期刊文献+

第二相粒子在Mg-Gd-Y-Nd-Zr合金局部腐蚀中的作用机制 被引量:5

Effect of second phase particles on localized corrosion of Mg-Gd-Y-Nd-Zr alloy
在线阅读 下载PDF
导出
摘要 基于原位腐蚀观察方法,采用光学显微镜(OM)、扫描电镜(SEM)和能谱分析(EDS)、盐水浸泡实验等研究Mg-Gd-Y-Nd-Zr合金在3.5%NaCl(质量分数)溶液中的腐蚀机理,探讨不同第二相在合金局部腐蚀中的作用机制。结果表明,合金腐蚀初期表现出典型的点蚀特征,富Gd和富Y粒子作为阴极相导致边缘基体相α-Mg的优先溶解,富Zr粒子中的Mg和边缘α-Mg都优先发生腐蚀,且腐蚀源的具体位置与第二相粒子和基体表面间的方位有关。在局部腐蚀过程中,具有更高稀土或锆含量的第二相微区表现出更好的耐蚀性能。此外,在第二相密集分布的区域,第二相粒子充当腐蚀屏障,使微区的耐蚀性能提高。 Based on in-situ corrosion observation, the corrosion mechanism of Mg-Gd-Y-Nd-Zr alloy in 3.5% NaC1 (mass fraction) solution was investigated by optical microscopy (OM), scanning electron microscopy (SEM), energy dispersive X-ray spectrometry (EDS) and saline immersion test. The action mechanism of various second phase particles on localized corrosion of the alloy was also studied. The results show that pitting is the typical and obvious feature in the initial stage of corrosion. Gd-rich and Y-rich particles promote corrosion of a-Mg as cathode of corrosion galvanic cell, while both Mg in Zr-rich particle and a-Mg close to Zr-rich phase corrode preferentially. Moreover, the exact location of corrosion is concerned with the orientation between the second phase particle and the matrix. In the process of localized corrosion, the second phase with higher content of RE elements or Zr shows better corrosion resistance. Furthermore, the area distributed with intensive second phase particles exhibits better corrosion resistance, which is ascribed to the barrier effect derived from the interaction between particles.
出处 《中国有色金属学报》 EI CAS CSCD 北大核心 2013年第1期15-21,共7页 The Chinese Journal of Nonferrous Metals
关键词 稀土镁合金 第二相 盐水浸泡 腐蚀 rare earth magnesium alloy second phase saline immersion corrosion
  • 相关文献

参考文献20

  • 1WANG Li-dong,XING Cheng-yao,HOU Xiu-li,WU Yao-ming, SUN Jian-fei, WANG Li-min. Microstructures and mechanical properties of as-cast Mg-5Y-3Nd-Zr-xGd (x=0,2 and 4 wt.%) alloys[J].Materials Science and Engineering A,2010,(7/8):1891-1895.
  • 2GAO Yan,WANG Qu-dong,GU Jin-hai,ZHAO Yang, TONG Yan. Behavior of Mg-15Gd-5Y-0.5Zr alloy during solution heat treatment from 500 to 540℃[J].Materials Science and Engineering A,2007,(1/2):117-123.
  • 3WANG Jie,YANG Yuan-sheng,TONG Wen-hui. Effect of purification treatment on corrosion resistance of Mg-Gd-Y-Zr alloy[J].{H}Transactions of Nonferrous Metals Society of China,2011,(04):949-954.
  • 4肖阳,张新明,陈健美,蒋浩.Mg-9Gd-4Y-0.6Zr合金挤压T5态的高温组织与力学性能[J].中国有色金属学报,2006,16(4):709-714. 被引量:23
  • 5SCHLUTER K,ZAMPONI C,PIORRA A,QUANDT E. Comparison of the corrosion behaviour of bulk and thin film magnesium alloys[J].{H}Corrosion Science,2010,(12):3973-3977.
  • 6WILLIAMS G,MCMURRAY H N,GRACE R. Inhibition of magnesium localised corrosion in chloride containing electrolyte[J].{H}Electrochimica Acta,2010,(24):7824-7833.
  • 7WANG WEI,WU Guo-hua,WANG Qu-dong,HUANG Yu-guang, DING Jiang-wen. Gd contents, mechanical and corrosion properties of Mg-10Gd-3Y-0.5Zr alloy purified by fluxes containing GdCl3 additions[J].Materials Science and Engineering A,2009,(1/2):207-214.
  • 8ARRABAL R,MATYKINA E,PARDO A,MERINO M C,PAUCAR K,MOHEDANO M,CASAJUS P. Corrosion behaviour of AZ91D and AM50 magnesium alloys with Nd and Gd additions in humid environments[J].{H}Corrosion Science,2012.351-362.
  • 9PARDO A,MERINO M C,COY A E,ARRABAL R, VIEJO F, MATYKINA E. Corrosion behaviour of magnesium/aluminium alloys in 3.5 wt.% NaCl[J].{H}Corrosion Science,2008,(03):823-834.
  • 10QU Qing,MA Jie,WANG Lin,LI Lei,BAI Wei,DING Zhong-tao. Corrosion behaviour of AZ31B magnesium alloy in NaCl solutions saturated with CO2[J].{H}Corrosion Science,2011,(04):1186-1193.

二级参考文献32

  • 1彭卓凯,张新明,陈健美,肖阳,蒋浩,邓桢桢.Mn,Zr对Mg-Gd-Y合金组织与力学性能的影响[J].中国有色金属学报,2005,15(6):917-922. 被引量:50
  • 2周学华,卫中领,陈秋荣,陈开生,黄元伟.含稀土耐蚀Mg-9Al铸造镁合金腐蚀行为研究[J].腐蚀与防护,2006,27(10):487-491. 被引量:13
  • 3LI Y, ZHANG T, WANG F H. Effect of microcrystallization on corrosion resistance of AZ91D alloy[J]. Electrochimica Acta, 2006, 51(14): 2845-2850.
  • 4BALLERINI G, BARDI U, BIGNUCOLO R, CERAOLO G. About some corrosion mechanisms of AZ91D magnesium alloy[J]. Corrosion Science, 2005, 47(9): 2173-2184.
  • 5SONG G. Recent progress in corrosion and protection of magnesium alloys[J]. Advanced Engineering Materials, 2005, 7(7): 563-586.
  • 6SONG G. ATRENS A. Recent insights into the mechanism of magnesium corrosion and research suggestions[J]. Advanced Engineering Materials, 2007, 9(3): 177 183.
  • 7ZHAO M C, LIU M, SONG G, ATRENS A. Influence of the β-phase morphology on the corrosion of the Mg alloy AZ91[J]. Corrosion Science, 2008, 50(7): 1939-1953.
  • 8ZHAO M C, LIU M, SONG G L, ATRENS A. Influence of microstructure on corrosion of as-cast ZE41[J]. Advanced Engineering Materials, 2008, 10(1/2): 104-111.
  • 9ZHAO M C, LIU M, SONG G L, ATRENS A. Influence of homogenization annealing of AZ91 on mechanical properties and corrosion behavior[J]. Advanced Engineering Material, 2008,10(1/2): 93-103.
  • 10CHANG J W, GUO X W, FU P H, PENG L M, DING W J. Effect of heat treatment on corrosion and electrochemical behaviour of Mg-3.0Nd-0.2Zn-0.4Zr (wt.%) alloy[J]. Electrochimica Acta, 2007, 52(9): 3160-3167.

共引文献48

同被引文献42

引证文献5

二级引证文献19

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部