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Microstructure and creep characteristics of Zn-3Cu-xAl ultra high-temperature lead-free solders

机译:Zn-3Cu-xAl超高温无铅焊料的组织和蠕变特性

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摘要

This study investigates the microstructure and impression creep behavior of the ultra high-temperature Zn-3Cu-4Al (ZCA34), Zn-3Cu-5Al (ZCA35), and Zn-3Cu-6Al (ZCA36) solder alloys under constant punch stress in the range of 70-800 MPa and at temperatures in the range of 345-495 K. The results showed that for all loads and temperatures, increasing Al content of the alloys results in higher creep rates, and thus lower creep resistances. This is attributed to the partial spheroidisation of the lamellar eutectic structure, and the four phase transformation α + ε → T'+ η. The former may ease grain boundary sliding at high temperatures and the latter results in a lesser amount of the more creep resistant e-phase. The stress exponents of 5.0-7.9 and activation energy values of 52.5-100.3 kJ mol~(-1), are indicative of a dislocation climb controlled creep mechanism. The observed increasing trend of creep activation energy with temperature means that two parallel mechanisms of lattice-diffusion-controlled and pipe-diffusion-controlled dislocation climb are competing. Dislocation climb controlled by pipe diffusion is the rate controlling mechanism at low temperatures, whereas dislocation climb controlled by lattice diffusion is the dominant creep mechanism at high temperatures.
机译:本研究研究了在恒定冲头应力下,超高温Zn-3Cu-4Al(ZCA34),Zn-3Cu-5Al(ZCA35)和Zn-3Cu-6Al(ZCA36)焊料合金的组织和压痕蠕变行为。结果表明,在70-800 MPa的温度范围和345-495 K的温度范围内。结果表明,在所有负载和温度下,合金中Al含量的增加都会导致较高的蠕变速率,从而降低抗蠕变性。这归因于层状共晶结构的部分球化,以及四相变换α+ε→T'+η。前者可以缓解高温下的晶界滑动,而后者则导致较少的抗蠕变e相。应力指数为5.0-7.9,活化能值为52.5-100.3 kJ mol〜(-1),表明位错爬升控制蠕变机理。观察到的蠕变活化能随温度升高的趋势表明,晶格扩散控制和管扩散控制的位错爬升的两个平行机制相互竞争。管道扩散控制的位错爬升是低温下的速率控制机制,而晶格扩散控制的位错爬升是高温下的主要蠕变机制。

著录项

  • 来源
    《Materials & design》 |2012年第8期|p.397-403|共7页
  • 作者

    S. Alibabaie; R. Mahmudi;

  • 作者单位

    School of Metallurgical and Materials Engineering, College of Engineering University of Tehran, Tehran, Iran;

    School of Metallurgical and Materials Engineering, College of Engineering University of Tehran, Tehran, Iran;

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

    A. non-ferrous metals and alloys; E. creep; F. microstructure;

    机译:A.有色金属及其合金;E.蠕变;F.微观结构;

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