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A practical control method for precision motion--Improvement of NCTF control method for continuous motion control

机译:精密运动的实用控制方法-连续运动控制的NCTF控制方法的改进

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摘要

The present paper describes a practical control method for a precision motion system and the performance thereof. For practical use, high motion control performance and ease of design and controller adjustment are desired. A nominal characteristic trajectory following control (NCTF control) has been investigated to realize high performance and ease of application of point-to-point (PTP) positioning. The controller comprising a nominal characteristic trajectory (NCT) and a PI compensator is free from exact modeling and parameter identification. In the present paper, the NCTF control is modified in order to improve the control performance of continuous motions such as tracking and contouring motions. The NCTF controller for continuous motion (referred to as Continuous Motion NCTF controller) has a structure that is almost identical to the conventional NCTF controller and is designed using the same design procedure. The Continuous Motion NCTF controller is applied to ball screw mechanisms, and its motion control performance is evaluated from the experimental tracking, contouring, and positioning control results. The experimental results prove that the Continuous Motion NCTF controller achieves the same positioning performance as the conventional NCTF controller, and generally achieves better continuous motion control performances than PI-D or conventional NCTF controllers. In 0.25 Hz and 100-nm radius circular motion, the experimental tracking errors for Continuous Motion NCTF were smaller than 10 nm.
机译:本文描述了一种用于精密运动系统的实用控制方法及其性能。对于实际应用,需要高运动控制性能以及易于设计和调节的控制器。为了实现高性能并简化点对点(PTP)定位的应用,已经研究了标称特性轨迹跟踪控制(NCTF控制)。包含标称特性轨迹(NCT)和PI补偿器的控制器无需进行精确的建模和参数识别。在本文中,对NCTF控制进行了修改,以提高连续运动(如跟踪运动和轮廓运动)的控制性能。用于连续运动的NCTF控制器(称为连续运动NCTF控制器)的结构与常规NCTF控制器几乎相同,并且使用相同的设计过程进行设计。连续运动NCTF控制器应用于滚珠丝杠机构,并根据实验跟踪,轮廓和定位控制结果评估其运动控制性能。实验结果证明,连续运动NCTF控制器具有与常规NCTF控制器相同的定位性能,并且与PI-D或常规NCTF控制器相比,通常具有更好的连续运动控制性能。在0.25 Hz和100 nm半径的圆周运动中,连续运动NCTF的实验跟踪误差小于10 nm。

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