欢迎登录材料期刊网

材料期刊网

高级检索

本文对表层富立方相功能梯度硬质合金的三套烧结工艺进行了分析和对比.结果表明:烧结工艺的主要影响因素包括烧结温度、烧结时间及充气方式.在满足梯度层组织结构要求的前提下,应尽量降低烧结温度、缩短烧结时间,以防止晶粒粗化.气体在液相出现后充入,可加快反应速率且有利于消除孔隙.所制备的样品表面均生成了梯度层,其主要成分为富含Ti元素的立方相组织.根据分析结果,笔者对烧结工艺进行了重新设计.在液相温度进行气氛烧结后,控制降温曲线,在固相阶段进行保温烧结,以进一步增加梯度层厚度,同时对梯度层进行均匀化处理,消除内应力.

参考文献

[1] 黄天佑.材料加工工艺[M].北京:清华大学出版社,2010:1.
[2] 黄旭涛;严密 .功能梯度材料:回顾与展望[J].材料科学与工程,1997,15(04):35-38.
[3] 方海生,陈义良,杜卓林,章明宇,黄庆.功能梯度材料制备过程影响因素的数值研究[J].材料科学与工程学报,2003(04):469-474.
[4] 陈少平,张楠,薛鹏飞,孟庆森.钛基梯度功能材料电场激活原位合成[J].材料科学与工程学报,2010(03):335-340.
[5] 张国兵,郭全贵,赵娟,刘朗,史景利,翟更太.热压烧结SiC/C功能梯度材料微观结构及热震性能研究[J].材料科学与工程学报,2007(01):9-13.
[6] 丰平,贺跃辉,肖逸锋,谢宏.表面无立方相层功能梯度硬质合金的研究进展[J].中国有色金属学报,2007(08):1221-1231.
[7] Walter Lengauer;Klaus Dreyer .Functionally graded hardmetals[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,2002(1/2):194-212.
[8] Fischer-Udo K.R;Hartzell E.T;Akerman Jan G.H .Cemented carbides body used preferably for rock drilling and mineral cutting[P].US 4743515,1988-5-10.
[9] Yong Liu;Haibing Wang;Zhengyi Long .Microstructural evolution and mechanical behaviors of graded cemented carbides[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2006(1/2):346-354.
[10] Suzuki H;Koji H;Yasuro T .Beta-free layer formed near the surface of vacuum-sintered WC-beta-Co alloys containing nitrogen[J].Transactions of the Japan Institute of Metals,1981,22(11):758-764.
[11] Schwarzkopf M;Exner H.E;Fischmeister H.F .Kinetics of compositional modification of (W,Ti)C-Co alloy surface[J].Materials Science and Engineering A,1988,105/106:225-231.
[12] Gustafson P;(O)stlund (A) .Binder-phase enrichment by dissolution of cubic carbides[J].International Journal of Refractory Metals and Hard Materials,1993,12(03):129-136.
[13] Ekroth M;Frykholm R;Lindholm M;Andrén H.-O,(A)gren J .Graded zone in WC-Ti(C,N)-Co-based cemented carbides experimental study and computer simulations[J].Acta Materialia,2000,48(09):2177-2185.
[14] Barbatti C;Garcia J;Sket F;Kostka A;Pyzalla AR .Influence of nitridation on surface microstructure and properties of graded cemented carbides with Co and Ni binders[J].Surface & Coatings Technology,2008(24):5962-5975.
[15] Tsuda K;Ikegaya A;Isobe K;Kitagawa N Nomura T .Development of functionally graded sintered hard materials[J].Powder Metallurgy,1996,39(04):296-300.
[16] 陈巧旺,蒋显全,姜爱民.渗氮烧结的YT15梯度硬质合金微观组织[J].粉末冶金材料科学与工程,2011(03):437-441.
[17] Eder A;Lengauer W;Dreyer K;Berg H.van den,Daub H.-W,Kassel D.Phase formation during sintering of functionally graded hardmetals[A].Reutte:The Plansee Metal GmbH,2005:81-94.
[18] Nobom G. Hashe;Johannes H. Neethling;Hans-Olof Andren .The influence of sintering in nitrogen gas on the microstructure of a WC-VC-TiC-Co cemented carbide[J].International Journal of Refractory Metals & Hard Materials,2008(5):404-410.
[19] 王国栋.硬质合金生产原理[M].北京:冶金工业出版社,1988:200-201.
[20] 王国栋.硬质合金生产原理[M].北京:冶金工业出版社,1988:206.
[21] 陈巧旺;蒋显全;涂铭旌 .表面富立方相功能梯度硬质合金及制备方法[P].ZL 201110052473.2,2012-07-04.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%