Microstructures and mechanical properties of highly electrically conductive Cu0.5, Cu1 and Cu2at% Zr alloy wires

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Abstract

Hypoeutectic CuZr binary alloys have originally been studied in order to develop wires with both high strengths and high electrical conductivities. This study aimed to improve the electrical conductivities of Cu0.5, Cu1 and Cu2at% Zr alloys, which have Zr contents lower than those of high-strength Cu3, Cu4 and Cu5 at% Zr alloys. Cast rod samples, whose lengths and diameters were 180 and 12 mm, respectively, were prepared by copper-mold casting and wire-drawn to diameters in the range of 10.031mm (drawing ratio, © = 4.811.1). The microstructures and mechanical properties of the obtained wires were investigated and compared to those of Cu3, Cu4 and Cu5 at%Zr alloy wires that had been investigated in a previous study. The eutectic phases found in the cast rods consisted of α-Cu primary phases and phases of the intermetallic compound Cu5Zr. The eutectic phases became isolated, like small islands, in the matrices, and their volume fractions decreased with a decrease in the Zr content. The orientations of the α-Cu and Cu5Zr phases around the boundaries of these eutectic phases were similar. After the wiredrawing process, the intermetallic compound in the eutectic phases transformed into Cu 9Zr2 in the case of the Cu0.5 at%Zr alloy and into Cu 8Zr3 in the case of the Cu1at% Zr alloy. The electrical conductivity (EC) and ultimate tensile strength (UTS) values of the alloys depended on the volume fractions of their eutectic phases. However, the changes in these properties with the change in the drawing ratio were smaller than those in the case of the high-strength Cu3, Cu4 and Cu 5 at%Zr alloy wires. The EC and UTS values of the Cu0.5, Cu1 and Cu2at% Zr alloy wires drawn at values of n greater than 8.0 were 6183% IACS (International Annealed Copper Standard) and 6901010 MPa, respectively. When combined together, wires of the resulting hypoeutectic CuZr binary alloy exhibited EC and UTS values of 1683% IACS and 6902234 MPa, respectively. These results showed that instead of there being a tradeoff between these properties, the values of both these properties increased at the same time. © 2013 The Japan Institute of Metals.

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Muramatsu, N., Kimura, H., & Inoue, A. (2013). Microstructures and mechanical properties of highly electrically conductive Cu0.5, Cu1 and Cu2at% Zr alloy wires. Materials Transactions, 54(2), 176–183. https://doi.org/10.2320/matertrans.M2012264

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