Research of the Milling Process of a Cylindrical Surface by an Oriented Instrument

V. Kalchenko, V. Kalchenko, N. Sira, Ya.V. Kuzhelnyi, Volodymyr Vynnyk
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引用次数: 1

Abstract

The object of research is the milling process with the crossed axes of the cylindrical surface and the tool. During the research, general modular three-dimensional models of the tool surface, the processes of removing the allowance and the shaping of the cylindrical surface are used on the basis of three unified modules: tool, shaping and orientation. Computer simulation is also used to build a three-dimensional model of the milling process of a cylindrical surface with an oriented tool. A graphic scheme of milling a cylindrical surface with an oriented tool has been created. The developed cylindrical module for shaping the tool surface, which is described by the product of the displacement matrices along the corresponding axes and the surface of the machined part, is represented by the product of the radius of the tool vector and its orientation module in the shaft coordinate system. The resulting graph of the distribution of the specific productivity of the milling process along the tooth profile of the tool during processing with crossed axes of the cutter and part. An analysis of this graph shows that the milling method with an oriented tool makes it possible to increase the accuracy of the shaping process due to uniform wear of the tool. The intersection angle of the cylindrical surface and the tool is also determined, the value of which is taken from the condition of ensuring the maximum removal of the material layer with uniform loading of the end part of the cutter. For this, a three-dimensional model of the process of milling a cylindrical surface with crossed axes of the tool and the part is developed, in which rough milling is carried out by the end part of the tool, and the finish – by the peripheral. In the course of the research, it is found that when finishing milling, the value of the rotation angle of the cutter is taken from the condition that the peripheral part of the cutter is fully loaded. Improving the processing efficiency is achieved by crossing the axes of the tool and the part, which allows to program the intersection point, and uniform wear of the cutter, which improves the quality of the machined surface. It is also possible to use high-speed milling to provide increased processing productivity.
定向仪铣削圆柱面工艺研究
研究的对象是圆柱面与刀具轴向交叉的铣削过程。在研究过程中,在刀具、成形和定位三个统一模块的基础上,采用了刀具面、去除余量和圆柱面成形的通用模块化三维模型。利用计算机仿真建立了定向刀具铣削圆柱面过程的三维模型。建立了用定向刀具铣削圆柱表面的图形方案。所开发的刀面成形圆柱模块,用相应轴向位移矩阵与被加工零件表面的乘积来描述,在轴坐标系中用刀具矢量半径与其方向模块的乘积来表示。在刀具与零件轴向交叉的情况下,铣削过程的比生产率沿刀具齿形的分布图。对该图的分析表明,由于刀具的均匀磨损,使用定向刀具的铣削方法可以提高成形过程的精度。还确定了圆柱面与刀具的交角,其取值是在保证刀具端部均匀载荷下最大去除材料层的条件下取的。为此,建立了刀具与零件轴向交叉的圆柱面铣削过程的三维模型,其中刀具的端部进行粗铣,外围部分进行精铣。在研究过程中发现,在精铣时,刀具旋转角度的取值是在刀具外围部分满载的情况下取的。提高加工效率是通过刀具和零件的轴线交叉来实现的,这样可以对交点进行编程,并且刀具的磨损均匀,从而提高了加工表面的质量。也可以使用高速铣削来提高加工生产率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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