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Feed-system autotuning of a CNC machining center: Rapid system identification and fine gain tuning based on optimal search

机译:CNC加工中心的进给系统自动调谐:基于最佳搜索的快速系统识别和微调增益

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摘要

We report an autotuning technique for feed systems of a CNC machine tool using a least-square parametric system identification, a frequency-domain design method, and a fine-tuning method based on an optimal search algorithm. The feed system of a movable-column-type vertical machining center has a large moving mass because spindle and z-axis servo systems are housed in the column. Therefore, perturbation signal is carefully designed. Using a reasonably "smooth" multiharmonic signal, system identification is completed rapidly (8 s) without causing excessive vibration or violating travel limits. Accurate information on the plant dynamics is obtained up to 30 Hz. Feed systems (i.e., x,y,z axis) are modeled as 3rd-order transfer functions in a discrete domain, and compared with the identification results obtained using a Gaussian random sequence and a frequency-domain system-identification method. A proportional (P) controller is designed using numerical search in frequency domain that maximizes the tracking bandwidth and still keeps the system well damped. The frequency response is improved compared to that of a pole-placement method (zeta velence 0.707). P controllers of all the three axes that minimize contour error for three-dimensional a 20-mm-diameter circular trajectory are fine-tuned using a fast optimal-search method (440 s). The contour error is significantly improved (average error of 2.25 (mu)m), compared to the results of the pole-placement method (37.89 (mu)m) and the frequency domain design method (12.37 (mu)m) when feed rate is 0.5 m/min. The calculated stability margins of the controller gains are satisfactory.
机译:我们报告了使用最小二乘参数系统识别,频域设计方法和基于最佳搜索算法的微调方法对CNC机床进给系统进行自动调整的技术。可动柱式立式加工中心的进给系统具有较大的移动质量,这是因为主轴和z轴伺服系统容纳在立柱中。因此,精心设计了扰动信号。使用合理的“平滑”多谐波信号,可以快速(8 s)完成系统识别,而不会引起过度的振动或违反行程限制。在高达30 Hz的频率下可获得有关设备动态的准确信息。将馈送系统(即x,y,z轴)建模为离散域中的三阶传递函数,并将其与使用高斯随机序列和频域系统识别方法获得的识别结果进行比较。使用频域中的数字搜索设计比例(P)控制器,该控制器可最大化跟踪带宽并仍保持系统良好的阻尼。与极点放置方法(ze velence 0.707)相比,频率响应得到了改善。使用快速最佳搜索方法(440 s)对所有三个轴的P控制器进行了微调,以使直径为20 mm的三维圆形轨迹的轮廓误差最小。与极进给法(37.89μm)和频域设计方法(12.37μm)的结果相比,轮廓误差得到了显着改善(平均误差为2.25μm)是0.5 m / min。计算得出的控制器增益的稳定裕度令人满意。

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