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Multicomponent intermetallic nanoparticles and superb mechanical behaviors of complex alloys
by
Wei, J.
, Cai, J. X.
, Liu, Y.
, Zhao, Y. L.
, Hu, A.
, Yang, T.
, Jiao, Z. B.
, Lu, K.
, Tong, Y.
, Liu, C. T.
, Han, X. D.
, Kai, J. J.
, Chen, D.
in
Alloy systems
/ Alloys
/ Aluminum
/ Ambient temperature
/ Cobalt
/ Deformation mechanisms
/ Dislocation
/ Dislocations
/ Ductile fracture
/ Ductility
/ Embrittlement
/ Ferrous alloys
/ High strength
/ Mechanical properties
/ Nanoalloys
/ Nanoparticles
/ Nickel
/ Plastic instability
/ Stability
/ Superalloys
/ Titanium
/ Work hardening
2018
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Multicomponent intermetallic nanoparticles and superb mechanical behaviors of complex alloys
by
Wei, J.
, Cai, J. X.
, Liu, Y.
, Zhao, Y. L.
, Hu, A.
, Yang, T.
, Jiao, Z. B.
, Lu, K.
, Tong, Y.
, Liu, C. T.
, Han, X. D.
, Kai, J. J.
, Chen, D.
in
Alloy systems
/ Alloys
/ Aluminum
/ Ambient temperature
/ Cobalt
/ Deformation mechanisms
/ Dislocation
/ Dislocations
/ Ductile fracture
/ Ductility
/ Embrittlement
/ Ferrous alloys
/ High strength
/ Mechanical properties
/ Nanoalloys
/ Nanoparticles
/ Nickel
/ Plastic instability
/ Stability
/ Superalloys
/ Titanium
/ Work hardening
2018
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Do you wish to request the book?
Multicomponent intermetallic nanoparticles and superb mechanical behaviors of complex alloys
by
Wei, J.
, Cai, J. X.
, Liu, Y.
, Zhao, Y. L.
, Hu, A.
, Yang, T.
, Jiao, Z. B.
, Lu, K.
, Tong, Y.
, Liu, C. T.
, Han, X. D.
, Kai, J. J.
, Chen, D.
in
Alloy systems
/ Alloys
/ Aluminum
/ Ambient temperature
/ Cobalt
/ Deformation mechanisms
/ Dislocation
/ Dislocations
/ Ductile fracture
/ Ductility
/ Embrittlement
/ Ferrous alloys
/ High strength
/ Mechanical properties
/ Nanoalloys
/ Nanoparticles
/ Nickel
/ Plastic instability
/ Stability
/ Superalloys
/ Titanium
/ Work hardening
2018
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Multicomponent intermetallic nanoparticles and superb mechanical behaviors of complex alloys
Journal Article
Multicomponent intermetallic nanoparticles and superb mechanical behaviors of complex alloys
2018
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Overview
Improving the strength of a metal alloy is hard to do without sacrificing the ductility. Yang et al. designed an iron-nickel-cobalt (Fe-Ni-Co) alloy laced with aluminum-titanium (Al-Ti) nanoparticles with both high strength and ductility. The key was getting the composition tuned correctly, because the Fe-Ni-Co matrix reacts with the Al-Ti nanoparticles. This was vital for avoiding environmental embrittlement, enhancing work hardening, and improving ductility. Science , this issue p. 933 Multicomponent nanoparticles enhance both the strength and ductility of an iron-nickel-cobalt alloy. Alloy design based on single–principal-element systems has approached its limit for performance enhancements. A substantial increase in strength up to gigapascal levels typically causes the premature failure of materials with reduced ductility. Here, we report a strategy to break this trade-off by controllably introducing high-density ductile multicomponent intermetallic nanoparticles (MCINPs) in complex alloy systems. Distinct from the intermetallic-induced embrittlement under conventional wisdom, such MCINP-strengthened alloys exhibit superior strengths of 1.5 gigapascals and ductility as high as 50% in tension at ambient temperature. The plastic instability, a major concern for high-strength materials, can be completely eliminated by generating a distinctive multistage work-hardening behavior, resulting from pronounced dislocation activities and deformation-induced microbands. This MCINP strategy offers a paradigm to develop next-generation materials for structural applications.
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