基于粒子群优化性能控制的气动执行机构最优定位与动态稳定性仿真研究

A. Irawan, M. S. Ramli, M. Sulaiman, M. Azahar, A. H. Adom
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引用次数: 0

摘要

介绍了一种基于粒子群优化的有限时间规定性能控制(FT-PPC)的气动伺服系统定位最优控制策略。气动伺服系统广泛应用于工业自动化,以及涉及机器人应用的医疗和控制论系统。气动控制的精度不仅是为了效率,也是为了安全。提出的控制策略的主要目标是优化FT-PPC的误差变换中规定性能函数的收敛速度和有限时间,并将比例、积分和导数(PID)控制器作为该系统的内环控制器。该研究利用双作用气缸(PPVDC)气动比例阀的动态模型作为目标装置,并使用多步输入轨迹进行仿真。这种离线整定方法对于这种非线性系统的安全优化至关重要,避免了对控制器上的实时微调工作造成重大破坏。结果表明,所提出的控制策略优于单独使用PID控制器的FT-PPC,显著提高了系统的性能,包括抑制响应中的超调和振荡。使用FT-PPC和PID与PSO的微调值通过PPVDC的实际系统进一步验证是未来的任务,并且更具挑战性,因为硬件约束可能会随着不同的环境(如温度)而变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal Pneumatic Actuator Positioning and Dynamic Stability using Prescribed Performance Control with Particle Swarm Optimization: A Simulation Study
This paper introduces an optimal control strategy for pneumatic servo systems (PSS) positioning using Finite-time Prescribed Performance Control (FT-PPC) with Particle Swarm Optimization (PSO). Pneumatic servo systems are widely used in industrial automation, as well as medical and cybernetics systems that involve robotics applications. Precision in pneumatic control is crucial not only for the sake of efficiency but also safety. The primary goal of the proposed control strategy is to optimize the convergence rate and finite time of the prescribed performance function in error transformation of the FT-PPC, as well as the Proportional, Integral and Derivative (PID) controller as the inner-loop controller for this system. The study utilizes a dynamic model of a pneumatic proportional valve with a double-acting cylinder (PPVDC) as the targeted plant and performs simulations with a multi-step input trajectory. This offline tuning method is essential for such nonlinear systems to be safely optimized, avoiding major damage to the real-time fine-tuned works on the controller. The results demonstrate that the proposed control strategy surpasses the performance of FT-PPC with a PID controller alone, significantly improving the system's performance, including suppressing overshoot and oscillation in the responses. Further validation through the actual system of PPVDC using the fine-tuned values of FT-PPC and PID with PSO is a future task and more challenging to come, as hardware constraints may vary with different environments such as temperatures.
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