首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Influence of Nd addition on microstructures and mechanical properties of a hot-extruded Mg-6.0Zn-0.5Zr (wt.%) alloy
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Influence of Nd addition on microstructures and mechanical properties of a hot-extruded Mg-6.0Zn-0.5Zr (wt.%) alloy

机译:ND加法对热挤出Mg-6.0Zn-0.5Zr(重量%)合金的微观结构和力学性能的影响

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摘要

Influence of 1.5 wt% Nd addition on microstructures and mechanical properties of the as-extruded Mg-6.0Zn-0.5Zr (ZK60) alloy was studied. The results illustrate that Nd addition clearly refines dynamic recrystallized grains but has almost no influence on texture. Additionally, the intermetallic phases were significantly altered by Nd addition. In ZK60 alloy, the coarse intermetallic phases are MgZn2, Mg21Zn25, Mg4Zn7, MgZn and I-phase, while MgNdZn3 (W), Mg43Zn51Nd6 (T), MgZn2 and Nd-enriched MgZn after Nd addition. Also, three kinds of new orientation relationships (ORs) between MgZn2 or its twin domain and Mg were revealed in this work while both MgZn2 and W were found to be coherent with T following identical ORs. Furthermore, the fine precipitates are with sizes of similar to 20 nm and were confirmed as MgZn2, MgZn2 + MgZn and Mg4Zn7 + MgZn2 in ZK60 alloy while new spherical Guinier Preston (G.P.) zones with sizes of similar to 5 nm after Nd addition. Finally, the above microstructural modifications because of Nd addition result in ultra-high strength for ZK60 alloy, with tensile yield strength being approximately 408 MPa. (C) 2019 Elsevier B.V. All rights reserved.
机译:研究了1.5wt%Nd对微结构的影响和挤出Mg-6.0Zn-0.5Zr(ZK60)合金的微观结构和力学性能。结果说明了ND添加清楚地改善了动态再结晶谷物,但几乎没有对纹理的影响。另外,通过ND加入显着改变金属间相。在ZK60合金中,粗制金属间相是MgZN2,Mg21Zn25,Mg4ZN7,MgZn和I相,而ND加入后MgNDZN3(W),Mg43Zn51ND6(T),MgZN2和Nd富集的MgZN。此外,在该工作中揭示了MgZN2或其双域和Mg之间的三种新的取向关系(或s),同时发现MgZN2和W均与遵循相同的或相同的T.此外,细沉淀物具有与20nm相似的尺寸,并在ZK60合金中被证实为MgZN2,MgZN2 + MgZn和Mg4Zn7 + MgZn2,而ND加入后的新球形Guinier普雷斯顿(G.P.)区域的尺寸与5nm相似。最后,由于ND添加导致ZK60合金的超高强度的上述微观结构改性,拉伸屈服强度为约408MPa。 (c)2019 Elsevier B.v.保留所有权利。

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