Corrosion mechanism of aluminum alloy materials under high corrosion conditions
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1.Electric Power Research Institute of Guizhou Power Grid Co., Ltd., Guiyang 550000, P. R. China;2.School of Materials Science and Engineering, Chongqing University, Chongqing 400044, P. R. China;3.Electric Power Research Institute of Hainan Power Grid Co., Ltd., Haikou 570100, P. R. China;4.Guiyang Management Office, Transmission Operation and Maintenance Branch of Guizhou Power Grid Co., Ltd., Guiyang 550000, P. R. China;5.Gui’an Power Supply Bureau, Guizhou Power Grid Co., Ltd., Guiyang 550000, P. R. China

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Supported by China Southern Power Grid Major Science and Technology Project (GZKJXM20191302).

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    Abstract:

    With the advantages of low density, low melting point, high specific strength and excellent corrosion resistance, aluminum alloys are widely used in aerospace, construction, shipbuilding and other industries. During service, the surface oxide film of aluminum alloys is susceptible to corrosion by active anions in the environment, causing serious damage to its performance. Therefore, studying the corrosion behavior of aluminum alloys in a highly corrosive environment is very important for engineering material selection. In this work, 6061 aluminum alloy, 2195 aluminum-lithium alloy and 7075 aluminum alloy were taken as the research objects, their corrosion process and mechanical properties in specific corrosive media were analyzed, and their corrosion morphology and mechanical properties in specific corrosive media were investigated. The results show that in the early stage of corrosion, in a corrosive environment with high Cl-, , and - concentrations, the oxide films of the three aluminum alloys undergo pitting corrosion after being damaged by anions, which exposes the matrix of the alloys to the corrosive environment, resulting in electrochemical corrosion. The corrosion of both 6061 aluminum alloy and 2195 aluminum-lithium alloy progresses from pitting corrosion to surface corrosion, while the 7075 aluminum alloy corrosion mode is intergranular corrosion. After corrosion, 6061 aluminum alloy maintains stable strength and plasticity, but the strength and plasticity of 7075 aluminum alloy and 2195 aluminum-lithium alloy are significantly reduced.

    Reference
    [1] 钟掘. 提高铝材质量基础研究的进展[J]. 轻合金加工技术, 2002, 30(5): 1-10.Zhong J. Progress in the basic research of improving aluminum materials quality[J]. Light Alloy Fabrication Technology, 2002, 30(5): 1-10. (in Chinese)
    [2] Zaid B, Saidi D, Benzaid A, et al. Effects of pH and chloride concentration on pitting corrosion of AA6061 aluminum alloy[J]. Corrosion Science, 2008, 50(7): 1841-1847.
    [3] 叶浩. 2024铝合金的熔铸及形变热处理工艺研究[D]. 长沙: 湖南大学, 2012.Ye H. Research on casting and thermo-mechanical treatment of 2024 aluminum alloy[D]. Changsha: Hunan University, 2012. (in Chinese)
    [4] Ghiaasiaan R, Amirkhiz B S, Shankar S. Quantitative metallography of precipitating and secondary phases after strengthening treatment of net shaped casting of Al-Zn-Mg-Cu (7000) alloys[J]. Materials Science and Engineering: A, 2017, 698: 206-217.
    [5] Lee H, Kim Y, Jeong Y, et al. Effects of testing variables on stress corrosion cracking susceptibility of Al 2024-T351[J]. Corrosion Science, 2012, 55: 10-19.
    [6] 杨敏杰. 喷射成形7055铝合金型材抗腐蚀性能研究及机理分析[D]. 兰州: 兰州理工大学, 2014.Yang M J. Study on corrosion property and mechanism of spray formed 7055 aluminum alloy [D]. Lanzhou: Lanzhou University of Technology, 2014. (in Chinese)
    [7] 侯丹丹. 6082铝合金的微观组织演变规律和晶间腐蚀行为研究[D]. 长春: 长春理工大学, 2017.Hou D D. Research on microstructure evolution and inter-granular corrosion behavior of 6082 aluminum alloy[D]. Changchun: Changchun University of Science and Technology, 2017. (in Chinese)
    [8] Zhao Q Y, Guo C, Niu K K, et al. Long-term corrosion behavior of the 7A85 aluminum alloy in an industrial-marine atmospheric environment[J]. Journal of Materials Research and Technology, 2021, 12: 1350-1359.
    [9] Zhang S, Zhang T, He Y T, et al. Long-term atmospheric pre-corrosion fatigue properties of epoxy primer-coated 7075-T6 aluminum alloy structures[J]. International Journal of Fatigue, 2019, 129: 105225.
    [10] 李晓刚. 材料腐蚀与防护概论[M]. 2版. 北京: 机械工业出版社, 2017.Li X G. Introduction to corrosion and protection of materials[M]. Beijing: China Machine Press, 2017. (in Chinese)
    [11] 徐火平, 刘慧丛, 朱立群, 等. 盐雾环境中高强铝合金点腐蚀行为与暴露面积的关系[J]. 航空材料学报, 2010, 30(4): 59-64.Xu H P, Liu H C, Zhu L Q, et al. Relation between pitting corrosion behavior and exposed area of high strength aluminum alloys in neutral salt spray[J]. Journal of Aeronautical Materials, 2010, 30(4): 59-64. (in Chinese)
    [12] 李亚萍, 曲鸣飞. 机械装备用6xxx系铝合金在氯盐溶液中的腐蚀行为及其防护[J]. 电镀与环保, 2019, 39(6): 42-44.Li Y P, Qu M F. Corrosion behavior and protection of 6xxx-series aluminum alloy for mechanical equipment in chloride salt solution[J]. Electroplating & Pollution Control, 2019, 39(6): 42-44. (in Chinese)
    [13] 魏立艳. 微观组织结构对铝及铝合金腐蚀行为的影响[D]. 哈尔滨: 哈尔滨工程大学, 2009.Wei L Y. The effect of microstructures on the corrosion behaviors of aluminum and aluminum alloy[D]. Harbin: Harbin Engineering University, 2009. (in Chinese)
    [14] 殷士焜. 2198铝锂合金激光焊接接头的腐蚀行为及机理研究[D]. 北京: 北京工业大学, 2016.Yin S K. Corrosion behavior and mechanism of laser beam welded joint of 2198 aluminium-lithium alloy[D]. Beijing: Beijing University of Technology, 2016. (in Chinese)
    [15] 李云涛, 李晓宁, 包俊成, 等. 2024铝合金盐雾腐蚀评估及腐蚀形貌分析[J]. 腐蚀与防护, 2015, 36(9): 864-868.Li Y T, Li X N, Bao J C, et al. Corrosion evaluation and morphology analysis of 2024 aluminum alloy in salt spray[J]. Corrosion & Protection, 2015, 36(09): 864-868. (in Chinese)
    [16] 张仁群, 王斌, 岳涛, 等. 浅析国军标GJB150与美军标MIL-STD-810F盐雾试验[J]. 环境技术, 2008, 26(5): 42-45,26.Zhang R Q, Wang B, Yue T, et al. Analysis of the salt fog test between GJB 150 and MIL-STD-810F[J]. Environmental Technology, 2008, 26(5): 42-45,26. (in Chinese)
    [17] 程文礼, 杨慧, 任德杰, 等. 表面处理对铝合金盐雾环境下的腐蚀特性试验研究[J]. 航空制造技术, 2020, 63(12): 92-96.Cheng W L, Yang H, Ren D J, et al. Experimental study on corrosion characteristics of aluminum alloy in salt spray environment[J]. Aeronautical Manufacturing Technology, 2020, 63(12): 92-96. (in Chinese)
    [18] Zhang Y, Yin X Y, Wang J Z, et al. Influence of microstructure evolution on tribocorrosion of 304SS in artificial seawater[J]. Corrosion Science, 2014, 88: 423-433.
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李波,樊磊,孙博,白洁,毛先胤,宋守波,杨大宁,张志清,陈科羽,狄睿.高腐蚀条件下用铝合金材料腐蚀机理[J].重庆大学学报,2023,46(5):31~39

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  • Received:August 14,2021
  • Online: May 31,2023
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