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Texture and mechanical properties of tape substrates from binary and ternary copper alloys for second-generation high-temperature superconductors

机译:第二代高温超导体用二元和三元铜合金制成的胶带基材的织构和力学性能

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摘要

The process of texture formation in tapes made of a number of binary and ternary copper alloys upon cold rolling to degrees of deformation of 98.6-99% and subsequent recrystallization annealing has been studied. The possibility of designing multicomponent alloys based on the binary Cu-30% Ni alloy additionally alloyed with elements that strengthen the fcc matrix, such as iron or chromium, has been shown. The opportunity of obtaining a perfect cube texture in a thin tape made of binary and ternary copper alloys opens prospects for their use as substrates in the technology of second-generation HTSC cables. Optimum regimes of annealing have been determined, which make it possible to obtain in the Cu-M and Cu-(30-40)Ni-M (M = Fe, Cr, Mn) alloys a perfect biaxial texture with the fraction of cube grains {001}aOE (c) 100 > on the surface of the tape more than 94%. The estimation of the mechanical properties of the textured tapes of the investigated alloys demonstrates a yield strength that is 2.5-4.5 times greater than that in the textured tape of pure copper.
机译:已经研究了由多种二元和三元铜合金制成的带材在冷轧至98.6-99%的变形度以及随后的再结晶退火后的织构形成过程。已经显示了基于二元Cu-30%Ni合金设计的多组分合金的可能性,该合金还与增强fcc基体的元素(例如铁或铬)合金化。在由二元和三元铜合金制成的薄带中获得完美的立方纹理的机会,为将其用作第二代HTSC电缆技术的基材开辟了前景。确定了最佳的退火方式,这使得在Cu-M和Cu-(30-40)Ni-M(M = Fe,Cr,Mn)合金中获得具有立方晶粒分数的理想双轴织构成为可能。胶带表面上的{001} aOE(c)100>大于94%。对所研究合金的织纹带的机械性能的估计表明,其屈服强度比纯铜织纹带的屈服强度高2.5-4.5倍。

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