Smooth toolpath interpolation for a 5-axis hybrid machine tool

Author:

He ZhenORCID,Fang HanliangORCID,Bao YufeiORCID,Yang FufuORCID,Zhang JunORCID

Abstract

AbstractDue to the merits of high rigidity and good dynamics, hybrid machine tools have been gradually applied to efficient machining of thin-walled workpiece with complex geometries. However, the discontinuity of tangential component of toolpath in hybrid machine tools may cause velocity fluctuations, leading to poor surface quality of workpiece. In this paper, a novel 5-axis hybrid machine tool is taken as an example to demonstrate a smooth toolpath interpolation method. First, an adaptive acceleration and deceleration control algorithm is presented to realize the smooth transition between two constrained velocity points. Second, a spline curve-based interpolation algorithm is proposed to realize the smoothness of the trajectory. Meanwhile, a parameter synchronization method is proposed to ensure the synchronization of the interpolated tool-axis vector and the interpolated tool tip. Thirdly, an inverse kinematic analysis is conducted based on an inverse position solution model and a velocity mapping model. Finally, a set of machining tests on S-shape workpiece in line with the ISO standard is carried out to verify the effectiveness of the proposed smooth toolpath interpolation method.

Publisher

Cambridge University Press (CUP)

Subject

Computer Science Applications,General Mathematics,Software,Control and Systems Engineering,Control and Optimization,Mechanical Engineering,Modeling and Simulation

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Data model-based toolpath generation techniques for CNC milling machines;Frontiers in Mechanical Engineering;2024-03-07

2. Impact of smoothing interpolations on the non-conventional machining of pockets;Matériaux & Techniques;2024

3. Solving the Inverse Kinematics of a Five Axis CNC Machine Using Shallow and Deep Neural Networks;2023 IEEE 15th International Conference on Humanoid, Nanotechnology, Information Technology, Communication and Control, Environment, and Management (HNICEM);2023-11-19

4. Design and Development of a Numerical Control System for a Hybrid Machining Robot;2022 5th World Conference on Mechanical Engineering and Intelligent Manufacturing (WCMEIM);2022-11-18

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