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首页> 外文期刊>International Journal of Machine Tools & Manufacture: Design, research and application >Modeling and improvement of dynamic contour errors for five-axis machine tools under synchronous measuring paths
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Modeling and improvement of dynamic contour errors for five-axis machine tools under synchronous measuring paths

机译:同步测量路径下五轴机床动态轮廓误差的建模与改进

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摘要

In this paper, a contour error model of the tool center point (TCP) for a five-axis machine tool is proposed to estimate dynamic contour errors on three types of measuring paths. A servo tuning approach to achieve five-axis dynamic matching is utilized to improve contouring performance of the cutting trajectory. The TCP control function is developed to generate measuring trajectories where five axes are controlled simultaneously to keep the TCP at a fixed point. The interpolation method of the rotary axes with S-shape acceleration/deceleration (ACC/DEC) is applied to plan smooth five-axis velocity profiles. The contour error model for five axes is derived by substituting five-axis motion commands into servo dynamics models. The steady state contour error (SSCE) model is demonstrated to illustrate three particular dynamic behaviors: the single-circle with amplitude modulation, double-circle effect and offset behavior. Furthermore, the model is also utilized to investigate the behaviors of dynamic contour errors change in 3D space. The factors that affect dynamic contour errors, including the initial setup position, feedrate and five-axis servo gains, are analyzed. With the developed servo tuning process under the measuring paths (CK1, CK2 and CK4), the contour errors caused by servo mismatch are reduced remarkably. Finally, experiments are conducted on a desktop five-axis engraving machine to verify the proposed methodology can improve dynamic contouring accuracy of the TCP significantly.
机译:在本文中,提出了一种五轴机床的刀具中心点(TCP)的轮廓误差模型,以估计三种类型的测量路径上的动态轮廓误差。利用伺服调整方法来实现五轴动态匹配,以改善切削轨迹的轮廓性能。 TCP控制功能的开发是为了生成测量轨迹,其中同时控制五个轴以将TCP保持在固定点。采用具有S形加减速(ACC / DEC)的旋转轴的插补方法来规划平滑的五轴速度曲线。通过将五轴运动命令代入伺服动力学模型,可以得出五轴轮廓误差模型。演示了稳态轮廓误差(SSCE)模型来说明三种特殊的动态行为:具有幅度调制的单圆,双圆效果和偏移行为。此外,该模型还用于研究3D空间中动态轮廓误差变化的行为。分析了影响动态轮廓误差的因素,包括初始设置位置,进给率和五轴伺服增益。通过在测量路径(CK1,CK2和CK4)下开发的伺服调整过程,可以显着减少由伺服失配引起的轮廓误差。最后,在台式五轴雕刻机上进行了实验,以验证所提出的方法可以显着提高TCP的动态轮廓精度。

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