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首页> 外文期刊>Materials Science and Engineering >Optimization of strength, ductility and electrical conductivity of Cu-Cr-Zr alloy by combining multi-route ECAP and aging
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Optimization of strength, ductility and electrical conductivity of Cu-Cr-Zr alloy by combining multi-route ECAP and aging

机译:结合多路径ECAP和时效优化Cu-Cr-Zr合金的强度,延展性和电导率

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摘要

Properties of Cu-Cr-Zr alloy with ultrafine-grained (UFG) structure produced by equal-channel angular pressing (ECAP) via different routes have been investigated. Special attention was paid to the optimization of multi-functional structural, thermal, electrical and mechanical properties of the alloy by aging of UFG one. Multi-pass ECAP via different routes gives rise to the formation of a deformation-induced submicrocrystalline structure with the grain (subgrain) sizes in the range of 200-300 nm depending on applied routes which leads to high hardness and strength in the Cu-Cr-Zr alloy with reduced ductility. Amongst the applied routes, route-Bc was found to be the best processing path for achieving the lowest grain size, the highest hardness and strength. Aging of 8Bc-processed UFG samples increases the hardness and strength of Cu-Cr-Zr alloy while retaining an electrical conductivity comparable to that of aged coarse-grained (CG) one. A satisfactory electrical conductivity of 71%IACS without considerable loss of peak hardness was achieved after aging of 8Bc-processed UFG alloy at 425 ℃ for 240 min. The precipitation strengthened UFG alloy remains its stable behavior at elevated temperatures up to 450 ℃.
机译:研究了等径角挤压(ECAP)通过不同途径生产的具有超细晶粒(UFG)结构的Cu-Cr-Zr合金的性能。特别注意的是通过UFG one的时效来优化合金的多功能结构,热,电和机械性能。通过不同路径的多次通过ECAP导致形成变形诱导的亚微晶结构,其晶粒(亚晶粒)尺寸在200-300 nm之间,具体取决于所应用的路径,从而导致Cu-Cr的高硬度和强度-Zr合金,延展性降低。在所应用的路线中,路线Bc被认为是实现最低粒度,最高硬度和强度的最佳加工路线。 8Bc处理的UFG样品的时效处理可提高Cu-Cr-Zr合金的硬度和强度,同时保持与时效粗粒(CG)相当的电导率。经过8Bc处理的UFG合金在425℃时效240分钟后,获得了令人满意的71%IACS的电导率,而没有明显的峰值硬度损失。析出强化UFG合金在高达450℃的高温下仍保持其稳定的性能。

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  • 来源
    《Materials Science and Engineering》 |2016年第1期|114-122|共9页
  • 作者单位

    Karadeniz Technical University, Department of Mechanical Engineering, 61080 Trabzon, Turkey;

    Karadeniz Technical University, Department of Mechanical Engineering, 61080 Trabzon, Turkey;

    Bayburt University, Department of Mechanical Engineering, 69000 Bayburt, Turkey;

    Karadeniz Technical University, Department of Mechanical Engineering, 61080 Trabzon, Turkey;

    A.A. Baikov Institute of Metallurgy and Materials Science, Russian Academy of Sciences, Leninskiy prospect 49,119991 Moscow, Russia,National University of Science and Technology 'MISIS', Laboratory of Hybrid Nanostructured Materials, Leninskiy prospect 4,119049 Moscow, Russia;

    A.A. Baikov Institute of Metallurgy and Materials Science, Russian Academy of Sciences, Leninskiy prospect 49,119991 Moscow, Russia,National University of Science and Technology 'MISIS', Laboratory of Hybrid Nanostructured Materials, Leninskiy prospect 4,119049 Moscow, Russia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Copper alloys; Equal-channel angular pressing; Aging; Mechanical properties;

    机译:铜合金;等通道角压;老化;机械性能;

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