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首页> 外文期刊>Materials & design >Effects of Nd on microstructures and properties at the elevated temperature of a Mg-0.3Zn-0.32Zr alloy
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Effects of Nd on microstructures and properties at the elevated temperature of a Mg-0.3Zn-0.32Zr alloy

机译:Nd对Mg-0.3Zn-0.32Zr合金高温下组织和性能的影响

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摘要

The effects of Nd addition on the microstructures and mechanical properties at elevated temperatures of a Mg-0.3Zn-0.32Zr alloy were investigated in this study. The grain sizes of Mg-0.3Zn-0.32Zr alloys were decreased from 120 μm to 76 μm and grain morphologies were changed from hexahedron to rosette-like by increasing Nd addition from 0.21% to 2.65%. Both Nd and Zn are fully dissolved into the Mg matrix when Nd addition is less than 0.84% and the as-cast structure consists of only α-Mg. Increasing Nd concentration over 1.62%, intermetalitics Mg_(12)(Nd,Zn) phase confirmed by X-ray diffractometer (XRD) occurs at the grain boundaries and triple grain boundaries. The heat treatment results in the Nd fully dissolved and then re-precipitated as Mg_(12)(Nd,Zn), distributing as cluster within the grains and along the grain boundaries. The heat treatment also results in some grain coarsening, and Nd acts as effective barriers for the grain agglomeration.rnThe existing of Mg_(12)(Nd,Zn) phase within the grains and along the grain boundaries for the alloys containing high Nd acts to lock the grain boundaries and reduce grain boundary and dislocation sliding, leading to obvious improvements both in tensile strength and yield strength as well as a slight decrease in elongation at elevated temperatures.
机译:本研究研究了钕对Mg-0.3Zn-0.32Zr合金在高温下的组织和力学性能的影响。通过将Nd的添加量从0.21%增加到2.65%,Mg-0.3Zn-0.32Zr合金的晶粒尺寸从120μm减小到76μm,并且晶粒形态从六面体变为玫瑰状。当Nd添加量小于0.84%时,Nd和Zn都完全溶解在Mg基质中,并且铸态结构仅由α-Mg组成。当Nd浓度增加到1.62%以上时,通过X射线衍射仪(XRD)确认的金属间化合物Mg_(12)(Nd,Zn)相出现在晶界和三晶界。热处理导致Nd完全溶解,然后再沉淀为Mg_(12)(Nd,Zn),以簇状分布在晶粒内并沿晶界分布。热处理还会导致某些晶粒粗大化,Nd成为阻止晶粒团聚的有效屏障。rn含有高Nd的合金在晶粒内和沿晶界存在Mg_(12)(Nd,Zn)相的行为锁定晶界并减少晶界和位错滑动,导致抗拉强度和屈服强度都有明显改善,并且在高温下伸长率略有下降。

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  • 来源
    《Materials & design》 |2010年第9期|P.4438-4444|共7页
  • 作者单位

    School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, People's Republic of China;

    Faculty of Engineering & Surveying, University of Southern Queensland, Toowoomba, Queensland 4350, Australia;

    rnSchool of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, People's Republic of China Harbin Dongan Engine(Group) Co., Ltd., Harbin 150066, People's Republic of China;

    rnSchool of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, People's Republic of China;

    Harbin Dongan Engine(Group) Co., Ltd., Harbin 150066, People's Republic of China;

    rnSchool of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, People's Republic of China;

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