Medjili Faycal, Bouguerra Abderrahmen, Ladjal Mohamed, Babes Badreddine, Ali Enas, Ghoneim Sherif S M, Aeggegn Dessalegn Bitew, Sharaf Ahmed B Abou
Department of Electronics, Faculty of Technology, University of M'sila, University Pole, Bordj Bou Arreridj Road, 28000, M'sila, Algeria.
LGE Research Laboratory, Department of Electrical Engineering, Faculty of Technology, University of M'sila, University Pole, Bordj Bou Arreridj Road, 28000, M'sila, Algeria.
Sci Rep. 2025 Mar 4;15(1):7583. doi: 10.1038/s41598-025-91764-9.
Accurate regulation of the liquid level in a quadruple tank system (QTS) is not easy and imposes higher requirements on control strategies, so the design of controllers in these systems is challenging due to the difficulty of dynamic analysis of its nonlinear characteristics and parametric uncertainties. To overcome these problems in liquid level regulation and increase the robustness to the pump coefficients, this article proposes and investigates the use of an optimal hybrid fractional-order type-2 fuzzy-PID (OH-FO-T2F-PID) regulator using a combination of two bio-inspired evolutionary optimizers, namely augmented grey wolf optimizer and cuckoo search optimizer, which gives rise to the new hybrid A-GWOCS algorithm. This control mechanism was chosen to facilitate the convergence of the water liquids in the two tanks as quickly as possible to the corresponding required values. In addition, a collaborative optimization technique with several objectives is used to adjust the regulator parameters. The capability and efficiency of the suggested regulator is first investigated through computer simulation results and then confirmed by real-time control experimental results on the QTS based on dSPACE 1104 computation engine. The findings showed that the suggested OH-FO-T2F-PID regulator significantly outperformed both the optimized ADRC and the OH-FO-T1F-PID regulators. Specifically, it reduced the rising time by 17.02% and 95.21%, respectively, and the settling time by 25.13% and 74.28%. Additionally, the designed OH-FO-T2F-PID regulator successfully eliminated the steady-state error and overshoot, enabling precise regulation of the QTS, and maintenance the liquid level at the desired set point under a wide range of working situations. The robustness of the recommended regulator is also studied by considering - 50% disturbance in the QTS parameters, and the findings showed that the OH-FO-T2F-PID regulator is less susceptible to variations in parameters.
精确调节四容水箱系统(QTS)中的液位并非易事,对控制策略提出了更高要求。因此,由于其非线性特性的动态分析困难和参数不确定性,这些系统中的控制器设计具有挑战性。为了克服液位调节中的这些问题并提高对泵系数的鲁棒性,本文提出并研究了一种最优混合分数阶二型模糊-PID(OH-FO-T2F-PID)调节器,该调节器使用了两种受生物启发的进化优化器,即增强型灰狼优化器和布谷鸟搜索优化器相结合,从而产生了新的混合A-GWOCS算法。选择这种控制机制是为了使两个水箱中的水位尽快收敛到相应的所需值。此外,采用具有多个目标的协同优化技术来调整调节器参数。首先通过计算机仿真结果研究了所提出调节器的性能和效率,然后通过基于dSPACE 1104计算引擎的QTS实时控制实验结果进行了验证。结果表明,所提出的OH-FO-T2F-PID调节器明显优于优化后的自抗扰控制器(ADRC)和OH-FO-T1F-PID调节器。具体而言,它分别将上升时间减少了17.02%和95.21%,将调节时间减少了25.13%和74.28%。此外,所设计的OH-FO-T2F-PID调节器成功消除了稳态误差和超调量,能够对QTS进行精确调节,并在广泛的工作条件下将液位维持在所需的设定点。还通过考虑QTS参数-50%的扰动研究了推荐调节器的鲁棒性,结果表明OH-FO-T2F-PID调节器对参数变化的敏感性较低。