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Influence of a high magnetic field on the microstructure and properties of a Cu-Fe-Ag in situ composite

机译:强磁场对Cu-Fe-Ag原位复合材料显微组织和性能的影响

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摘要

The influence of a magnetic field during heat treatments was studied for a deformation-processed Cu-14Fe-0.1Ag in situ composite produced by thermo-mechanical processing. A high magnetic field during initial heat treatment promoted the spheroidization and refinement of Fe dendrites, and decreased the diffusion activation energy of Fe atoms in the Cu matrix, which promoted Fe atom precipitation. The resultant in situ composite had thinner Fe fibers, higher tensile strength and better conductivity. A high magnetic field during intermediate heat treatment increased the conductivity and tensile strength. The strength, conductivity and elongation to fracture of a Cu-14Fe-0.1Ag in situ composite could be improved simultaneously using a high magnetic field during the initial, intermediate and final heat treatment. The following combination of properties could be produced by the Cu- 14Fe-0.1Ag in situ composite at η=7.8 after isochronic aging for 1 h using 10 T magnetic induction intensity: (ⅰ) 1149 MPa tensile strength, 60.3% IACS conductivity and 3.3% elongation; or (ⅱ) 1093 Mpa, 61.9% IACS and 3.5%; or (ⅲ) 1006 Mpa, 63.7% IACS and 3.7%.
机译:研究了热处理过程中磁场对热机械加工生产的Cu-14Fe-0.1Ag原位复合材料的影响。初始热处理期间的高磁场促进了Fe树枝状晶体的球化和细化,并降低了Fe原子在Cu基体中的扩散活化能,从而促进了Fe原子的沉淀。所得的原位复合材料具有较细的Fe纤维,较高的拉伸强度和较好的导电性。中间热处理期间的高磁场增加了电导率和拉伸强度。在初始,中间和最终热处理过程中,使用高磁场可以同时提高Cu-14Fe-0.1Ag原位复合材料的强度,导电率和断裂伸长率。通过使用10 T磁感应强度等时老化1小时后,η= 7.8的Cu-14Fe-0.1Ag原位复合材料可以产生以下性能组合:(ⅰ)1149 MPa抗拉强度,60.3%IACS电导率和3.3伸长率%或(ⅱ)1093 Mpa,61.9%IACS和3.5%;或(ⅲ)1006 Mpa,63.7%IACS和3.7%。

著录项

  • 来源
    《Materials Science and Engineering》 |2013年第1期|114-120|共7页
  • 作者单位

    Jiangxi Key Laboratory for Advanced Copper and Tungsten Materials, Jiangxi Academy of Sciences, Nanchang 330029, PR China;

    Jiangxi Key Laboratory for Advanced Copper and Tungsten Materials, Jiangxi Academy of Sciences, Nanchang 330029, PR China;

    School of Materials Science and Engineering, Central South University, Changsha 410083, PR China;

    Jiangxi Key Laboratory for Advanced Copper and Tungsten Materials, Jiangxi Academy of Sciences, Nanchang 330029, PR China;

    The University of Queensland, Materials Engineering, Brisbane, QLD 4072, Australia;

    Jiangxi Key Laboratory for Advanced Copper and Tungsten Materials, Jiangxi Academy of Sciences, Nanchang 330029, PR China;

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

    High magnetic field; Cu-Fe-Ag; In situ composite; Microstructure; Properties;

    机译:强磁场铜铁银原位复合材料;微观结构物产;

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