期刊文献+

碳含量对AISI304奥氏体不锈钢离子碳氮共渗性能的影响 被引量:3

Effect of C_2H_2 content of performance of AISI304 austenitic stainless steel after ionic carbonitriding process
下载PDF
导出
摘要 对AISI304奥氏体不锈钢进行了不同C2H2含量下的离子碳氮共渗,利用金相显微镜、辉光放电光谱仪、X射线衍射仪和显微硬度计测试了经碳氮共渗处理后试样改性层的截面形貌、渗层成分、相组成和力学性能。结果表明:低温下离子碳氮共渗可以同时获得性能好的Cγ相和γN相,且最大含量分别出现在不同深度;气氛中C2H2含量为3%时,渗层厚度最大,表面显微硬度最大。 The AISI304 austenitic stainless steel with different C2H2 contents was ionically carbonitrided. Then, the sectional morphology, composition of carbonitrided layer, phase composition and mechanical proerties of the steel specimens after ionic carhonitriding were tested with metalloscopy, GDS (glow discharge spectroscopy), XRD and microhardness tester. The results showed that the ionic carbonitriding process can offer high-quality γc and γs phases simultaneously at low temperature and that the maximum C2H2 content is found at different depths of carhurized and nitrided layers. The maximum thickness of carbonitrided layer and surface microhardness are found when the C2H2 content is 3% of carbonitriding atmosphere.
机构地区 东北大学 深圳
出处 《真空》 CAS 北大核心 2008年第3期28-30,共3页 Vacuum
关键词 离子碳氮共渗 奥氏体不锈钢 C2H2含量 ionic carbonitriding austenitic stainless steel C2H2 content
  • 相关文献

参考文献8

  • 1Zhang Z L, Bell T.[J]. Surf Eng, 1985,1:131-136.
  • 2Ichii K, Fujimura K, Takase T.[J].Techn Rep Kansai Univ, 1986,27: 135-144.
  • 3Bell T, Sun Y, Stainless Steel 2000 [C]. Proc. Int. Current Status Seminar on Thermochemical Surf. Eng. Maney Publishing, Osaka,2001:275.
  • 4Tsujikawa M, Yoshida D, Yamauchi N.et al. Surface material design of 316 stainless steel by combination of low temperature carburizing and nitriding [J]. Surface & Coatings Technology, 2005,200:507-551.
  • 5Sun Y, Haruman E. Effect of carbon addition on low-temperature plasma nitriding characteristics of austenitic stainless steel[J]. Vacuum,2006.
  • 6赵程.AISI316奥氏体不锈钢低温PC、PN和PC+PN表面硬化处理[J].青岛科技大学学报(自然科学版),2004,25(4):328-331. 被引量:14
  • 7Tsujikawa M, Yamauchi N, Ueda N,et al. Behavior of carbon in low temperature plasma nitriding layer of austenitic stainless steel [J] .Surface & Coatings Technology ,2005, 193:309-313.
  • 8赵程,孙定国.奥氏体不锈钢的低温离子软氮化处理[J].青岛科技大学学报(自然科学版),2004,25(3):238-241. 被引量:6

二级参考文献13

  • 1Zhang Z L, Bell T. Structure and corrosion resistance of plasma nitrided stainless steel [J]. Surf Eng,1985,1(2): 131~134.
  • 2Menthe E, Rie T. Fther investigation of the structure and properties of austentic stainless steel after plasma nitriding [J]. Sur Coat Tech, 1999,116-119: 199~208.
  • 3Bell T, Sun Y. Low temperature plasma nitriding and carburision of austentic stainless steel [C]. Japan: Stainless steel,2000, 275~278.
  • 4Camps E, MuhlL S, Romero S,et al. Microwave plasma nitrided austenitic AISI-304 stainless steel [J]. Sur Coat Tech, 1998,(106): 121~128.
  • 5Priest J M, Jbaldwin M, Fewell M P, et al. Low pressure r.f. nitriding of austenitic stainless steel in an industria-style heat-treatment furnace [J]. Thin Solid Films, 1999, (345): 113~118.
  • 6Leutenecker R, Wagner G. Phase transformations of a nitrogen-implanted austentitic stainless steel (X10CrNiTi18-9) [J]. Mater Sci Eng, 1989, (A:115): 229~234.
  • 7Blawert C, Weisheit A. Plasma immersion ion implantation of stainless steel: austentic stainless steel in comparision to austentic-ferritic stainless steel [J]. Sur Coat Tech, 1996, (85): 15~19.
  • 8Zhang Z L, Bell T. Structure and corrosion resistance of plasma nitrided stainless steel [J]. Surf Eng, 1985,1 (2) :131~134
  • 9Menthe E, Rie K T. Further investigation of the structure and properties of austentic stainless steel after plasma nitriding [J]. SurCoat Tech, 1999, 116~119:199~203
  • 10Bell T, Sun Y. Low temperature plasma nitriding and carburision of austentic stainless steel [C]. Japan: Stainless steel,2000, 275~278

共引文献18

同被引文献25

  • 1谢飞.奥氏体不锈钢离子渗氮层相结构与性能研究[J].江苏工业学院学报,2004,16(3):1-4. 被引量:4
  • 2高娃,罗建民,杨建君.双相不锈钢的研究进展及其应用[J].兵器材料科学与工程,2005,28(3):61-64. 被引量:112
  • 3张俊,王利捷,张翔,王庆祝.稀土元素对奥氏体不锈钢离子硫氮碳共渗过程的影响[J].金属热处理,1995,20(7):16-18. 被引量:6
  • 4赵建生,许大庆,吴一平,乔学亮,孙培祯.用刚性球体压入方法测量渗氮层脆性[J].金属热处理学报,1995,16(1):48-52. 被引量:4
  • 5Chang Chih-neng, Chen Fan-shiong. Wear resistance evaluation of plasma nitrocarburized AISI 316L stainless steel [ J 1. Materials Chemistry and Physics, 2003, 82: 281-287.
  • 6Foerster C E, Assmann A, da Silva S L R, et al. AISI 304 nitrocarburized at low temperature: mechanical and tribologieal properties [ J 1. Surface & Coatings Technology, 2010, 204: 3004-3008.
  • 7Abd E1-Rahman A M. An investigation on the microstructure, tribological and corrosion performance of AISI 321 stainless steel carbonitrided by RF plasma process [ J ]. Surface & Coatings Technology, 2010, 205: 674-681.
  • 8Pantazopoulosa G, Papazogloub T, Psyllakic P, et al. Sliding wear behaviour of a liquid nitrocarburised precipitation-hardening (PH) stainless steel [ J ]. Surface & Coatings Technology, 2004, 187: 77 -85.
  • 9Li Gui-jiang, Peng Qian, Wang Jun, et al. Surface microstructure of 316L austenitic stainless steel by the salt bath nitrocarburizing and post- oxidation process known as QPQ [ J]. Surface & Coatings Technology, 2008, 202 : 2865-2870.
  • 10Foerster C E,Assmann A, Silva S L R da, et al. AISI 304nitrocarburized at low temperature : mechanical and tribologicalproperties[ J]. Surface and Coatings Technology, 2010, 204( 18-19):3004-3008.

引证文献3

二级引证文献10

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