Optimal design of proportional integral derivative acceleration controller for higher-order nonlinear time delay system using m-MBOA technique

被引:5
|
作者
Arulvadivu, J. [1 ]
Manoharan, S. [2 ]
Singh, R. Lal Raja [3 ]
Giriprasad, S. [4 ]
机构
[1] Karpagam Coll Engn, Dept Elect & Instrumentat Engn, Coimbatore, Tamil Nadu, India
[2] JCT Coll Engn & Technol, Dept Elect & Elect Engn, Coimbatore, Tamil Nadu, India
[3] Kalaignar Karunanidhi Inst Technol, Dept Elect & Elect Engn, Kannampalayam, Tamil Nadu, India
[4] Viswam Engn Coll, Dept Elect & Commun Engn, Madanapalli, Andhra Pradesh, India
关键词
and reliability constraints; controller parameters; PIDA controller; time delay system; LOAD FREQUENCY CONTROL; TYPE-2; FUZZY-LOGIC; PID CONTROLLER; AGC;
D O I
10.1002/jnm.3016
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In general, the parameter adjustment is used to design the proportional-integral-derivative (PID) controllers. Despite that, to enhance the capacity of control performance by adjusting parameters is limited. Therefore, in this paper, an optimal design of proportional integral derivative acceleration (PIDA) controller is proposed for higher-order nonlinear time delay system (TDS) using modified butterfly optimization algorithm (MBOA) with the aim of achieving optimal closed-loop response, which is enhanced with mutualism system (m-MBOA). In the proposed approach, the mutualism stage of symbiotic organisms search (SOS) and butterfly optimization algorithm (BOA) global exploration phase is considered. The major aim of the proposed approach is to "tune the gain of the PIDA controller to get the desired response." It reduces the drawback of the PIDA controller in the higher-order TDS using advanced control limits is the individuality of the proposed approach. Here, the proposed approach is employed to reduce the higher-order delays together with reliability limits, like minor overshoots, time resolution, and fixed stage deficiency. To evaluate the proposed PIDA controller, the execution is done by the MATLAB/Simulink platform, also its efficiency is compared with existing approaches. Moreover, the proposed and existing approaches are analyzed with mean, median, and standard deviations. From the analysis, the proposed approach achieves the stability with minimal delay time and reduces the computational complexity. Finally, the simulation results demonstrate that the proposed approach can efficiently with accurately find the optimal global solutions.
引用
收藏
页数:24
相关论文
共 31 条
  • [21] Optimal Fuzzy Proportional-Integral-Derivative Control for a Class of Fourth-Order Nonlinear Systems using Imperialist Competitive Algorithms
    Lakmesari, S. Hadipour
    Safipour, Z.
    Mahmoodabadi, M. J.
    Ibrahim, Yousef
    Mobayen, Saleh
    COMPLEXITY, 2022, 2022
  • [22] Design of a Nonlinear Predictive Controller for a Fractional-Order Hydraulic Turbine Governing System with Mechanical Time Delay
    Tian, Yuqiang
    Wang, Bin
    Chen, Diyi
    Wang, Shaokun
    Chen, Peng
    Yang, Ying
    ENERGIES, 2019, 12 (24)
  • [23] Power quality improvement of grid-connected solar power plant systems using a novel fractional order proportional integral derivative controller technique
    Manoharan, Hariprabhu
    Karuppannan, Sundararaju
    Chandrasekaran, Kumar
    Barua, Sourav
    IET RENEWABLE POWER GENERATION, 2024, 18 (15) : 3268 - 3284
  • [24] Optimal tuning of 3 degree-of-freedom proportional-integral-derivative controller for hybrid distributed power system using dragonfly algorithm
    Guha, Dipayan
    Roy, Provas Kumar
    Banerjee, Subrate
    COMPUTERS & ELECTRICAL ENGINEERING, 2018, 72 : 137 - 153
  • [25] Two-loop controller design and implementations for an inverted pendulum system with optimal self-adaptive fuzzy-proportional-integral-derivative control
    Abut, Tayfun
    Soyguder, Servet
    TRANSACTIONS OF THE INSTITUTE OF MEASUREMENT AND CONTROL, 2022, 44 (02) : 468 - 483
  • [26] Decentralized frequency control of restructured energy system using hybrid intelligent algorithm and non-linear fractional order proportional integral derivative controller
    Irudayaraj, Andrew Xavier Raj
    Wahab, Noor Izzri Abdul
    Veerasamy, Veerapandiyan
    Premkumar, Manoharan
    Radzi, Mohd Amran Mohd
    Sulaiman, Nasri Bin
    Haes Alhelou, Hassan
    IET RENEWABLE POWER GENERATION, 2023, 17 (08) : 2009 - 2037
  • [27] Optimal Fractional-Order Tilted-Integral-Derivative Controller for Frequency Stabilization in Hybrid Power System Using Salp Swarm Algorithm
    Sharma, Mandeep
    Prakash, Surya
    Saxena, Sahaj
    Dhundhara, Sandeep
    ELECTRIC POWER COMPONENTS AND SYSTEMS, 2021, 48 (18) : 1912 - 1931
  • [28] Design of an Online Adaptive Fractional-Order Proportional-Integral-Derivative Controller to Reduce the Seismic Response of the 20-Story Benchmark Building Equipped with an Active Control System
    Jafarzadeh, Ommegolsoum
    Mousavi Ghasemi, Seyyed Arash
    Zahrai, Seyed Mehdi
    Sabetahd, Rasoul
    Mohammadzadeh, Ardashir
    Vafaei Poursorkhabi, Ramin
    INTERNATIONAL JOURNAL OF INTELLIGENT SYSTEMS, 2024, 2024
  • [29] Takagi-Sugeno fractional-order interval type-2 fuzzy proportional-integral-derivative controller with real-time application to a magnetic levitation system
    Sain, Debdoot
    Praharaj, Manoranjan
    Mohan, B. M.
    Yang, Jung-Min
    COMPUTERS & ELECTRICAL ENGINEERING, 2025, 123
  • [30] Load frequency control of a three-area power system based on the optimal tuning of a fractional-order proportional-integral- derivative controller with multi-objective gray wolf optimization
    Ayyappan, B. Prakash
    Thanigaiselvan, R.
    Prabakaran, R.
    Kanimozhi, R.
    JOURNAL OF ENGINEERING RESEARCH, 2023, 11 (2B): : 127 - 137