This research demonstrates temperature's role in interfacial microstructure changes during pulse current bonding in bimetallic composites, implying improved material connections.
This work system reveals the critical control mechanism of joining temperature (425–500 °C) on the interfacial microstructure and mechanical properties of Al/Cu bimetallic composites. Results indicate that temperature dominates interfacial evolution through a competitive mechanism involving recrystallization, diffusion, and compound growth: temperature exerts a nonlinear regulatory effect on the pulse current diffusion bonding process, significantly controlling the microstructural evolution of the Cu layer via dynamic recrystallization. Below the critical threshold of 450 °C, recrystallization in the Cu layer substantially increases, while the high-stacking-fault Al layer undergoes predominantly dynamic recovery. Beyond 475 °C, accelerated interfacial reactions cause IMC coarsening and thermal stress crack initiation, leading to brittle interfacial failure. Theoretical analysis reveals a synergistic effect between Joule heating and the electron wind from pulse current, promoting preferred growth along close-packed planes and releasing residual stresses. This facilitates an optimized interface structure with low dislocation density and high orientation stability, offering a novel approach for connecting heterogeneous materials in aerospace lightweighting and electronic packaging.
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Wen et al. (2026) studied this question.
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