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首页> 外文期刊>Computational intelligence and neuroscience >A New Hybrid BFOA-PSO Optimization Technique for Decoupling and Robust Control of Two-Coupled Distillation Column Process
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A New Hybrid BFOA-PSO Optimization Technique for Decoupling and Robust Control of Two-Coupled Distillation Column Process

机译:双耦合蒸馏塔工艺去耦和鲁棒控制的新型混合BFOA-PSO优化技术

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摘要

The two-coupled distillation column process is a physically complicated system in many aspects. Specifically, the nested interrelationship between system inputs and outputs constitutes one of the significant challenges in system control design. Mostly, such a process is to be decoupled into several input/output pairings (loops), so that a single controller can be assigned for each loop. In the frame of this research, the Brain Emotional Learning Based Intelligent Controller (BELBIC) forms the control structure for each decoupled loop. The paper’s main objective is to develop a parameterization technique for decoupling and control schemes, which ensures robust control behavior. In this regard, the novel optimization technique Bacterial Swarm Optimization (BSO) is utilized for the minimization of summation of the integral time-weighted squared errors (ITSEs) for all control loops. This optimization technique constitutes a hybrid between two techniques, which are the Particle Swarm and Bacterial Foraging algorithms. According to the simulation results, this hybridized technique ensures low mathematical burdens and high decoupling and control accuracy. Moreover, the behavior analysis of the proposed BELBIC shows a remarkable improvement in the time domain behavior and robustness over the conventional PID controller.
机译:双耦合蒸馏塔工艺在许多方面是物理复杂的系统。具体而言,系统输入和输出之间的嵌套相互关系构成系统控制设计中的重大挑战之一。大多数情况下,这样的过程是将若干输入/输出配对(循环)分离,从而可以为每个循环分配单个控制器。在本研究的框架中,基于大脑情感学习的智能控制器(BELBIC)为每个解耦循环形成控制结构。本文的主要目标是开发解耦和控制方案的参数化技术,可确保鲁棒控制行为。在这方面,新颖的优化技术细菌群优化(BSO)用于最小化所有控制环路的积分时间加权平方误差(ITSES)的总和。该优化技术构成了两种技术之间的杂交,这是粒子群和细菌觅食算法。根据仿真结果,这种杂交的技术确保了低数学负担和高耦合和控制精度。此外,所提出的Belbic的行为分析显示了传统PID控制器上时域行为和鲁棒性的显着改进。

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