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新型层状化合物Ti_2AlC在酸性溶液中的腐蚀行为 被引量:3

Corrosion Behavior of Layered Ternary Carbide Ti_2AlC in Acidic Solution
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摘要 热压烧结得到高纯致密的Ti2AlC块体.将Ti2AlC在浓的和稀的HNO3、HCl及H2SO4溶液中浸泡,得到试样的腐蚀速率及腐蚀类型.电化学方法测量试样在三种稀溶液中的腐蚀电位和腐蚀电流及动电位极化曲线.浸泡腐蚀实验发现,Ti2AlC在酸中的腐蚀类型由点腐蚀发展到晶间腐蚀最后为剥蚀,腐蚀速率随着浸泡时间的延长而不断增大.其中在浓HNO3中腐蚀速率最大,稀HCl的腐蚀速率最小.除H2SO4外,Ti2AlC在浓酸溶液中的腐蚀率均大于其稀溶液.电化学实验表明,在稀HNO3中自腐蚀电流最小,自腐蚀电位最大.稀H2SO4自腐蚀电流最大.在三种稀溶液中均出现钝化,其中稀H2SO4维钝区间最宽. High-purity, fully dense Ti2AlC samples were synthesized by hot pressing process. Their corrosion rate and corrosion type after immersed in concentrated and dilute HNO3, HCl and H2SO4 were obtained. The corrosion potential, corrosion current and potentiodynamic polarization curves were measured by electrochemical methods. Corrosion process is pitting at first, then intergranular corrosion, while exfoliation at last. The corrosion rate increases with time. The corrosion rate reaches the biggest in concentrated HNO3 while reaches the slowest in dilute HCl. The corrosion rate in the concentrated solution is faster than that in dilute solution, except in H2SO4. Electrochemical test shows the corrosion current reaches the biggest in the dilute H2SO4 and reaches the smallest in dilute HNO3. Ti2AlC shows passive behavior in all acid solution, and the passivation interval is the widest in dilute H2SO4.
出处 《无机材料学报》 SCIE EI CAS CSCD 北大核心 2009年第2期402-406,共5页 Journal of Inorganic Materials
基金 国家自然科学基金(20771088) 教育部博士点基金(20050497002)
关键词 TI2ALC 点腐蚀 晶间腐蚀 剥蚀 极化曲线 Ti2AlC pitting intergranular corrosion exfoliation polarization curves
作者简介 王敬平(1982-),男,硕士研究生. 通讯联系人:梅炳初,教授.E—mail:bcmei@whut.edu.cn
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参考文献14

  • 1Barsoum M W. Progress in Solid State Chemistry, 2000, 28(14) : 201-281.
  • 2朱教群,梅炳初,陈艳林.具有良好金属性能的层状三元碳化物和氮化物[J].中国有色金属学报,2001,11(z2):29-32. 被引量:4
  • 3EL-Raghy S M, Waheed A F, EL-Raghy T S, et al. Journal of Materials Science Letters, 1999,18 ( 7 ) : 519 -520.
  • 4Jovic V D, Jovic B M, Gupta S, et al. Corrosion Science,2006,48 ( 12 ) :4274-4282.
  • 5Travaglini J, Barsoum M W, Jovic V, et al. Corrosion Science, 2003,45(6) : 1313-1327.
  • 6Hong XionLin, Mei BingChu, Zhu JiaoQun, et al. Journal of Materials Science, 2004,39 ( 5 ) : 1589 - 1592.
  • 7Zhou W B, Mei B C, Zhu J Q, et al. Materials Letters, 2005,59 (1) :131-134.
  • 8周卫兵,梅炳初,朱教群,陈艳林.可加工Ti_2AlC陶瓷的研究进展[J].武汉理工大学学报,2002,24(9):22-24. 被引量:8
  • 9郭俊明,王宝森,陈克新,周和平.放电等离子烧结可加工Ti_2AlC陶瓷的研究[J].稀有金属材料与工程,2007,36(5):865-868. 被引量:4
  • 10Barsoum M W, El-Raghy T, Ogbuji L. Journal of the Electrochemical Society, 1997,144 ( 7 ) : 2508-2516.

二级参考文献52

  • 1郭俊明,陈克新,刘光华,周和平,宁晓山.放电等离子(SPS)快速烧结可加工陶瓷Ti_3AlC_2[J].稀有金属材料与工程,2005,34(1):132-134. 被引量:12
  • 2[1]Varsoum M W,Brodkin D,EI-Raghy T.Layered machinable ceramics for high temperature application [J].Scripta Materiatia,1997,36(5): 535-541.
  • 3[2]Finkel P,Barsoum M W,EI-Raghy T.Low temperature dependencies of the elastic properties of Ti4AlN3,Ti3Al1.1C1.8,and Ti3SiC2 [J].J Appl Phys,2000,87(4): 1701-1703.
  • 4[3]Jeitschlo W,Nowotny H.Die kristallstructur von Ti3SiC2-Ein neuer komplexcarbid-typ [J].Monatash Chem,1967(98): 329-337.
  • 5[4]Goto T,Hirai T.Chemically vapor deposited Ti3SiC2 [J].Mat Res Bull,1987(22): 1195.
  • 6[5]Pampuch R,Lis J,Stobierski L,et al.Solid combustion synthesis of Ti3SiC2 [J].J Eur Ceram Soc,1989(5): 283.
  • 7[6]Pampuch R,Lis J,Piekarczyk J,et al.Solid combustion synthesis of Ti3SiC2 [J].J Mater Synth Process,1993(1): 93.
  • 8[7]Lis J,Miamoto Y,Pampuch R,et al.Ti3SiC2-based materials by HIP-SHS techniques [J].Mater Lett,1995(22): 163-168.
  • 9[8]Rudnik T,Lis J.The Ti3SiC2-based structural ceramics [J].Arch Metall,1997(42): 59.
  • 10[9]Barsoum M W,EI-Raghy T.Synthesis and characterization of a remarkable ceramic Ti3SiC2 [J].J Am Ceram Soc,1996,19(7): 1953-1956.

共引文献19

同被引文献21

  • 1朱教群,梅炳初,陈艳林.具有良好金属性能的层状三元碳化物和氮化物[J].中国有色金属学报,2001,11(z2):29-32. 被引量:4
  • 2李晓梅,肖华强,曾勇,陈维平.新型Ti_3AlC_2-Al_2O_3/TiAl_3复合材料的组织结构与性能[J].复合材料学报,2015,32(1):108-116. 被引量:4
  • 3周韡,翟洪祥,黄振莺,管明林.钛铝碳的高速摩擦特性及摩擦氧化行为[J].硅酸盐学报,2006,34(5):523-526. 被引量:11
  • 4刘新,翟洪祥,黄振莺.钛铝碳陶瓷载流滑动下的摩擦磨损行为[J].硅酸盐学报,2007,35(7):852-855. 被引量:3
  • 5Barsoum M W. The MN + 1AXN phases: A new class of solids; Thermodynamically stable nanolaminates. Progress in Solid State Chemistry, 2000, 28(1-4) : 201-281.
  • 6Lin Zhijun, Li Meishuan, Wang Jingyang, et al. Microstructure and high-temperature corrosion behavior of a Cr-Al-C composite. J. Am. Cream. Soc. , 2007, 90(12) : 3930-3937.
  • 7Lin Z J, Li M S, Wang J Y, et al. High-temperature oxidation and hot corrosion of Cr2AlC. Acta Materialia, 2007, 55 (6) : 6182- 6191.
  • 8Lin Z J, Zhou Y C, Li M S, et al. In-situ hot pressing/solid-liquid reaction synthesis of bulk Cr2AlC. Zeitschrift Fur Metallkunde, 2005, 96(3) : 291-296.
  • 9Tian W B , Wang P L, Zhang G I, et al. Synthesis and thermal and electrical properties of bulk Cr2AlC. Scrip. Mater. , 2006, 54(5) : 841-846.
  • 10Tian W B, Sun Z M, Du Y L, et al. Synthesis reactions of Cr2 AlC from Cr-Al4C3-C by pulse discharge sintering. Materials Letters, 2008, 62(23) : 3852-3855.

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