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Investigations on microstructures, mechanical and corrosion properties of Mg-Gd-Zn alloys

机译:Mg-Gd-Zn合金的组织,力学性能和腐蚀性能研究

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摘要

Microstructure, mechanical and corrosion properties of four alloys, Mg-2Gd-2Zn, Mg-2Gd-6Zn, Mg-10Gd-2Zn and Mg-10Gd-6Zn (all are in weight percentages), prepared by gravity permanent mold casting were investigated. The results indicated that the intermetallic phases in the Mg-2Gd-2Zn alloy consisted mainly of (Mg, Zn)_3Gd phase whereas the Mg-2Gd-6Zn alloy consisted of both Ⅰ (Mg_3Zn_6Gd) and (Mg, Zn)_3Gd phases. In addition, few Mg-Gd and Mg-Zn binary phases were also present in both the alloys. Lamellar long period stacking ordered (LPSO) phase was observed in alloys containing high concentrations of Gd (Mg-10Gd-2Zn and Mg-10Gd-6Zn alloys) in addition to the continuously distributed (Mg,Zn)_3Gd phase along the interdendritic regions and grain boundaries. A small fraction of X phase (Mg_(12)ZnGd) was also present in Mg-10Gd-2Zn alloy. Mg-10Gd-xZn alloys (x=2,6) exhibited higher yield strength due to the higher solute contents and the presence of LPSO phase in the matrix, but showed poor elongation due to the coarse continuous second phase at the boundary. Low Gd-containing alloys showed better elongation to failure and moderate strength due to the lower volume fraction of fine scale second phases. Corrosion resistances of the alloys decreased with increase in the total amount of alloying elements. Increase in Zn content from 2% to 6% in Mg-2Gd-xZn alloys did not alter the corrosion properties much; however, this increase in the high Gd-containing alloys had significant detrimental effects on the corrosion properties due to the significant increase in the volume of the second phases. In all the alloys, galvanic corrosion due to the second phase and filiform corrosion dominated the earlier stages of corrosion, and after long immersion times, the second phase, (Mg,Zn)_3Gd, was found to become unstable and dissolved, leading to intergranular corrosion.
机译:研究了通过重力永久铸模制备的四种合金Mg-2Gd-2Zn,Mg-2Gd-6Zn,Mg-10Gd-2Zn和Mg-10Gd-6Zn的组织,力学性能和腐蚀性能。结果表明,Mg-2Gd-2Zn合金的金属间相主要由(Mg,Zn)_3Gd相组成,而Mg-2Gd-6Zn合金由Ⅰ(Mg_3Zn_6Gd)和(Mg,Zn)_3Gd相组成。另外,两种合金中也几乎没有Mg-Gd和Mg-Zn二元相。除了沿枝晶间区域和晶界区域连续分布的(Mg,Zn)_3Gd相以外,在含有高浓度Gd的合金(Mg-10Gd-2Zn和Mg-10Gd-6Zn合金)中还观察到层状长时间堆积有序(LPSO)相。晶界。 Mg-10Gd-2Zn合金中也存在一小部分X相(Mg_(12)ZnGd)。 Mg-10Gd-xZn合金(x = 2,6)由于较高的溶质含量和基体中存在LPSO相而具有较高的屈服强度,但由于边界处连续的第二相较粗而显示出较差的伸长率。由于细级第二相的体积分数较低,所以含低Gd的合金表现出更好的断裂伸长率和中等强度。合金的耐蚀性随合金元素总量的增加而降低。 Mg-2Gd-xZn合金中的锌含量从2%增加到6%并没有太大地改变腐蚀性能。然而,由于第二相的体积显着增加,因此高含Gd合金的这种增加对腐蚀性能具有明显的不利影响。在所有合金中,由于第二相和丝状腐蚀引起的电偶腐蚀占腐蚀的早期阶段,并且在长时间的浸泡时间后,发现第二相(Mg,Zn)_3Gd变得不稳定和溶解,导致晶间腐蚀。

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  • 来源
    《Materials Science and Engineering》 |2014年第10期|224-234|共11页
  • 作者单位

    Helmholtz-Zentrum, Geesthacht, Institute of Materials Research, Max-Planck-Str. 1, 21502 Geesthacht, Germany,National Institute for Interdisciplinary Science and Technology, CSIR, Pappanamcode (P.O), Thiruvananthapuram 695 019, India;

    Helmholtz-Zentrum, Geesthacht, Institute of Materials Research, Max-Planck-Str. 1, 21502 Geesthacht, Germany;

    Helmholtz-Zentrum, Geesthacht, Institute of Materials Research, Max-Planck-Str. 1, 21502 Geesthacht, Germany;

    Helmholtz-Zentrum, Geesthacht, Institute of Materials Research, Max-Planck-Str. 1, 21502 Geesthacht, Germany;

    Helmholtz-Zentrum, Geesthacht, Institute of Materials Research, Max-Planck-Str. 1, 21502 Geesthacht, Germany;

    Helmholtz-Zentrum, Geesthacht, Institute of Materials Research, Max-Planck-Str. 1, 21502 Geesthacht, Germany;

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

    Mg-Gd-Zn; (Mg, Zn)_3Gd; I phase; LPSO; Tensile properties; Corrosion;

    机译:Mg-Gd-Zn;(Mg;Zn)_3Gd;我阶段LPSO;拉伸性能;腐蚀;

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