Surface generation of freeform surfaces in diamond turning by applying double-frequency elliptical vibration cutting

振动 机械加工 机械工程 金刚石车削 金刚石工具 可加工性 刀具 往复运动 伺服 曲面(拓扑) 机床 刀具轨迹 材料科学 声学 工程制图 计算机科学 工程类 几何学 物理 气体压缩机 数学
作者
Xiaoqin Zhou,Chengming Zuo,Qiang Liu,Jieqiong Lin
出处
期刊:International Journal of Machine Tools & Manufacture [Elsevier]
卷期号:104: 45-57 被引量:53
标识
DOI:10.1016/j.ijmachtools.2015.11.012
摘要

A new freeform surface generation method for the difficult-to-cut materials is proposed in this paper. Fast tool servo and slow slide servo diamond turning are the main generation technologies for freeform surfaces, whereas they cannot machine the freeform surfaces of difficult-to-cut materials very effectively. On the other hand, elliptical vibration cutting has demonstrated its excellent performance in material processing, especially for the difficult-to-cut materials. Nevertheless, it is unable to generate the freeform surfaces very successfully. Therefore, this paper proposes the double-frequency elliptical vibration cutting method for the freeform surface diamond machining on the difficult-to-cut materials, which provides the high-frequency elliptical vibration to improve the machinability in material removal and the low-frequency reciprocating movements for the freeform surface profile generation. The relative movements between the tool and the workpiece are analyzed, and because of the Y direction elliptical vibration, the cutting plane does not always cross the workpiece center, which makes the tool path generation, the tool geometry selection and the surface topography prediction very different from those in the conventional fast tool servo or slow slide servo diamond turning. A new tool path generation method is proposed, and the selection of the tool geometry parameters is discussed. The surface generation process is analyzed, based on which the topography model for the machined surfaces is constructed. Three typical freeform surfaces are machined on the die steel workpieces, which verifies the feasibility of the proposed tool path generation strategies. In addition, the experimental results agree well with the surface topography predictions, which validates the effectiveness of the topography model. This model also applies to the diamond turning processes with tool motion in the Y direction, such as turning with EVC.
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