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Co-Precipitation Strength and Electrical Resistivity of Cu–26 wt Ag–0.1 wt Fe Alloy

机译:Cu–26 wt%Ag–0.1 wt%Fe合金的共沉淀强度和电阻率

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摘要

Both a Cu–26 wt % Ag (Fe-free) alloy and Cu–26 wt % Ag–0.1 wt % Fe (Fe-doping) alloy were subjected to different heat treatments. We studied the precipitation kinetics of Ag and Cu, microstructure evolution, magnetization, hardness, strength, and electrical resistivity of the two alloys. Fe addition was incapable of changing the precipitation kinetics of Ag and Cu; however, it decreased the size and spacing of rod-shaped Ag precipitates within a Cu matrix, because Fe might affect the elastic strain field and diffusion field, suppressing the nucleation of Ag precipitates. Magnetization curves showed that γ-Fe precipitates were precipitated out of the Cu matrix, along with Ag precipitates in Fe-doping alloy after heat treatments. The yield strength of the Fe-doping alloy was higher than that of the Fe-free alloy, and the maximum increment was about 41.3%. The electrical conductivity in the aged Fe-doping alloy was up to about 67% IACS (International Annealed Copper Standard). Hardness, strength, and electrical resistivity were intensively discussed, based on the microstructural characterization and solute contributions of both alloys. Our results demonstrated that an increasing fraction of nanoscale γ-Fe precipitates and decreasing spacing between Ag precipitates resulted in the increasing strength of the Fe-doping alloy.
机译:Cu–26 wt%的Ag(无铁)合金和Cu–26 wt%的Ag–0.1 wt%的Fe(掺杂铁)合金都经过了不同的热处理。我们研究了两种合金的Ag和Cu的沉淀动力学,组织演变,磁化强度,硬度,强度和电阻率。铁的添加不能改变银和铜的沉淀动力学。然而,由于Fe可能影响弹性应变场和扩散场,抑制了Ag沉淀物的成核作用,因此减小了Cu基棒状Ag沉淀物的尺寸和间距。磁化曲线表明,经过热处理后,γ-Fe沉淀物与Cu掺杂物一起从Cu基体中沉淀出来。掺铁合金的屈服强度高于不含铁的合金,最大增量约为41.3%。时效铁掺杂合金中的电导率高达约67%IACS(国际退火铜标准)。基于两种合金的微观结构特征和溶质贡献,对硬度,强度和电阻率进行了深入讨论。我们的结果表明,纳米级γ-Fe析出物的比例增加,而Ag析出物之间的间距减小,导致Fe掺杂合金的强度增加。

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