Artificial Intelligence Based First Order Adaptive Sliding Mode Controller for Position Control of a DC Motor Actuator

Nyong-Bassey Bassey Etim
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Abstract

This paper presents an Artificial Intelligence (AI) based approach uniquely applied to Permanent Magnet DC motor actuator for position control. The AI method employed in this work is Fuzzy logic. A first order  lag Sliding mode controller is tuned and combined with an Adaptive Fuzzy- PI controller architecture which operates in parallel. The controller architecture proposed in this study is aimed at improving the disturbance rejection capability, steady state as well as transient performance of the conventional Adaptive Fuzzy-PI controller and sliding mode controller. Hence, the robust control law of the proposed controller (SM+FZ-PI) consists of a discontinuous Sliding mode output added to a continuous Adaptive Fuzzy-PI controller output. The sliding mode controller switches on only when disturbance in the system is detected. The performance of the proposed controller architecture has been compared with a conventional PID and Adaptive Fuzzy-PI controllers for performance evaluation with respect to several operating conditions such as load torque disturbance injection, noise injection in feedback loop, motor non-linearity exhibited by parameters variation, and a step change in reference input demand. The proposed controller (SM+FZ-PI), had the best disturbance rejection and steady state error elimination.
基于人工智能的一阶自适应滑模控制器在直流电机执行器位置控制中的应用
提出了一种基于人工智能的永磁直流电动机位置控制方法。在这项工作中使用的人工智能方法是模糊逻辑。对一阶滞后滑模控制器进行了调谐,并将其与并行运行的自适应模糊PI控制器结构相结合。本研究提出的控制器结构旨在提高传统的自适应模糊pi控制器和滑模控制器的抗扰能力、稳态和瞬态性能。因此,所提出的控制器(SM+FZ-PI)的鲁棒控制律由一个不连续的滑模输出加上一个连续的自适应模糊pi控制器输出组成。滑模控制器只有在检测到系统扰动时才开启。将所提出的控制器结构的性能与传统PID和自适应Fuzzy-PI控制器进行了比较,以评估几种运行条件的性能,例如负载转矩扰动注入,反馈回路中的噪声注入,参数变化所表现出的电机非线性以及参考输入需求的阶跃变化。该控制器(SM+FZ-PI)具有较好的抗干扰性和稳态误差消除能力。
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