Microstructure and Salt Fog Corrosion of Wrought Mg-Al-Zn and Mg-RE Alloys

被引:3
|
作者
Kamoutsi, Helen [1 ]
Haidemenopoulos, Gregory N. [1 ]
Gunnaes, Anette E. E. [2 ]
Diplas, Spyros [3 ]
机构
[1] Univ Thessaly, Dept Mech Engn, Volos 38334, Greece
[2] Univ Oslo UiO, Dept Phys, N-0316 Oslo, Norway
[3] SINTEF Ind, N-0314 Oslo, Norway
关键词
magnesium alloys; rare earth elements; corrosion; XPS; weight loss; microstructure; AZ31; AZ61; WE43; MAGNESIUM ALLOYS; SPRAY ENVIRONMENTS; AUGER PARAMETER; ND; BEHAVIOR; QUANTIFICATION; RESISTANCE; IMMERSION; PRODUCTS; PHASE;
D O I
10.3390/ma16031004
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Wrought magnesium alloys have received attention due to their potential application as lightweight materials. However, their use is limited by their poor corrosion resistance. Rare earth additions have the potential to enhance corrosion resistance. The present work included a microstructural investigation and corrosion testing of the alloy WE-43, containing Nd and Y, which was compared against the more conventional compositions of AZ31 and AZ61 alloys. All three alloys exhibited a recrystallized equiaxed structure after hot rolling with the presence of second phases-precipitates. The WE-43 alloy exhibited a better corrosion resistance than AZ31 and AZ61 under salt fog testing, indicated by the lower depth of attack and lower weight loss. The second phases in the microstructure of AZ31 and AZ61 alloys determined their corrosion resistance. The second phases in the AZ31 and AZ61 alloys (based on Al-Mg and Al-Mn phases) were nobler than the Mg matrix and catholically acted, thus sacrificing the Mg matrix. The superior corrosion resistance of WE43 was due to the incorporation of Y in the oxide/hydroxide film. In addition, the second phases in the WE43 consisted of Nd and Y and were less noble than the Mg-matrix. Thus, they acted as anodic sites protecting the Mg-matrix. The above results show the beneficial effect of rare earth additions to wrought Mg alloys towards increased corrosion resistance.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] Corrosion behavior of sand-casted Mg-Al and Mg-Al-Zn alloys in salt spraying environment
    Asakawa, Yoshihiko
    Sato, Fumihiro
    Nakayama, Takenori
    Satoh, Hiroshi
    Keikinzoku/Journal of Japan Institute of Light Metals, 1992, 42 (12): : 759 - 764
  • [2] Effects of Al/Zn ratio on the microstructure and strengthening of Mg-Al-Zn alloys
    Luo, CP
    Liu, JW
    Liu, HW
    MAGNESIUM - SCIENCE, TECHNOLOGY AND APPLICATIONS, 2005, 488-489 : 205 - 209
  • [3] Corrosion and Discharge Behaviors of Mg-Al-Zn and Mg-Al-Zn-In Alloys as Anode Materials
    Li, Jiarun
    Wan, Kai
    Jiang, Quantong
    Sun, Huyuan
    Li, Yantao
    Hou, Baorong
    Zhu, Liwei
    Liu, Min
    METALS, 2016, 6 (03):
  • [4] Corrosion and electrochemical behaviour of Mg-Al alloys and Mg-RE alloys in NaCl solution
    Ding, Wen-Jiang
    Xiang, Ya-Zhen
    Chang, Jian-Wei
    Peng, Ying-Hong
    Zhongguo Youse Jinshu Xuebao/Chinese Journal of Nonferrous Metals, 2009, 19 (10): : 1713 - 1719
  • [5] Quantum Behaviour of Mg and Mg-Al-Zn Microstructure
    Basri, Sahriah
    Zulkifli, Mohd Ezhar
    Hazri, Nurul Shahzira
    Kamarudin, Siti Kartom
    CRYSTALS, 2023, 13 (03)
  • [6] As-cast microstructure of Mg-Al-Zn magnesium alloys
    张静
    潘复生
    杨明波
    李忠盛
    TransactionsofNonferrousMetalsSocietyofChina, 2006, (S3) : 1655 - 1659
  • [7] Comparative study on corrosion behaviors of Mg-Al-Zn alloys
    Candan, Sennur
    Candan, Ercan
    TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2018, 28 (04) : 642 - 650
  • [8] As-cast microstructure of Mg-Al-Zn magnesium alloys
    Zhang Jing
    Pan Fu-sheng
    Yang Ming-bo
    Li Zhong-sheng
    TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2006, 16 : S1655 - S1659
  • [9] Extruclability of Mg-Al-Zn alloys
    Murai, T
    Matsuoka, S
    Miyamoto, S
    Oki, Y
    MAGNESIUM ALLOYS 2003, PTS 1 AND 2, 2003, 419-4 : 349 - 354
  • [10] GALVANIC CORROSION MECHANISM OF MG-AL-ZN ALLOYS IN NACL SOLUTION
    CANEVA, C
    CIGNA, R
    GUSMANO, G
    ANNALI DI CHIMICA, 1971, 61 (7-8) : 493 - &