Fast and precise positioning by sequential adaptive feedforward compensation for disturbance

Kazuaki Ito, Wataru Maebashi, Masafumi Yamamoto, M. Iwasaki, N. Matsui
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引用次数: 5

Abstract

This paper presents a fast and precise positioning of table systems using a sequential adaptive methodology for disturbance. In this research, both nonlinear friction and a modeling error between mathematical model and actual plant system are handled as disturbances in mechanism. It is well-known that disturbance variations deteriorate positioning performance. Viscous friction and a motor thrust constant are taken up a problem as primary factors in disturbance variations, because those parameters are frequently varied for temperature change due to drive conditions, such as before/after warming up motion. In this research, feedforward compensation using a disturbance model is applied. Disturbance model parameters are genetically optimized by GA to simulate actual disturbance characteristics, where faithful disturbance characteristics are obtained using an iterative learning process. A sequential adaptive methodology is tuned the model parameters continuously to achieve robust positioning performance irrespective of temperature change. The proposed approach with the adaptive disturbance model-based feedforward compensation has been verified by experiments using a table system on a machine stand.
通过序列自适应前馈扰动补偿实现快速精确定位
本文提出了一种利用序列自适应扰动方法对工作台系统进行快速精确定位的方法。在本研究中,非线性摩擦和数学模型与实际植物系统之间的建模误差都作为扰动处理。众所周知,扰动变化会降低定位性能。粘滞摩擦和电机推力常数作为扰动变化的主要因素,被认为是一个问题,因为这些参数由于驱动条件(如预热前/后运动)引起的温度变化而频繁变化。在本研究中,采用扰动模型进行前馈补偿。通过遗传算法对扰动模型参数进行遗传优化,模拟实际扰动特性,并通过迭代学习过程获得忠实的扰动特性。采用序列自适应方法对模型参数进行连续调整,使定位性能不受温度变化的影响。基于自适应扰动模型的前馈补偿方法已在机床台架上的实验中得到验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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