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

机译:改进的五轴雕刻曲面加工刀具轨迹离散化方法

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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.
机译:在雕刻表面的五轴加工中,由于商用机床现有控制器的局限性,切削刀具无法连续跟踪预期的弯曲刀具路径。因此,当前的工业实践是将连续刀具路径离散化为有限数量的刀具接触(CC)点。提出了一种改进的五轴雕刻曲面加工刀具轨迹离散化方法。在调整沿刀具路径的刀具姿态以确保最大的材料去除率并避免对加工表面进行气刨时,以连续离散CC点为特征的前进步长是通过将加工表面误差保持在指定公差内来确定的。常规方法采用弦偏差来估计连续CC点之间插补刀具运动的加工表面误差,该误差已称为基于几何的误差。已经发现,弦偏差不是基于几何的误差的可靠估计。这样,在这项工作中就可以准确地评估基于几何的误差,并且可以对典型的Bezier表面贴片的加工实施相关算法。结果表明,与传统方法相比,离散化刀具路径段的数量减少了约30%。

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