Progress of cutting force modelling in micromilling

被引:0
|
作者
Zhu K. [1 ]
Li K. [1 ,2 ]
Mei T. [1 ]
Shi Y. [1 ]
机构
[1] Institute of Advanced Manufacturing Technology, Hefei Institutes of Physical Science, Chinese Academy of Science, Changzhou
[2] Department of Precision Machinery and Precision Instrumentation, University of Science and Technology of China, Hefei
来源
| 1600年 / Chinese Mechanical Engineering Society卷 / 52期
关键词
Cutting force modelling; Machining mechanism; Micromilling;
D O I
10.3901/JME.2016.17.020
中图分类号
学科分类号
摘要
Micromilling is an effective manufacturing technology for 3D microstructure parts with various material characteristics and has widely application prospects. However, due to sharp decreases of the machining scale and parameters, micromilling process shows many differences from traditional milling. There have been a lot of researches on micromilling process and cutting force modeling, but they mainly aimed at a single phenomenon or a few phenomena, at present there is no systematic study that describes the micromilling mechanics, so it is necessary to comprehensively review the cutting force modeling approaches. The cutting force modeling of micromilling is thoroughly discussed and summarized, by combining the latest research progress of the micromilling technology at home and abroad, and starting from the different mechanics between micromilling and traditional milling. The effects of cutting edge radius, tool runout, deflection and tool wear on cutting force modeling are surveyed. In the end, hot research topics are raised and problems that yet to be investigated are summarized. © 2016 Journal of Mechanical Engineering.
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页码:20 / 34
页数:14
相关论文
共 92 条
  • [41] Tlusty J., Dynamics of cutting forces in end milling, CIRP Annals-Manufacturing Technology, 24, 1, pp. 22-25, (1975)
  • [42] Xu H., Prediction, compensation and experimental research of deformation on thin-walled NC side milling, (2007)
  • [43] Fang N., Slip-line modeling of machining with a rounded-edge tool-Part I: New model and theory, Journal of the Mechanics and Physics of Solids, 51, 4, pp. 715-742, (2003)
  • [44] Fang N., Slip-line modeling of machining with a rounded-edge tool-Part II: Analysis of the size effect and the shear strain-rate, Journal of the Mechanics and Physics of Solids, 51, 4, pp. 743-762, (2003)
  • [45] Shi T., Ramalingam S., Slip-line solution for orthogonal cutting with a chip breaker and flank wear, International Journal of Mechanical Sciences, 33, 9, pp. 689-704, (1991)
  • [46] Dudzinski D., Molinari A., A modelling of cutting for viscoplastic materials, International Journal of Mechanical Sciences, 39, 4, pp. 369-389, (1997)
  • [47] Oxley P., Shear angle solutions in orthogonal machining, International Journal of Machine Tool Design and Research, 2, 3, pp. 219-229, (1962)
  • [48] Wang C., The research on the method about tracking the critical sliding surface of the slope with the slip line theory, (2013)
  • [49] Zhang F., Modelling and analysis of micro-end milling force, (2007)
  • [50] Jin X., Altintas Y., Slip-line field model of micro-cutting process with round tool edge effect, Journal of Materials Processing Technology, 211, 3, pp. 339-355, (2011)