Browse > Article

Modeling Cutter Swept Angle at Cornering Cut  

Chan, K.W. (Department of Mechanical Engineering, The University of Hong Kong)
Choy, H.S. (Department of Mechanical Engineering, The University of Hong Kong)
Abstract
When milling concave corners, cutter load increases momentarily and fluctuates severely due to concentration and uneven distribution of material stock. This abrupt change of cutter load produces undesirable machining results such as wavy machined surface and cutter breakage. An important factor for studying cutter load in 2.5D pocket milling is the instantaneous Radial Depth of Cut (RDC). However, previous work on RDC under different corner-cutting conditions is lacking. In this different corner shapes. In our work, we express RDC mathematically in terms of the instantaneous cutter engage angle which is defined as Cutter Swept Angle (CSA). An analytical approach for modeling CSA is explained. Finally, examples are shown to demonstrate that the proposed CSA modeling method can give an accurate prediction of cutter load pattern at cornering cut.
Keywords
Pocket milling; concerning cut; cutter load; tool path; machining;
Citations & Related Records
연도 인용수 순위
  • Reference
1 Iwabe, H., Fujii, Y., Saito, K. and Kishinami, T. (1989), Study on corner cut by end mill - analysis of cutting mechanism and new cutting method at inside corner, In Japanese, Journal of Jap an Society of Precision Engineering, 55(5), 841-846
2 Stori, J. A. and Wright, P K. (2000), Constant engagement tool-path generation for convex geometries, Journal of Manufacturing Systems, 19(3), 172-184
3 Tlusty, J., Smith, S. and Zamudio, C. (1990), New NC routines for quality in milling, Annals of the CIRP, 39(1), 517-521
4 Kline, W. A., Devor, R. E. and Lindberg, J. (1982), Prediction of cutting forces in end milling with application to cornering cuts, lnternational Journal of Machine Tool Design and Research, 22, 7-22
5 Kramer, T. R. (1992), Pocket milling with tool engagement detection, Journ al of Manufacturing Systems, 11(2), 114-123
6 Tsai, M. D., Takata. S., Inui, M., Kimura, F. and Sata, T. (1991), Operation planning based on cutting process models, Annals of CIIRP, 40(1), 95-98
7 Hinduja, S., Ma, Y. S. and Barrow, G. (1995), Determination of radial width of cut and cutting modes in milling, International Journal of Machine Tools & Manufacture, 35(1), 689-699
8 Tarng, Y. S. and Shyur, Y. Y. (1993), Identification of radial depth of cut in numerical control pocketing routines, International journal of Machine Tools & Manufacture, 33(1), 1-11
9 Hinduja, S., Roaydi, A., Philimis, P. and Barrow, G. (2001), Determination of optimum cutter diameter for machining 2-1/2 D pockets, International Journal of Machine Tools & Manufacture, 41, 687-702
10 Fussell, B. K., Jerard, R. B. and Hemmett, J. G. (2001), Robust feedrate selection for 3-Axis NC machining using discrete models, Journal of Manufacturing Sci ence and Engineering, Transactions of the ASME, 123, 214-224
11 Choy, H. S. and Chan, K. W. (2002), A comer-looping based tool path for pocket milling, Computer-Aided Design, 35(2), 155-166
12 Spence, A. D. and Altintas. Y. (1994), A solid modeller based milling process simulation and planning system, Journal of Engineering for Industry, 116, 61-69