Randomized trial optimises alloy properties in Cu-Ni-Co-Si alloys, indicating enhanced strength and conductivity.
Cu–Ni–Co–Si alloys are widely used in electrical and electronic applications owing to their superior mechanical properties, high electrical conductivity and favourable formability. To address the trade-off between strength and conductivity in conventional processes, this study optimised the solution and ageing regimes using in situ high-temperature hardness, conductivity and X-ray diffraction measurements. When held at 1000 °C for 5 h, the in situ hardness stabilised at 12 HV. Treatment at 450 °C for 2 h yielded optimal properties, including an in situ hardness of 95 HV, conductivity of 24.7% IACS and a dislocation density of 13.15 × 10 14 m −2 . The optimised alloy exhibited uniformly dispersed nano-sized (Ni, Co) 2 Si precipitates, forming a coherent interface with the Cu matrix, achieving favourable strength–conductivity synergy. In situ conductivity analysis was used to establish kinetic equations at 450 °C: σ 450 °C = 0.2006 + 0.0099 ln t (conductivity vs. ageing time) and f 450 °C = 56.5794 + 5.1476 ln t (precipitation vs. time), consistent with experiments. Precipitation strengthening played a crucial role, accounting for 60.7% of the total strength. This optimised single-stage heat treatment streamlines production and enhances performance, providing a viable material solution for high-end electrical applications.
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Li et al. (2026) studied this question.
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