提高耦合罐系统液位控制的精度和鲁棒性:树籽优化和 μ 分析方法

Achu Govind K.R., Subhasish Mahapatra
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引用次数: 0

摘要

背景:高效控制相互连接的储罐系统中的液位是化学工艺、废水处理和制造业等各行各业面临的一项基本挑战。实现精确控制的传统方法依赖于比例-积分-微分(PID)控制器,其性能在很大程度上取决于调整后的参数。然而,为耦合罐等复杂的非线性系统调整 PID 控制器仍然是一项具有挑战性的任务。近年来,受自然启发的优化算法在控制系统设计中占据了重要地位。树种子优化(TSO)的灵感来自于树种子为寻找最佳生长条件而进行的分散,它在解决复杂的优化问题方面已显示出良好的前景。本研究试图探索 TSO 在调整耦合罐系统 PID 控制器中的应用。方法:本研究采用 TSO 来优化 PID 控制器参数,以增强耦合罐系统中的液位控制。优化过程包括整合性能指标和闭环增益约束,以实现耦合罐系统的最优控制。施加约束的目的是确保系统在面对不确定性和干扰时的鲁棒性和稳定性。此外,μ 分析通过评估系统容忍不确定性的能力来量化系统的鲁棒性。研究结果:本研究中进行的仿真研究验证了所提出的基于 TSO 的方法在耦合油箱系统中调整 PID 控制器的有效性。与各种方法相比,TSO 始终能获得更好的控制性能、缩短稳定时间并最大限度地减少过冲。此外,还对优化控制器的鲁棒性进行了评估,结果表明该方法能够有效处理不同的运行条件。
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Improving precision and robustness in level control of coupled tank systems: A tree seed optimization and μ-analysis approach

Background:

Efficient control of liquid levels in interconnected tank systems is a fundamental challenge in various industries, including chemical processes, wastewater treatment, and manufacturing. The traditional approach to achieving precise control has relied on Proportional–Integral–Derivative (PID) controllers, whose performance largely depends on tuned parameters. However, tuning PID controllers for complex and nonlinear systems like coupled tanks remains a challenging task. In recent years, nature-inspired optimization algorithms have gained prominence in control system design. The tree seed optimization (TSO), inspired by the dispersion of tree seeds in search of optimal growth conditions, has shown promise in solving complex optimization problems. This study seeks to explore the application of TSO in tuning PID controllers for coupled tank systems.

Methodology:

This research employs the TSO to optimize PID controller parameters for enhanced liquid-level control in coupled tank systems. The optimization process involves integrating performance metrics and closed-loop gain constraints to achieve optimal control of coupled tank systems. The imposed constraints aim to ensure robustness and system stability in the face of uncertainties and disturbances. Besides, μ analysis quantifies the robustness of the system by assessing its ability to tolerate uncertainties.

Findings:

Simulation studies conducted in this research verify the efficacy of the proposed TSO-based approach for tuning PID controllers in coupled tank systems. Compared with various methods, the TSO consistently yields better control performance, reduces settling time, and minimizes overshoot. The robustness of the optimized controllers is also evaluated, showing the ability to handle varying operating conditions effectively.

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来源期刊
Results in Control and Optimization
Results in Control and Optimization Mathematics-Control and Optimization
CiteScore
3.00
自引率
0.00%
发文量
51
审稿时长
91 days
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