Citation: | GUO Xue-feng, PENG Guang-huai, ZHANG Xiao-lian. On Micro-arc Oxidation Surface Treatment on Magnesium Alloy[J]. Nonferrous Metals Science and Engineering, 2009, 23(2): 34-37. |
[1] |
Mordike B L, Ebert T. Magnesium properties-applicaTion-potential[J].Mater Sci Eng A, 2001, 302A:37-45. http://www.refdoc.fr/Detailnotice?cpsidt=922136
|
[2] |
戴长松, 吴宜勇, 王殿龙, 等.镁及镁合金的化学镀镍[J].兵器材料科学与工程, 1997, 20(4):35-38. http://www.cnki.com.cn/Article/CJFDTotal-BCKG704.006.htm
|
[3] |
李冠群, 吴国华, 樊昱, 等.镁合金的腐蚀研究现状与防护途径[J].材料学报, 2005, 19(11):60-64 http://d.wanfangdata.com.cn/Periodical/cldb200511017
|
[4] |
祝晓文, 韩建民, 崔世海, 等.铝、镁合金微弧氧化技术研究进展[J].材料科学与工艺, 2006, 14(3):366-369. http://www.wenkuxiazai.com/doc/4914cf318e9951e79b8927ab-3.html
|
[5] |
张英, 孟保平, 杨国英.镁合金表面微弧氧化法[J].轻合金加工技术, 2004, 32 (10):23-26. doi: 10.3969/j.issn.1007-7235.2004.10.010
|
[6] |
张津, 章宗和.镁合金及应用[M].北京:化学工业出版社, 2004.
|
[7] |
Chen Fei, Zhou Hai, Yao Bin, et al. Corrosion resistance property of the ceramic coating obtained through microarc oxidation on the AZ31 magnesium alloy surfaces[J].Surface & Coatings Technology, 2007, 201(9): 4905-4908. https://www.sciencedirect.com/science/article/pii/S0257897206006530
|
[8] |
Liang Jun, Guo Baogang, Tian Jun, et al. Effects of NaAlO2 on structure and corrosion resistance of microarc oxidation coatings formed on AM60B magnesium alloy in phosphate-KOH electrolyte[J].Surface & Coatings Technology, 2005, 199(2):121-126. https://www.sciencedirect.com/science/article/pii/S0257897205004676
|
[9] |
刘亚萍, 段良辉, 潘俊德, 等.镁合金微弧氧化陶瓷膜的微观结构、相成分和耐腐蚀性能[J].材料保护, 2006, 39(2):49-51. http://d.wanfangdata.com.cn/Periodical/clbh200602014
|
[10] |
梁军, 郭宝刚, 田军, 等.AM60B镁合金微弧氧化膜层的结构与性能研究[J].材料化学与工艺, 2007, 15(3):309-312. doi: 10.3969/j.issn.1001-3814.2011.12.043
|
[11] |
Cai Qizhou, Wang Lishi, Wei Bokang, et al. Electrochemical performance of microarc oxidation films formed onAZ91D magnesium alloy in silicate and phosphate electrolytes [J].Surface & Coatings Technology, 2006, 200(12):3727-3733. http://www.sciencedirect.com/science/article/pii/S0257897205006456
|
[12] |
章志友, 赵晴, 陈宁.镁合金微弧氧化陶瓷层的生长过程研究[J].电镀与涂饰, 2007, 26(7):5-8. http://d.wanfangdata.com.cn/Periodical/ddyts200707002
|
[13] |
Boinet M, Verdier S, Maximovitch S, et al. Plasma electrolytic oxidation of AM60 magnesium alloy:Monitoring by acoustic emission technique [J]. Electrochemical properties of coatings. Surface & Coatings Technology, 2005, 199(2):141-149. https://www.sciencedirect.com/science/article/pii/S0257897205000186
|
[14] |
Verdier S, Boinet M, Maximovitch S, et al. Formation, structure and composition of anodic films on AM60 magnesium alloy obtained by DC plasma anodising[J].Corrosion Science, 2005, 47(6):1429-1444. doi: 10.1016/j.corsci.2004.07.038
|
[15] |
陈显明, 罗承萍, 刘江文, 等.镁合金微弧氧化热力学和动力学分析[J].兵器材料科学与工程, 2006, 29(3):17-20. http://www.cqvip.com/QK/95120X/200603/22003487.html
|
[16] |
赵晴, 章志友, 陈宁.终止电压对MB8镁合金微弧氧化膜耐蚀性的影响[J].表面技术, 2007, 36(4):4-6. http://www.wenkuxiazai.com/doc/7bf96ce2bceb19e8b8f6ba91-2.html
|
[17] |
Albella J M, Montero I, Martinnez-Duart J M.Electron injection and Advalanche during the Anodic Oxidation of Tantalum[J]. J Elec trochem soc, 1984, 131(5):1101-1104. doi: 10.1149/1.2115758
|
[18] |
姚美意, 周邦新, 王均安.电压对镁合金微弧氧化膜组织及耐蚀性的影响[J].材料保护, 2005, 38(6):7-10. http://d.wanfangdata.com.cn/Periodical/clbh200506003
|
[19] |
邓姝皓, 易丹青, 龚竹青, 等.镁合金微弧氧化膜的制备工艺研究[J].材料科学与工艺, 2007, 15(1):22-15. http://d.wanfangdata.com.cn/Periodical_qmfskz201511011.aspx
|
[20] |
徐桂东, 沈丽如, 李炯.电流密度对镁合金微弧氧化膜层性能的影响[J].热加工工艺, 2006, 35(12):4-6. doi: 10.3969/j.issn.1001-3814.2006.12.002
|
[21] |
王燕华, 王佳, 张际标.电流密度对AZ91D镁合金微弧氧化膜性能的影响[J].中国腐蚀与防护学报, 2005, 25(6):332-335. http://d.wanfangdata.com.cn/Periodical/zgfsyfhxb200506003
|
[22] |
刘全心. 电参数对镁合金微弧氧化膜层的显微结构和耐蚀性能的影响[D]. 武汉: 华中科技大学, 2005.
|
[23] |
惠记庄. 不同电参数条件下铝-镁合金微弧氧化陶瓷研究[D]. 西安: 长安大学, 2006.
|
[24] |
王立世, 蔡启舟, 魏伯康, 等.硅酸盐和磷酸盐电解液中AZ91D镁合金微弧氧化的成膜特性[J].金属热处理, 2005, 30(4):17-20. http://d.wanfangdata.com.cn/Periodical/jsrcl200504005
|
[25] |
Liang Jun, Hu Litian, Hao Jingcheng. Characterization of microarc oxidation coatings formed on AM60B magnesium alloy in silicate and phosphate electrolyte [J].Applied Surface Science, 2007, 253(10):4490-4496. doi: 10.1016/j.apsusc.2006.09.064
|
[26] |
章志友, 赵晴, 刘月娥.不同体系中镁合金微弧氧化膜层的耐蚀性研究[J].材料保护, 2008, 41(5):19-22. http://d.wanfangdata.com.cn/Periodical/clbh200805006
|
[27] |
蒋百灵, 张先锋.不同电导率溶液中镁合金微弧氧化陶瓷层的生长规律及耐蚀性[J].稀有金属材料与工程, 2005, 34 (3):393-396 http://d.wanfangdata.com.cn/Periodical/xyjsclygc200503014
|
[28] |
梁军, 郭宝刚, 田军, 等.氢氧化钾对镁合金微弧氧化的影响[J].电镀与涂饰, 2005, 38(4):6-8. http://d.wanfangdata.com.cn/Periodical/clbh200504002
|
[29] |
郭洪飞, 安茂忠, 霍慧彬, 等.工艺条件对镁合金微弧氧化的影响[J].材料科学与工艺, 2006, 14 (6):616-621. http://d.wanfangdata.com.cn/Periodical/clkxygy200606015
|
[30] |
Ding Jun, Liang Jun, Hu Litian, et al. Effects of sodium tungstate on characteristics of microarc oxidation coatings formed on magnesium alloy in silicate-KOH electrolyte [J]. Trans Nonferrous Met SOC China, 2007, 17(2):244-249. doi: 10.1016/S1003-6326(07)60079-X
|
[31] |
王萍, 李建平, 马群.Mg-9Gd-3Y-0. 6Zn-0.5Zr镁合金微弧氧化配方的优化[J].特种铸造及有色合金, 2008, 28(7):502-504. http://cpfd.cnki.com.cn/Article/CPFDTOTAL-FSTL201004009007.htm
|
[32] |
Liang Jun, Guo Baogang, Tian Jun, et al. Effect of potassium fluoride in electrolytic solution on the structure and properties of microarc oxidation coatings on magnesium alloy[J].Applied Surface Science, 2005, 252(2):345-351. doi: 10.1016/j.apsusc.2005.01.007
|
[33] |
马跃洲, 马凤杰, 陈明, 等.电解液温度对镁合金微弧氧化成膜过程的影响[J].兰州理工大学学报, 2008, 34(3):25-27. http://www.wenkuxiazai.com/doc/ff10538b84868762caaed568-2.html
|
[1] | HU Yujun, ZHANG Yinghui, AI Di, ZHANG Bing, KUANG Junping. Research on process parameters of CuSi3Mn alloy under upward continuous casting[J]. Nonferrous Metals Science and Engineering, 2023, 14(6): 833-842. DOI: 10.13264/j.cnki.ysjskx.2023.06.011 |
[2] | CHEN Nuo, GUO Ke, GUO Yuxi, WANG Wei, JIAO Shuqiang. Research progress of electrolytes for aluminum-ion batteries[J]. Nonferrous Metals Science and Engineering, 2023, 14(2): 189-201. DOI: 10.13264/j.cnki.ysjskx.2023.02.005 |
[3] | ZOU Mingjin, LI Dong, TIAN Qinghua, GUO Xueyi, XU Zhipeng, YUE Xilong. Research progress on separation and recovery of gallium from secondary resources[J]. Nonferrous Metals Science and Engineering, 2020, 11(5): 45-51. DOI: 10.13264/j.cnki.ysjskx.2020.05.007 |
[4] | LI Jinfeng, QI Xiaopeng, WANG Li, LOU Yitao, FANG Hui, WANG Jiang, CAI Huiyuan. Research progress in the application of carbon nanomaterials in refractories[J]. Nonferrous Metals Science and Engineering, 2020, 11(1): 39-45. DOI: 10.13264/j.cnki.ysjskx.2020.01.007 |
[5] | Zhang Ying, Zhang Ting-an. Research progress for vanadium extraction from vanadium leach solution by solvent extraction[J]. Nonferrous Metals Science and Engineering, 2017, 8(5): 14-20. DOI: 10.13264/j.cnki.ysjskx.2017.05.002 |
[6] | ZHAO Kui, YU Bin, LI Qiseng, ZHU Zhicheng, KUANG Zeliang. Experimental study on in-situ stress measurement from marble using acoustic emission method[J]. Nonferrous Metals Science and Engineering, 2017, 8(3): 88-93. DOI: 10.13264/j.cnki.ysjskx.2017.03.015 |
[7] | LI Dong, XU Runze, XU Zhipenga, GUO Xueyi. Research development of selenium resource and its extraction technology[J]. Nonferrous Metals Science and Engineering, 2015, 6(1): 18-23. DOI: 10.13264/j.cnki.ysjskx.2015.01.004 |
[8] | HU Mei- xie. Research development of bonded permanent magnet materials in China[J]. Nonferrous Metals Science and Engineering, 2012, 3(6): 34-38. |
[9] | WANG Hai-ning, CHEN Zhe. Research Progresses of Air Curtain[J]. Nonferrous Metals Science and Engineering, 2011, 2(3): 40-46. |
[10] | WANG Jian-ru, LIU Zu-wen, ZHU Qiang, XU Jian-hong. On the Factors Affecting the Phosephorus and Nitrogen Removal by Carrousel Oxidation Ditch Process[J]. Nonferrous Metals Science and Engineering, 2011, 2(1): 51-54. |