期刊文献+

可切削玻璃陶瓷疲劳断裂的微观机制 被引量:3

Fatigue Fracture Micro-Mechanism of a Machinable Glass-Ceramic
在线阅读 下载PDF
导出
摘要 系统研究了在静载荷、动载荷及循环载荷的作用下 ,一种典型可切削玻璃陶瓷的疲劳断裂机理 .以显微组织分析及断口分析为手段 ,重点研究了氟金云母的“卡片框架”组织与疲劳裂纹的交互作用 ,以及循环载荷对材料造成的附加损伤 .实验结果表明 ,在静载荷作用下 ,初始P型裂纹首先稳态扩展 ,随后合并为半圆径向裂纹并最终失稳断裂 .裂纹扩展路径的选择性对应力速率十分敏感 ,随着应力速率的增加 ,裂纹沿云母片层间扩展而发生偏折的倾向逐渐减弱 .实验观测到了循环载荷诱发压痕中位裂纹形成的现象 .伴随中位裂纹产生的断裂棱 ,导致裂纹面的宏观不匹配 ,是循环载荷对材料造成附加损伤的重要原因 . The fatigue fracture mechanism of a typical machinable glass-ceramic under static, dynamic and cyclic loading was investigated. The effects of 'Card-Frame' microstructure of fluoromica crystals on fatigue crack propagation were investigated by microstructure and fractured surface analysis. Additional damage of material from cyclic loading was also discussed. Experimental results showed that, under static loading, the original indentation Palmqvist type cracks propagate stably at first, and then the two Palmqvist cracks combine into one half-penny radial crack which propagates unstably and leads to specimen fracture finally. The selectivity of crack propagation route is very sensitive to the applied stress-rate. The crack interlaminar extension and deflection tendency decreases with increasing stress-rate. A phenomenon of median crack arising under cyclic loading is observed. The macro dismatching in fractured surface caused by fractured-edge accompanied with median crack is one important source of additional damage on material under cyclic loading.
出处 《西安交通大学学报》 EI CAS CSCD 北大核心 2001年第7期736-740,共5页 Journal of Xi'an Jiaotong University
基金 国家自然科学基金资助项目 (5 0 0 72 0 17) .
关键词 可切削玻璃陶瓷 疲劳断裂 显微组织分析 断口分析 Crack propagation Crystal microstructure Fatigue of materials Fracture Loads (forces) Stress analysis
  • 相关文献

参考文献3

二级参考文献5

共引文献8

同被引文献38

  • 1孙淑珍,徐晓虹,彭长琪,吴华,朱通伯.能激发骨形成的磁性多孔陶瓷人工骨材料研究[J].武汉工业大学学报,1994,16(3):99-103. 被引量:7
  • 2梁叔全,李少强,谭小平,唐艳.高锆Si-Al-Zr-O系微晶陶瓷的研究进展[J].材料导报,2005,19(9):54-56. 被引量:1
  • 3余明清,陈学江,郑春岐,戚家伟,刘文化,张乃旺,王德方.微晶氧化铝陶瓷的制备、应用与发展[J].新材料产业,2006(12):17-22. 被引量:4
  • 4[1]W. Vogel, W. Holandand K. Nauman. Development of Machinable Bioactive Glass Ceramics for Medication, Journal of Non-Crystalline Solids 80(1986):34~51
  • 5[2]Crossman. D.G. Machinable Glass-ceramics based-on tetrasilicic mica. J. Am. Ceram. soc., 1972, 55(9):446~449
  • 6[3]Sindel,Petsckel A, Grellner C, etal. Evaluatio of subsurface damage in CAD/CAM Machined Dental Ceramics.J Mater. Sci. Material in medicine, 1998 (9):291~193
  • 7[7]Beal G H. Designs and Properties of Glass-ceramics.Ann. ReV. Mater. Sci.,1992,22:91~l19
  • 8[8]Hench L L, Splinfer R J, Allen W C, et al. Bonding Mechanisms at the interface of Ceramics Prosthetic Materials. J. Biomed. Mater. Res.,1971,2(1):19~71
  • 9[9]Kasuaga T..Abe Y., [J].J, Non-Crystal. Solids,1999,243:70~74
  • 10[11]Oscar Peitl, Edgar Dutra Zanotto, Larry L hench. Highly bioactive P2O5-Na20-CaO-Si02 glass-ceramics. Journal of Non-Crystalline Solids, 2001,292:115~126

引证文献3

二级引证文献2

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