An improved tool path discretization method for five-axis sculptured surface machining

被引:1
作者
Huiwen Li
O. Remus Tutunea-Fatan
Hsi-Yung Feng
机构
[1] The University of Western Ontario,Department of Mechanical and Materials Engineering
来源
The International Journal of Advanced Manufacturing Technology | 2007年 / 33卷
关键词
Five-axis machining; Sculptured surfaces; Tool path discretization; Geometry-based error; Chordal deviation;
D O I
暂无
中图分类号
学科分类号
摘要
In five-axis machining of sculptured surfaces, the cutting tool is unable to continuously trace the intended curved tool path due to limitations of existing controllers for the commercial machine tools. Current industrial practice is thus to discretize the continuous tool path into a finite number of cutter contact (CC) points. An improved method of tool path discretization for five-axis sculptured surface machining is presented in this paper. While the tool posture along a tool path is tuned to ensure maximized material removal rate and to avoid gouging to the machined surface, the forward step lengths, characterized by the consecutive discretized CC points, are determined by maintaining the machined surface error within the specified tolerance. The conventional method employs chordal deviations to estimate the machined surface errors of the interpolated tool movements between consecutive CC points, which have been referred to as the geometry-based errors. It has been found that chordal deviations are not reliable estimations of the geometry-based errors. As such, the geometry-based errors are accurately evaluated in this work and the related algorithms are implemented to the machining of a typical Bezier surface patch. The results showed a reduction of about 30% in the number of discretized tool path segments compared with those of the conventional method.
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页码:994 / 1000
页数:6
相关论文
共 77 条
[1]  
Hatna A(2000)Cartesian machining versus parametric machining: a comparative study Int J Prod Res 38 3043-3065
[2]  
Grieve B(1994)5-axis machining of sculptured surfaces with a flat-end cutter Comput Aided Des 26 165-178
[3]  
Li SX(1997)Comparison of discretization algorithms for NURBS surfaces with application to numerically controlled machining Comput-Aided Des 29 71-83
[4]  
Jerard RB(1987)NC machining of free form surfaces Comput Aided Des 19 85-90
[5]  
Austin SP(1989)Ball-mills versus end-mills for curved surface machining ASME J Eng Ind 111 22-26
[6]  
Jerard RB(1993)Five-axis CNC milling for effective machining of sculptured surfaces Int J Prod Res 31 2559-2573
[7]  
Drysdale RL(1997)Surface interrogation and machining strip evaluation for 5-axis CNC die and mould machining Int J Prod Res 35 225-252
[8]  
Loney GC(1998)Non-isoparametric tool path planning by machining strip evaluation for 5-axis sculptured surface machining Comput Aided Des 30 559-570
[9]  
Ozsoy TM(1998)Grind-free tool path generation for five-axis surface machining Comput Integr Manuf Syst 11 337-350
[10]  
Vickers GW(1999)Efficient cutter-path planning for five-axis surface machining with a flat-end cutter Comput Aided Des 31 557-566