γ_)$γ_{surf} $ for for 106 Ti,Zr,HF,V,NB,TA,MO,W,RE和RU之间具有组成元件的固体合金。此外,借助第一原理数据和一组物理知识的描述符,我们基于统计回归开发了替代模型,以准确有效地预测$γ_{USF} $和$γ_{SURF} $,用于在10个元素组成空间中的难治性多组分。在二进制和三元数据的基础上,替代模型在高阶多组分系统中显示出出色的预测能力。 $γ_{冲浪} $和$γ_{USF} $之间的比率是反映基于裂纹尖端变形的稻米模型的合金固有延展性的参数。因此,使用替代模型,我们进行了$γ_{USF} $,$γ_{Surf} $的系统筛选,其比率超过112,378合金构图,以搜索可能增强强度增强强度增强协同作用的合金候选者。搜索结果也通过其他第一原理计算证实。

Body-centered cubic (bcc) refractory multicomponent alloys are of great interest due to their remarkable strength at high temperatures. Meanwhile, further optimizing the chemical compositions of these alloys to achieve a combination of high strength and room-temperature ductility remains challenging, which would require systematic predictions of the correlated alloy properties across a vast compositional space. In the present work, we performed first-principles calculations with the special quasi-random structure (SQS) method to predict the unstable stacking fault energy ($γ_{usf}$) of the $(1\bar10)[111]$ slip system and the $(1\bar10)$-plane surface energy ($γ_{surf}$) for 106 individual binary, ternary and quaternary bcc solid-solution alloys with constituent elements among Ti, Zr, Hf, V, Nb, Ta, Mo, W, Re and Ru. Moreover, with the first-principles data and a set of physics-informed descriptors, we developed surrogate models based on statistical regression to accurately and efficiently predict $γ_{usf}$ and $γ_{surf}$ for refractory multicomponent alloys in the 10-element compositional space. Building upon binary and ternary data, the surrogate models show outstanding predictive ability in the high-order multicomponent systems. The ratio between $γ_{surf}$ and $γ_{usf}$ is a parameter to reflect the potency of intrinsic ductility of an alloy based on the Rice model of crack-tip deformation. Therefore, using the surrogate models, we performed a systematic screening of $γ_{usf}$, $γ_{surf}$ and their ratio over 112,378 alloy compositions to search for alloy candidates that may have enhanced strength-ductile synergies. Search results were also confirmed by additional first-principles calculations.

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