期刊文献+

砂带磨削接触有限元分析 被引量:3

Finite Element Analysis of Contact of Belt Grinding
下载PDF
导出
摘要 针对砂带磨削中接触状况,研究磨削轮与工件的接触应力关系,利用有限元方法,使用MSC.MARC软件对某型号磨削轮进行应力分析,得出接触应力影响因素的影响程度,指导磨削轮设计和恒压强磨削控制。 Aiming at researching the contact status between wheel and workpiece, finite element analysis is used to study stress between grinding wheel and work piece with MSC. MARC. Simulation result showed how much the factor influence contact stress and strain, and provided gnidence to the design of grinding wheel and the control of the belt grinding with constant pressure.
出处 《煤矿机械》 北大核心 2008年第10期82-84,共3页 Coal Mine Machinery
关键词 砂带磨削 磨削轮 接触应力和应变 有限元分析 belt grinding griding wheel contact stress and strain finite element analysis
  • 相关文献

参考文献4

二级参考文献42

  • 1朱昌铭.基于虚功原理的弹性接触问题的线性互补方法[J].力学学报,1995,27(2):189-197. 被引量:16
  • 2陈万吉,陈国庆.接触问题的互补变分原理及非线性互补模型[J].计算结构力学及其应用,1996,13(2):138-146. 被引量:22
  • 3吕和祥,马莉颖.三维接触问题的拟二维序列解法[J].固体力学学报,1996,17(1):31-37. 被引量:7
  • 4钟万勰.弹性接触问题的变分原理及参数二次规划求解[J].计算结构力学及其应用,1985,(2):1-9.
  • 5.机械设计手册上册第1分册[M].北京:化学工业出版社,1987..
  • 6.ANSYS非线性分析指南[M].北京:美国ANSYS公司北京办事处,1999..
  • 7JohnsonKL著 徐秉业 罗学富 刘信声译.接触力学[M].北京:高等教育出版社,1992.238-240.
  • 8陈曼琪.用拟弹性叠加双重迭代法解弹塑性接触问题[J].固体力学学报,1983,4(3):365-374.
  • 9杨生华.子结构、子模型方法在齿轮应力和变形计算中的应用[A].工程与科学中的计算力学[C].北京:北京大学出版社,2001:701-707.(Yang Shenghua. Applications of Substructuring and Submodeling in Calculations of the Gear Stress and Deformation[A]. Computational Mechanics in Engineering and Science[C]. Beijing University Press,2001:701-707.(in Chinese))
  • 10Barlam D, Zahavi E. The reliability of solutions in contact problems [J]. Comp & Struct, 1999,70:35-45.

共引文献217

同被引文献20

  • 1罗红波,孟令锋,唐才学.基于神经网络的磨削参数智能选择[J].四川大学学报(工程科学版),2008,40(4):176-180. 被引量:10
  • 2贾志宁,齐效文,郝彩哲.机车车辆弹塑性接触应力场动力学仿真[J].电力机车与城轨车辆,2006,29(2):21-23. 被引量:2
  • 3张磊,葛培琪,张建华,孟剑锋,程建辉,栾芝云.40Cr钢磨削强化的试验与数值仿真[J].机械工程学报,2006,42(8):60-64. 被引量:21
  • 4Doman D A, Warkentin A, Bauer R. Finite element modeling approaches in grinding [J]. International Journal of Machine Tools and Manufacture,2009,49 (2) : 109 - 116.
  • 5Chryssolouris G, Tsirbas K, Salonitis K. An analytical numer- ical and experimental approach to grind hardening[ J ]. Jour- nal of Manufacturing Processes ,2005,7 ( 1 ) : 1 - 9.
  • 6Ren X, Cabaravdic M, Zhang X, et al. A local process model for simulation of robotic belt grinding[ J]. International Jour- nal of Machine Tools and Manufacture,2007,47(6) :962 - 970.
  • 7Hwang J H, Kompella S,Chandrasekar S, et al. Measurement of temperature field in surface grinding using infra-red (IR) imaging system[ J ]. Journal of Tribology Transactions of the ASME, 2003,125 (2) :377 - 383.
  • 8Mamalis A G, Kundrak J, Manolakos D E, et al. Thermal modelling of surface grinding using implicit finite element techniques [ J ]. International Journal of Advanced Manufac-turing Technology, 2003,21 ( 12 ) : 929 - 934.
  • 9Jin T, Stephenson D J. Three dimensional finite element simulation of transient heat transfer in high efficiency deep grinding[ J]. CIRP Annals Manufacturing Technology,2004, 53( 1 ) :259 -262.
  • 10Anderson D, Warkentin A, Bauer R. Experimental valida- tion of numerical thermal models for dry grinding [ J ]. Journal of Materials Processing Technology ,2008,204 ( 1/3 ) : 269 - 278.

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