Recent Advances in the Performance and Mechanisms of High-Entropy Alloys Under Low- and High-Temperature Conditions

被引:6
作者
Xi, Rui [1 ]
Li, Yanzhou [2 ]
机构
[1] North China Univ Water Resources & Elect Power, Sch Mech Engn, Zhengzhou 450045, Peoples R China
[2] West Anhui Univ, Sch Mech & Vehicle Engn, Lu An 237010, Peoples R China
关键词
high-entropy alloys; low-temperature performance; high-temperature performance; strengthening mechanisms; NICKEL-BASED SUPERALLOY; TENSILE PROPERTIES; MICROSTRUCTURAL EVOLUTION; DEFORMATION-BEHAVIOR; FRACTURE-TOUGHNESS; PHASE; STRENGTH; STABILITY; CREEP; BCC;
D O I
10.3390/coatings15010092
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
High-entropy alloys, since their development, have demonstrated great potential for applications in extreme temperatures. This article reviews recent progress in their mechanical performance, microstructural evolution, and deformation mechanisms at low and high temperatures. Under low-temperature conditions, the focus is on alloys with face-centered cubic, body-centered cubic, and multi-phase structures. Special attention is given to their strength, toughness, strain-hardening capacity, and plastic-toughening mechanisms in cold environments. The key roles of lattice distortion, nanoscale twin formation, and deformation-induced martensitic transformation in enhancing low-temperature performance are highlighted. Dynamic mechanical behavior, microstructural evolution, and deformation characteristics at various strain rates under cold conditions are also summarized. Research progress on transition metal-based and refractory high-entropy alloys is reviewed for high-temperature environments, emphasizing their thermal stability, oxidation resistance, and frictional properties. The discussion reveals the importance of precipitation strengthening and multi-phase microstructure design in improving high-temperature strength and elasticity. Advanced fabrication methods, including additive manufacturing and high-pressure torsion, are examined to optimize microstructures and improve service performance. Finally, this review suggests that future research should focus on understanding low-temperature toughening mechanisms and enhancing high-temperature creep resistance. Further work on cost-effective alloy design, dynamic mechanical behavior exploration, and innovative fabrication methods will be essential. These efforts will help meet engineering demands in extreme environments.
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页数:32
相关论文
共 167 条
[1]   Efficient exploration of the High Entropy Alloy composition-phase space [J].
Abu-Odeh, A. ;
Galvan, E. ;
Kirk, T. ;
Mao, H. ;
Chen, Q. ;
Mason, P. ;
Malak, R. ;
Arroyave, R. .
ACTA MATERIALIA, 2018, 152 :41-57
[2]   Mechanical and microstructural response of the Al0.5CoCrFeNi high entropy alloy to Si and Ni ion irradiation [J].
Aizenshtein, M. ;
Ungarish, Z. ;
Woller, K. B. ;
Hayun, S. ;
Short, M. P. .
NUCLEAR MATERIALS AND ENERGY, 2020, 25
[3]   Exploring thermodynamic, physical and radiative interaction properties of quinary FeNiCoCr high entropy alloys (HEAs): a multi-directional characterization study [J].
Almisned, Ghada ;
Guler, Omer ;
Ozkul, Iskender ;
Sen Baykal, Duygu ;
Alkarrani, Hessa ;
Kilic, G. ;
Mesbahi, A. ;
Tekin, H. O. .
PHYSICA SCRIPTA, 2024, 99 (11)
[4]   High temperature tribology of CuMoTaWV high entropy alloy [J].
Alvi, Sajid ;
Akhtar, Farid .
WEAR, 2019, 426 :412-419
[5]   The role of particle ripening on the creep acceleration of Nimonic 263 superalloy [J].
Angella, Giuliano ;
Donnini, Riccardo ;
Ripamonti, Dario ;
Maldini, Maurizio .
EUROSUPERALLOYS 2014 - 2ND EUROPEAN SYMPOSIUM ON SUPERALLOYS AND THEIR APPLICATIONS, 2014, 14
[6]   Extreme environment technologies for space and terrestrial applications [J].
Balint, Tibor S. ;
Cutts, James A. ;
Kolawa, Elizabeth A. ;
Peterson, Craig E. .
SPACE EXPLORATION TECHNOLOGIES, 2008, 6960
[7]   Towards V-based high-entropy alloys for nuclear fusion applications [J].
Barron, P. J. ;
Carruthers, A. W. ;
Fellowes, J. W. ;
Jones, N. G. ;
Dawson, H. ;
Pickering, E. J. .
SCRIPTA MATERIALIA, 2020, 176 :12-16
[8]   Effect of low temperature on tensile properties of AlCoCrFeNi2.1 eutectic high entropy alloy [J].
Bhattacharjee, Tilak ;
Zheng, Ruixiao ;
Chong, Yan ;
Sheikh, Saad ;
Guo, Sheng ;
Clark, Ian Thomas ;
Okawa, Toshiro ;
Wani, Irfan Samad ;
Bhattacharjee, Pinaki Prasad ;
Shibata, Akinobu ;
Tsuji, Nobuhiro .
MATERIALS CHEMISTRY AND PHYSICS, 2018, 210 :207-212
[9]  
Bondarenko YA, 2021, INORG MATER-APPL RES, V12, P1157, DOI [10.30791/1028-978X-2021-2-5-16, 10.1134/S2075113321050063]
[10]   Laser brazing of a nickel-based superalloy using a Ni-Mn-Fe-Co-Cu high entropy alloy filler metal [J].
Bridges, Denzel ;
Zhang, Suhong ;
Lang, Samantha ;
Gao, Minrui ;
Yu, Zhenzhen ;
Feng, Zhili ;
Hu, Anming .
MATERIALS LETTERS, 2018, 215 :11-14