材料科学
合金
难熔金属
延伸率
耐火材料(行星科学)
延展性(地球科学)
高熵合金
冶金
结构材料
价电子
电子
极限抗拉强度
量子力学
物理
蠕动
作者
Saad Sheikh,Samrand Shafeie,Qiang Hu,Johan Ahlström,Christer Persson,Jaroslav Veselý,Jiří Zýka,Uta Klement,Sheng Guo
摘要
Refractory high-entropy alloys (RHEAs), comprising group IV (Ti, Zr, Hf), V (V, Nb, Ta), and VI (Cr, Mo, W) refractory elements, can be potentially new generation high-temperature materials. However, most existing RHEAs lack room-temperature ductility, similar to conventional refractory metals and alloys. Here, we propose an alloy design strategy to intrinsically ductilize RHEAs based on the electron theory and more specifically to decrease the number of valence electrons through controlled alloying. A new ductile RHEA, Hf0.5Nb0.5Ta0.5Ti1.5Zr, was developed as a proof of concept, with a fracture stress of close to 1 GPa and an elongation of near 20%. The findings here will shed light on the development of ductile RHEAs for ultrahigh-temperature applications in aerospace and power-generation industries.
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