欢迎登录材料期刊网

材料期刊网

高级检索

综述了WC-Co类硬质合金疲劳裂纹的产生及扩展特性,指出WC-Co类硬质合金在使用时同时受多种疲劳的共同作用,但疲劳失效的主要形式是不同的,其中在中软岩石层中工作时的疲劳失效主要是由热疲劳引起的,在硬岩石层中工作时的疲劳失效主要是由冲击疲劳引起的.根据文献资料可归纳出:合金显微组织结构(晶粒度)、化学成分(Co量、总碳等)、纯净度(微量元素)和合金残余应力都是影响合金疲劳性能的主要因素,尤其认为Co粘结相的平均自由程是影响合金疲劳性能最主要的因素.

参考文献

[1] Povl Brondsted;Peder Skov-Hansen .Fatigue properties of high-strength materials used in cold-forging tools[J].International Journal of Fatigue,1998(5):373-381.
[2] Gopal S Upadhyaya.Cemented tungsten carbides:Production,properties,and testing[M].United States:Noyes Publications,1997:241.
[3] Zu chowshi R .Analysis of the thermal fatigue process[J].Journal of Materials Processing Technology,2002,50:2381.
[4] 谭永生,蔡和平,刘忠侠,马宝钿.硬质合金截齿齿头的失效分析[J].稀有金属,1998(06):469.
[5] Baily S G;Perrott C M.Wear processes exhibited by WC-Co rotary cutters in mining[J].WEAR,1974(01):117.
[6] Jan Akerman;Thoms Ericson .Cemented carbide body with improved high temperature and thermomoechanical properties[P].US,6692690B2,2004-02-17.
[7] Llanes L .On the fatigue crack growth behavior of WC-Co cemented carbides:Kinetics description,microstructural effects and fatigue sensitivity[J].Acta Materialia,2002,50:2381.
[8] Beste U;Hartzell T.Surface damage on cemented carbide rock-drill buttons[J].WEAR,2001(249):324.
[9] Konyashin L.Novel ultra-coarse hardmetal grades with reinforced binder for mining and construction[J].International Journal of Refractory Metals and Hard Materials,2005(23):225.
[10] 李琴,金鑫,谭军,李国忠,周锋者.地质勘探钻头失效机理研究[J].西南石油学院学报,2004(04):73-77.
[11] Lisovsky A F .Some speculations on an increase of WC-Co cemented carbides service life under dynamic loads[J].International Journal of Refractory Metals and Hard Materials,2003,21:63.
[12] Ishihara S;Shihata H .Thermal shock induced microcracking of cermets and cemented carbides[J].Scripta Materialia,2005,52:559.
[13] Juri Pirso;Sergei Letunovits Mart Viljus .Friction and wear behaviour of cemented carbides[J].Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear,2004(3/4):257-265.
[14] Pugsley V A et al.Corrosion fatigue of cemented carbide cutting tool materials[J].Materials Science and Engineering,2004,A366:87.
[15] 冯端.金属物理学.第三卷:金属力学性质[M].北京:科学出版社,1999:535.
[16] Lisovsky A F.Composition and properties of(Ti,W)C-WC-Co sintered carbides alloyed by MMT-process[J].International Journal of Refractory Metals and Hard Materials,1995(13):379.
[17] Dab Ben Liang;Anthony Griffo .Fracture and wear resistant compounds and rock bits[P].US,2003/0226693 A1,2003-03-25.
[18] Dab Ben Liang .Thermal fatigue and shock-resistant material for earth-boring bits[P].US,6197084 B1,1999-01-15.
[19] Dary F C;Roebuck K .Effects of microstructure on the thermo-mechanical fatigue response of hardmetals using a new miniaturized testing rig[J].International Journal of Refractory Metals and Hard Materials,1999,17:45.
[20] 陈楚轩.硬质合金质量控制原理[M].株州:中国钨业协会硬质合金分会,2007:134.
[21] Kindermann P .High-temperature fatigue of cemented carbides under cyclic loads[J].International Journal of Refractory Metals and Hard Materials,1999,17:55.
[22] Wu Liu;Lu Manshan .Effect of thermomechanicai circulation in short-time on cobalt binder phase in WC-20wt%Co[J].International Journal of Refractory Metals and Hard Materials,1998,16:99.
[23] Xu Chonghai.Research and development of rare-earth cemented carbides[J].International Journal of Refractory Metals and Hard Materials,2001(19):159.
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%