Novel as-cast Ti-rich refractory complex concentrated alloys with superior tensile properties具有优异拉伸性能的新型铸态富Ti难熔高熵合金

被引:0
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作者
Shuai Zeng
Yongkang Zhou
Hongquan Gao
Huan Li
Jingqian Chen
Hongwei Zhang
Huameng Fu
Aiming Wang
Haifeng Zhang
Hongwei Zhao
Zhengwang Zhu
机构
[1] Chinese Academy of Sciences,Shi
[2] University of Science and Technology of China,changxu Innovation Center for Advanced Materials, Institute of Metal Research
[3] Chinese Academy of Sciences,School of Materials Science and Engineering
[4] Northeastern University,CAS Key Laboratory of Nuclear Materials and Safety Assessment, Institute of Metal Research
[5] Unit 96901 PLA,School of Metallurgy
来源
Science China Materials | 2024年 / 67卷
关键词
refractory complex concentrated alloys; lattice distortion; mechanical properties; strengthening mechanism; deformation behavior;
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中图分类号
学科分类号
摘要
Refractory complex concentrated alloys (RCCAs) have drawn particular attention for their high yield strength and superior softening resistance at high temperatures. However, poor room-temperature ductility and high density remain the main challenges for their processing and applications. Here, using inherent material characteristics as the alloy-design principles, three novel single-phase body-centered cubic structured Ti3Zr1.5Nb(1−x)MoxVAl0.25 (x = 0.1, 0.3, 0.5, marked as Mo0.1, Mo0.3, and Mo0.5, respectively) RCCAs with promising tensile ductility and relatively low density below 6 g cm−3 were developed by tailoring the Mo concentration. The introduction of Mo elements with high shear modulus promotes lattice distortion, contributing to enhanced lattice friction stress and yield strength. The Mo0.3 and Mo0.5 alloys exhibit tensile yield strengths exceeding 1100 MPa and high fracture elongation of over 15% in the as-cast state. Labusch’s model revealed that solid-solution strengthening induced by atomic size and shear modulus mismatch contributes most significantly to yield strength. Deformation microstructure observations uncovered that the formation of the kink bands, dense-dislocation walls, and Taylor lattices are highly effective in enhancing strain-hardening capacity due to their high density of dislocation boundaries, enabling the alloys to maintain high strength while yet ensuring enough ductility. This study provides new insights into the development of strong and ductile RCCAs with single-phase structures. [graphic not available: see fulltext]
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页码:311 / 320
页数:9
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