• CN:11-2187/TH
  • ISSN:0577-6686

机械工程学报 ›› 2015, Vol. 51 ›› Issue (19): 206-212.doi: 10.3901/JME.2015.19.206

• 制造工艺与装备 • 上一篇    

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圆锥刀侧铣非可展直纹面刀轴轨迹规划的特征线方法

阎长罡, 刘宇, 崔云先, 邓晓云   

  1. 大连交通大学机械工程学院
  • 收稿日期:2015-12-01 修回日期:2015-12-01 出版日期:2015-10-05 发布日期:2015-10-05

Feature Line Method of Tool Axis Trajectory Planning for Non-developable Ruled Surface Flank Milling with Conical Tools

YAN Changgang, LIU Yu, CUI Yunxian, DENG Xiaoyun   

  1. School of Mechanical Engineering, Dalian Jiaotong University
  • Received:2015-12-01 Revised:2015-12-01 Online:2015-10-05 Published:2015-10-05

摘要: 针对圆锥刀侧铣加工非可展直纹面中复杂的刀轴轨迹规划问题,提出一种直观简便的刀轴轨迹生成方法。利用圆锥面的性质,给出法向映射曲线的定义即刀具轴线上诸点在设计曲面上的法向投影点的集合,将刀具包络面向设计曲面的逼近问题转化为每个刀位下法向映射曲线与特征线的最小二乘逼近问题,并给出刀具包络面尚未形成时单刀位下理想特征线的生成方法。用两点偏置法生成初始刀位,以此为基准,利用刚体运动学方法将刀轴位姿描述为3个回转与3个平移运动参数的函数,从而建立单刀位优化条件与6个运动参数的非显性的函数关系。采用拉丁超立方的试验设计方法求解,分析并优选计算过程中的影响因素,得到最优刀位,进而获得优化后的刀轴轨迹面。实例计算可知,刀轴优化后的包络误差显著降低,并且计算结果稳定。该方法可为非可展直纹面的圆锥刀侧铣加工提供一定的理论依据。

关键词: 侧铣, 刀轴轨迹规划, 非可展直纹面, 特征线, 圆锥刀

Abstract: Aiming to the problem of complex tool axis trajectory planning for flank milling non-developable ruled surface with conical milling tools, an intuitive and simple tool axis trajectory generation method is presented. According to the properties of conical surface, the normal mapping curve is defined, i.e. the set of points which are the normal projection of all points of tool axis on the design curved surface, so that the problem of tool envelope surface approximating to design surface, is convert into the least squares approximation problem of normal mapping curve to characteristic curve for every tool position, and the generation method of ideal feature line of single tool position before the formation of tool envelope surface is given. Using the two-offsetting method the initial tool position is generated. Then based on this, the tool axis pose can be described by a function of three rotational and three translational motion parameters, consequently, a non-dominant function between single tool position optimization condition and six motion parameters is built. In the solving process, the experimental design method of Latin hypercube is used, and through analyzing and optimizing the influence factors of calculation, the optimal tool position is obtained, and then the optimized tool axis trajectory surface is obtained. The actual example calculation showed that the envelope error of optimized tool axis is reduced significantly, and the calculation results are stable. This method provides the theoretical basis for flank milling non-developable ruled surface with conical tools.

Key words: conical tools, feature line, flank milling, non-developable ruled surface, tool axis trajectory planning

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