Prediction and Experimental Verification of Workpiece Surface Topology in Axial Ultrasonic Vibration Assisted Grinding Based on Dynamic Profile Sampling Method

  • WANG Yan ,
  • LI Delin ,
  • LIU Jianguo ,
  • SONG Honglin ,
  • PENG Shuiping ,
  • WANG Rui
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  • 1. School of Mechanical Engineering, University of Shanghai for Science and Technology, Shanghai 200093;
    2. Jiangsu Mitsubishi Abrasives Co., Ltd., Yancheng 224000

Received date: 2017-11-04

  Revised date: 2018-04-21

  Online published: 2018-11-05

Abstract

A novel predicting method which is based on the dynamic profile sampling method for workpiece surface topology in axial ultrasonic vibration assisted grinding is presented. The surface topology model of grinding wheel is generated by assumptions that the diameters of sphere particles are distributed normally, and the positions of particles are distributed randomly. The formula of arbitrary particle motion path in axial ultrasonic vibration assisted grinding is established in a kinematic view. The dynamic profile sampling method is presented aiming at the feature of particle motion path. Then this method is amended by establishing the grove-broadening model as well as introducing the elastic deformation model and plastic pile-up model. Then the final surface topology of workpiece is generated. An experimental verification is conducted for the predicted results. A comparing analysis shows that predicted and measured surface topology of workpiece are featured similarity. Additionally, the average error between the predicted and measured surface roughness of workpiece is 5.3%, which verifies the accuracy of the predicting method.

Cite this article

WANG Yan , LI Delin , LIU Jianguo , SONG Honglin , PENG Shuiping , WANG Rui . Prediction and Experimental Verification of Workpiece Surface Topology in Axial Ultrasonic Vibration Assisted Grinding Based on Dynamic Profile Sampling Method[J]. Journal of Mechanical Engineering, 2018 , 54(21) : 221 -230 . DOI: 10.3901/JME.2018.21.221

References

[1] DENKENA B,FRIEMUTH T,REICHSTEIN M. Potentials of different process kinematics in micro grinding[J]. Annals of the CIRP,2003,52(1):463-466.
[2] TAWAKOLI T,AZARHOUSHANG B. Ultrasonic assisted dry grinding of 42CrMo4[J].International Journal of Advanced Manufacturing Technology,2009,42:883-891.
[3] 肖敏. 轴向超声振动辅助磨削机理的研究[D].沈阳:东北大学,2012. XIAO Min. Study on mechanism of axial ultrasonic-assisted Grinding[D]. Shengyang:Northeastern University,2012.
[4] ZHOU X,XI F. Modeling and predicting surface roughness of the grinding process[J]. International Journal of Machine Tools and Manufacture,2002,42(8):969-977.
[5] NGUYEN T A,BUTLER D L. Simulation of precision grinding process,part 1:generation of the grinding wheel surface[J]. International Journal of Machine Tools and Manufacture,2005,45:1321-1328.
[6] NGUYEN T A,BUTLER D L. Simulation of precision grinding process,part 2:Interaction of the abrasive grain with the workpiece[J]. International Journal of Machine Tools and Manufacture,2005,45:1329-1336.
[7] 陈东祥,田延岭.超精密磨削加工表面形貌建模与仿真方法[J]. 机械工程学报,2010,46(13):186-191. CHEN Dongxiang,TIAN Yanling. Modeling and simulation methodology of the machined surface in ultra-precision grinding[J]. Journal of mechanical engineering,2010,46(13):186-191.
[8] LIU Y,ANDREW W. Investigation of different grain shapes and dressing to predict surface roughness in grinding using kinematic simulations[J]. Precision Engineering,2013,37(3). 758-764.
[9] WANG Sheng,LI Changhe,ZHANG Dongkun. Modeling the operation of a common grinding wheel with nanoparticle jet flow minimal quantity lubrication[J]. International Journal of Machine Tools and Manufacture,2014,74(5):835-850.
[10] 冯伟,陈彬强,蔡思捷,等. 考虑机床-磨削交互的工件表面形貌仿真[J].振动与冲击,2016,35(4):235-240. FENG Wei,CHEN Binqiang,CAI Sijie,et al. Simulation of surface topography considering process-machine interaction in grinding[J]. Journal of Vibration and Shook,2016,35(4):235-240.
[11] HOU ZB,KOMANDURI R. On the mechanics of the grinding process-Part 1:Stochastic nature of the grinding process[J]. International Journal of Machine Tools and Manufacture,2003,43(15):1579-1593.
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