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April 26, 2026Transactions of Nonferrous Metals Society of China2 citationsOpen Access

Microstructure and properties of Cu−Ni−Co−Si alloy designed by cluster formula approach

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LSLi SZXZhu XIAOMXMeng Xiang-peng

Key Points

  • This research aims to explore the microstructure and properties of a newly designed Cu−Ni−Co−Si alloy using a cluster formula approach.
  • Designed Cu−1.9Ni−1.9Co−0.9Si alloy using cluster formula approach.
  • Conducted thermomechanical treatments including cold rolling and aging at specified temperatures and durations.
  • Analyzed microstructure evolution and comprehensive properties after treatments.
  • Achieved microhardness of HV 260, yield strength of 843 MPa, tensile strength of 884 MPa, and electrical conductivity of 42.6%(IACS).
  • Multi-stage treatment resulted in refined grains, increased dislocation density, and accelerated precipitation of (Ni,Co)2Si.
  • Strength attributed to dislocation strengthening, work hardening, and maintained conductivity through nanoparticle precipitation.

Abstract

A Cu−1.9Ni−1.9Co−0.9Si (mass fraction, %) alloy with high strength and electrical conductivity was designed by cluster formula approach. The microstructure evolution of the alloy during thermomechanical treatment was systematically investigated. The strengthening mechanism and electrical conductivity of the alloy were discussed in detail. The optimal thermomechanical treatment process was as follows: solid solution → 80% cold rolling → (450 °C, 4 h) aging → 50% cold rolling → (400 °C, 4 h) aging. The designed alloy achieved excellent comprehensive properties with a microhardness of HV 260, a yield strength of 843 MPa, a tensile strength of 884 MPa, and an electrical conductivity of 42.6%(IACS). Compared to direct aging treatment, the designed alloy subjected to multi-stage thermomechanical treatment had refined grains, high density of dislocations, and accelerated of precipitation of (Ni,Co) 2 Si precipitates. High strength was mainly attributed to the combined effect of dislocation strengthening, work hardening and sub-grain strengthening, while good electrical conductivity was maintained through the precipitation of the large number of nanoparticles.

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Cite This Study

S et al. (2026) studied this question.

synapsesocial.com/papers/69edadd94a46254e215b56bdhttps://doi.org/10.1016/s1003-6326(25)67003-8
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