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Effect of processing and heat treatment on behavior of Cu-Cr-Zr alloys to railway contact wire

机译:热处理工艺对Cu-Cr-Zr合金对铁路接触线行为的影响

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摘要

A new series of Cu-Cr-Zr alloys to be used as railway contact wire, Cu-0.26 wt pct Cr-0.15 wt pct Zr, Cu-0.13 wt pct Cr-0.41 wt pct Zr, and Cu-0.34 wt pct Cr-0.41 wt pct Zr, were studied. The results indicated that processing and aging treatment had an effect on the microstructure, tensile strength, and electrical conductivity behavior of the Cu-Cr-Zr alloys. Process I (solution treatment + cold work + aging) was superior to process II (cold work + solution treatment + aging), because precipitation can occur heterogeneously at the dislocations and subcells. An appropriate processing and aging treatment may improve the properties of the alloys due to the formation of fine, dispersive, and coherent precipitates within the matrix. It is demonstrated that the best combination of tensile strength and electrical conducitivity, on the order of 599 MPa and 82 pct IACS (International Annealed Copper Standard), respectively, can be obtained in alloy Cu-0.34 wt pct Cr-0.41 wt pct Zr in the solution-heat-treated, cold-worked, and aged condition. The mechanism of tensile and conductive properties of Cu-Cr-Zr alloy is also discussed.
机译:一系列新的用作铁路接触线的Cu-Cr-Zr合金,Cu-0.26 wt%Cr-0.15 wt%Zr,Cu-0.13 wt%Cr-0.41 wt%Zr和Cu-0.34 wt%Cr-研究了0.41wt%的Zr。结果表明,加工和时效处理对Cu-Cr-Zr合金的组织,拉伸强度和导电性能有影响。方法I(固溶处理+低温处理+老化)优于方法II(固溶+固溶处理+老化),因为沉淀会在位错和子晶胞中异质地发生。适当的加工和时效处理可能会由于在基体中形成细小,分散和连贯的沉淀而改善合金的性能。结果表明,在Cu-0.34 wt pct Cr-0.41 wt pct Zr合金中,可分别获得约599 MPa和82 pct IACS(国际退火铜标准)的抗拉强度和导电率的最佳组合。固溶热处理,冷加工和时效状态。还讨论了Cu-Cr-Zr合金的拉伸和导电性能的机理。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2006年第11期|3233-3238|共6页
  • 作者单位

    Key Lab of Electromagnetic Processing of Materials Ministry of Education Northeastern University 110004 Shenyang People’s Republic of China;

    School of Mechanical Engineering Shenyang Institute of Chemical Technology China;

    School of Mechanical Engineering Shenyang Institute of Chemical Technology China;

    School of Mechanical Engineering Shenyang Institute of Chemical Technology China;

    Key Lab of Electromagnetic Processing of Materials Ministry of Education Northeastern University USA;

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