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Minimum ISE Fractional-order PID (FOPID) Controller for Ball and Beam Mechanism

机译:球杆机构的最小ISE分数阶PID(FOPID)控制器

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In this paper, fractional-order PID controller (FOPID) for ball and beam is being considered. Ball and beam system is one of the control engineering prototypes used to illustrate balancing mechanism of dynamical systems. The challenge in this system is to make the ball to stay on a beam at a desired position while it is naturally unstable during open-loop. This paper demonstrates the results obtained for this application using fractional-order PID (FOPID). FOPID is an improvement of PID controller with more degree of freedom. This paper also presents the effect of different fractional-orders on the closed-loop response. For comparison, FOPID controller that was tuned using FOMCON toolbox integrated in MATLAB software was also presented. The results also demonstrated the comparison between FOPID and PID controller to see the improvement gains from FOPID controller. In overall, FOPID can reduce overshoot in the output response significantly and improved the response speed if the gains are optimally tuned. This research also presented the optimal FOPID gain that was obtained through minimum ISE of output response which is better compared to the one tuned using FOMCON.
机译:在本文中,正在考虑球和梁的分数阶PID控制器(FOPID)。球与梁系统是用于说明动力系统平衡机制的控制工程原型之一。该系统中的挑战是使球保持在横梁上的期望位置,同时使球在开环过程中自然不稳定。本文演示了使用分数阶PID(FOPID)针对该应用程序获得的结果。 FOPID是PID控制器的改进,具有更大的自由度。本文还介绍了不同分数阶对闭环响应的影响。为了进行比较,还介绍了使用集成在MATLAB软件中的FOMCON工具箱进行调整的FOPID控制器。结果还证明了FOPID和PID控制器之间的比较,以查看FOPID控制器的改进收益。总体而言,如果对增益进行了优化,FOPID可以显着减少输出响应中的过冲并提高响应速度。这项研究还提出了通过最小ISE输出响应获得的最佳FOPID增益,该增益比使用FOMCON调谐的增益要好。

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