Intelligent system for control of a stepping motor drive using a hybrid neuro-fuzzy approach

P. Melin, O. Castillo
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引用次数: 6

Abstract

Stepping motors are widely used in robotics and in the numerical control of machine tools where they have to perform high-precision positioning operations. However, the variations of the mechanical configuration of the drive, which are common to these two applications, can lead to a loss of synchronism for high stepping rates. Moreover, the classical open-loop speed control is weak and a closed-loop control becomes necessary. In this paper, fuzzy logic is applied to control the speed of a stepping motor drive with feedback. A neuro-fuzzy hybrid approach is used to design the fuzzy rule base of the intelligent system for control. In particular, the authors used the ANFIS methodology to build a Sugeno fuzzy model for controlling the stepping motor drive. An advanced test bed is used in order to evaluate the tracking properties and the robustness capacities of the fuzzy logic controller.
用神经模糊混合方法控制步进电机驱动的智能系统
步进电机广泛应用于机器人和机床数控中,需要进行高精度的定位操作。然而,驱动器的机械配置的变化,这是常见的这两个应用程序,可以导致高步进率的同步损失。此外,传统的开环速度控制较弱,需要进行闭环控制。本文将模糊逻辑应用于带反馈的步进电机驱动器速度控制。采用神经-模糊混合方法设计智能控制系统的模糊规则库。特别地,作者使用ANFIS方法建立了用于控制步进电机驱动的Sugeno模糊模型。为了评估模糊控制器的跟踪性能和鲁棒性,采用了先进的测试平台。
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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