TY - JOUR
T1 - Excelling mechanical response of a powder metallurgy medium entropy alloy under extreme loading conditions
AU - Muhammad, Atif
AU - Li, Yulong
AU - Bing, Du
AU - Muhammad, Aamir Raza
AU - Muhammad, Zakir Sheikh
N1 - Publisher Copyright:
© 2024
PY - 2025/3/31
Y1 - 2025/3/31
N2 - Elevated temperatures coupled with dynamic loads present formidable challenges in advanced applications. Using advanced powder metallurgy (PM), CoCrNi, an FCC alloy, was crafted with ultrafine-grained microstructure devoid of any second phase, oxides, or precipitates. Despite the ultrafine microstructure, the material retains its work hardening at room and elevated temperatures. The yield strength of PM alloy shows a 300 % elevation compared to cast alloy at room temperature. Microstructural analysis revealed that mechanical performance stems from the synergistic effect of refined microstructure and nano-domain defects, including stacking faults, dislocations, twining, and nano-grains in raw materials. During dynamic deformation, multivariant twins evolved to contribute towards strengthening and work hardening. Saliently, the alloy exhibits remarkable high-temperature strength and resilience without softening or fracturing. The presence of nano-twins at high temperatures is one of the reasons for the thermal stability of material at elevated temperatures.
AB - Elevated temperatures coupled with dynamic loads present formidable challenges in advanced applications. Using advanced powder metallurgy (PM), CoCrNi, an FCC alloy, was crafted with ultrafine-grained microstructure devoid of any second phase, oxides, or precipitates. Despite the ultrafine microstructure, the material retains its work hardening at room and elevated temperatures. The yield strength of PM alloy shows a 300 % elevation compared to cast alloy at room temperature. Microstructural analysis revealed that mechanical performance stems from the synergistic effect of refined microstructure and nano-domain defects, including stacking faults, dislocations, twining, and nano-grains in raw materials. During dynamic deformation, multivariant twins evolved to contribute towards strengthening and work hardening. Saliently, the alloy exhibits remarkable high-temperature strength and resilience without softening or fracturing. The presence of nano-twins at high temperatures is one of the reasons for the thermal stability of material at elevated temperatures.
KW - Dynamic impact
KW - Multivariant twining
KW - Powder metallurgy
KW - Spark plasma sintering
KW - Work hardening
UR - http://www.scopus.com/inward/record.url?scp=85216929277&partnerID=8YFLogxK
U2 - 10.1016/j.powtec.2025.120737
DO - 10.1016/j.powtec.2025.120737
M3 - 文章
AN - SCOPUS:85216929277
SN - 0032-5910
VL - 454
JO - Powder Technology
JF - Powder Technology
M1 - 120737
ER -