An Elite LOA-TFWO Approach for Load-Frequency Control of Islanded Micro-Grids Incorporating Renewable Sources
An Elite LOA-TFWO Approach for Load-Frequency Control of Islanded Micro-Grids Incorporating Renewable Sources |
||
|
||
© 2022 by IJETT Journal | ||
Volume-70 Issue-10 |
||
Year of Publication : 2022 | ||
Authors : V. Devaraj, M. Kumaresan |
||
DOI : 10.14445/22315381/IJETT-V70I10P217 |
How to Cite?
V. Devaraj, M. Kumaresan, "An Elite LOA-TFWO Approach for Load-Frequency Control of Islanded Micro-Grids Incorporating Renewable Sources," International Journal of Engineering Trends and Technology, vol. 70, no. 10, pp. 166-187, 2022. Crossref, https://doi.org/10.14445/22315381/IJETT-V70I10P217
Abstract
In this paper proposes an intelligent hybrid approach for load-frequency control (LFC) in the islanded micro-grids
incorporating various resources like Photovoltaic (PV), Wind Turbine (WT), fuel Cell (FC), Diesel Engine Generator (DEG)
and Battery Energy Storage System (BESS). The proposed hybrid approach is the combined implementation of the Lichtenberg
Optimization Algorithm (LOA) and Turbulent Flow of Water-based Optimization (TFWO); hence it is named as LOA-TFWO
approach. The major objective of the proposed approach is minimizing the change of frequency and maintaining the system's
stability. The PID controller is utilized to tune the parameter of the system. With the finite time, the proposed LOA approach
generates the data set and the TFWO approach process the outcome of LOA and provides optimal outcome. The proposed
approach is executed in the MATLAB/Simulink working platform, and the performances are compared with various existing
approaches. Maximum overshoot, steady state error, maximum settling time, integral of frequency error’s absolute value in
the simulation period, and the objective function is analyzed and compared in the paper. The comparison results reveal that
the proposed technique is optimal over the other techniques.
Keywords
Load-frequency control, PID controller, Change of frequency, Stability, Lichtenberg optimization algorithm, Turbulent flow of water-based optimization.
Reference
[1] Z. Yan and Y. Xu, "A Multi-Agent Deep Reinforcement Learning Method for Cooperative Load Frequency Control of a Multi-Area
Power System,” IEEE Transactions on Power Systems, vol.35, no.6, pp.4599-4608, 2020.
[2] M. Ma, C. Zhang, X. Liu and H. Chen, "Distributed Model Predictive Load Frequency Control of the Multi-Area Power System After
Deregulation,” IEEE Transactions on Industrial Electronics, vol.64, no.6, pp.5129-5139, 2017.
[3] L. Cai, Z. He and H. Hu, "A New Load Frequency Control Method of Multi-Area Power System Via the Viewpoints of PortHamiltonian System and Cascade System,” IEEE Transactions on Power Systems, vol.32, no.3, pp.1689-1700, 2017.
[4] E. Sahin, "Design of an Optimized Fractional High Order Differential Feedback Controller for Load Frequency Control of a MultiArea Multi-Source Power System with Non-Linearity,” IEEE Access, vol.8, pp.12327-12342, 2020.
[5] H. Li, X. Wang and J. Xiao, "Adaptive Event-Triggered Load Frequency Control for Interconnected Microgrids By Observer-Based
Sliding Mode Control,” IEEE Access, vol.7, pp.68271-68280, 2019.
[6] X. Lv, Y. Sun, Y. Wang and V. Dinavahi, "Adaptive Event-Triggered Load Frequency Control of Multi-Area Power Systems Under
Networked Environment Via Sliding Mode Control,” IEEE Access, vol.8, pp.86585-86594, 2020.
[7] S. Hanwate, Y. Hote and S. Saxena, "Adaptive Policy for Load Frequency Control,” IEEE Transactions on Power Systems, vol.33,
no.1, pp.1142-1144, 2018.
[8] V. Singh, N. Kishor and P. Samuel, "Distributed Multi-Agent System-Based Load Frequency Control for Multi-Area Power System In
Smart Grid,” IEEE Transactions on Industrial Electronics, vol.64, no.6, pp.5151-5160, 2017.
[9] X. Zhou, Z. Gu and F. Yang, "Resilient Event-Triggered Output Feedback Control for Load Frequency Control Systems Subject To
Cyber Attacks,” IEEE Access, vol.7, pp.58951-58958, 2019.
[10] P. Babahajiani, Q. Shafiee and H. Bevrani, "Intelligent Demand Response Contribution in Frequency Control of Multi-Area Power
Systems,” IEEE Transactions on Smart Grid, vol.9, no.2, pp.1282-1291, 2018.
[11] G. Chen, Z. Li, Z. Zhang and S. Li, "An Improved Aco Algorithm Optimized Fuzzy Pid Controller for Load Frequency Control In
Multi Area Interconnected Power Systems,” IEEE Access, vol.8, pp.6429-6447, 2020.
[12] C. Peng, J. Li and M. Fei, "Resilient Event-Triggering $H_{\Infty }$ Load Frequency Control for Multi-Area Power Systems with
Energy-Limited Dos Attacks,” IEEE Transactions on Power Systems, vol.32, no.5, pp.4110-4118, 2017.
[13] Y. Zhang and T. Yang, "Decentralized Switching Control Strategy for Load Frequency Control In Multi-Area Power Systems with
Time Delay and Packet Losses,” IEEE Access, vol.8, pp.15838-15850, 2020.
[14] P. Ojaghi and M. Rahmani, "Lmi-Based Robust Predictive Load Frequency Control for Power Systems with Communication Delays,”
IEEE Transactions on Power Systems, vol.32, no.5, pp.4091-4100, 2017.
[15] Z. Li, X. Li and B. Cui, "Planar Clouds Based Load Frequency Control in Interconnected Power System with Renewable Energy,”
IEEE Access, vol.6, pp.36459-36468, 2018.
[16] L. Jin, C. Zhang, Y. He, L. Jiang and M. Wu, “Delay-Dependent Stability Analysis of Multi-Area Load Frequency Control with
Enhanced Accuracy and Computation Efficiency,” IEEE Transactions on Power Systems, vol.34, no.5, pp.3687-3696, 2019.
[17] F. Yang, J. He and Q. Pan, “Further Improvement on Delay-Dependent Load Frequency Control of Power Systems Via Truncated B–L
Inequality,” IEEE Transactions on Power Systems, vol.33, no.5, pp.5062-5071, 2018.
[18] Y. Zhang, X. Liu and B. Qu, "Distributed Model Predictive Load Frequency Control of Multi-Area Power System with Dfigs,”
IEEE/Caa Journal of Automaticasinica, vol.4, no.1, pp.125-135, 2017.
[19] Y. Wu, Z. Wei, J. Weng, X. Li and R. Deng, "Resonance Attacks on Load Frequency Control of Smart Grids,” IEEE Transactions on
Smart Grid, vol.9, no.5, pp.4490-4502, 2018.
[20] Y. Bao, Y. Li, B. Wang, M. Hu and P. Chen, "Demand Response for Frequency Control of Multi-Area Power System,” Journal of
Modern Power Systems and Clean Energy, vol.5, no.1, pp.20-29, 2017.
[21] K. Lu, W. Zhou, G. Zeng and Y. Zheng, "Constrained Population Extremal Optimization-Based Robust Load Frequency Control of
Multi-Area Interconnected Power System,” International Journal of Electrical Power & Energy Systems, vol.105, pp.249-271, 2019
[22] H. Hasanien and A. El-Fergany, "Salp Swarm Algorithm-Based Optimal Load Frequency Control of Hybrid Renewable Power
Systems with Communication Delay and Excitation Cross-Coupling Effect,” Electric Power Systems Research, vol.176, pp.105938,
2019.
[23] H. Hasanien and A. El-Fergany, "Salp Swarm Algorithm-Based Optimal Load Frequency Control of Hybrid Renewable Power
Systems with Communication Delay and Excitation Cross-Coupling Effect,” Electric Power Systems Research, vol.176, pp.105938,
2019.
[24] B. Sonker, D. Kumar and P. Samuel, "Dual Loop Imc Structure for Load Frequency Control Issue of Multi-Area Multi-Sources Power
Systems,” International Journal of Electrical Power & Energy Systems, vol.112, pp.476-494, 2019.
[25] P. Sahu, S. Mishra, R. Prusty and S. Panda, "Improved-Salp Swarm Optimized Type-Ii Fuzzy Controller In Load Frequency Control of
Multi Area Islanded Ac Microgrid,” Sustainable Energy, Grids and Networks, vol.16, pp.380-392, 2018.
[26] A. Abazari, H. Monsef and B. Wu, "Coordination Strategies of Distributed Energy Resources Including Fess, Deg, Fc and Wtg In
Load Frequency Control (Lfc) Scheme of Hybrid Isolated Micro-Grid,” International Journal of Electrical Power & Energy Systems,
vol.109, pp.535-547, 2019.
[27] Y. Sun, Y. Wang, Z. Wei, G. Sun and X. Wu, "Robust H∞ Load Frequency Control of Multi-Area Power System with Time Delay: A
Sliding Mode Control Approach,” IEEE/Caa Journal of Automaticasinica, vol.5, no.2, pp.610-617, 2018
[28] M. Khooban, T. Niknam, F. Blaabjerg and T. Dragičević, "A New Load Frequency Control Strategy for Micro-Grids with Considering
Electrical Vehicles,” Electric Power Systems Research, vol.143, pp.585-598, 2017.
[29] K. Rajesh and S. Dash, "Load Frequency Control of Autonomous Power System Using Adaptive Fuzzy Based Pid Controller
Optimized on Improved Sine Cosine Algorithm,” Journal of Ambient Intelligence and Humanized Computing, vol.10, no.6, pp.2361-
2373, 2018.
[30] M. Chen, G. Zeng and X. Xie, "Population Extremal Optimization-Based Extended Distributed Model Predictive Load Frequency
Control of Multi-Area Interconnected Power Systems,” Journal of the Franklin Institute, vol.355, no.17, pp.8266-8295, 2018.
[31] A. Dabiri, B. Moghaddam and J. Machado, "Optimal Variable-Order Fractional Pid Controllers for Dynamical Systems,” Journal of
Computational and Applied Mathematics, vol.339, pp.40-48, 2018
[32] D. Li, L. Liu, Q. Jin and K. Hirasawa, "Maximum Sensitivity Based Fractional Imc–Pid Controller Design for Non-Integer Order
System with Time Delay,” Journal of Process Control, vol.31, pp.17-29, 2015.
[33] L. Liu, F. Pan and D. Xue, "Variable-Order Fuzzy Fractional Pid Controller,” Isa Transactions, vol.55, pp.227-233, 2015.
[34] G. Zeng, J. Chen, Y. Dai, L. Li, C. Zheng and M. Chen, "Design of Fractional Order Pid Controller for Automatic Regulator Voltage
System Based on Multi-Objective Extremal Optimization,” Neurocomputing, vol.160, pp.173-184, 2015.
[35] M. Khosraviani, M. Jahanshahi, M. Farahani and A. Bidaki, "Load–Frequency Control Using Multi-Objective Genetic Algorithm and
Hybrid Sliding Mode Control-Based Smes,” International Journal of Fuzzy Systems, vol.20, no.1, pp.280-294, 2017.
[36] G. Nguyen, K. Jagatheesan, A. Ashour, B. Anand and N. Dey, "Ant Colony Optimization Based Load Frequency Control of MultiArea Interconnected Thermal Power System with Governor Dead-Band Nonlinearity,” Lecture Notes In Networks and Systems,
pp.157-167, 2017.
[37] C. Peng, J. Zhang and H. Yan, "Adaptive Event-Triggering ${H}_{\Infty }$ Load Frequency Control for Network-Based Power
Systems,” IEEE Transactions on Industrial Electronics, vol.65, no.2, pp.1685-1694, 2018
[38] J. Mudi, C. Shiva and V. Mukherjee, "Multi-Verse Optimization Algorithm for Lfc of Power System with Imposed Non-Linearities
Using Three-Degree-of-Freedom Pid Controller,” Iranian Journal of Science and Technology, Transactions of Electrical Engineering,
vol.43, no.4, pp.837-856, 2019.
[39] C. Mu, Y. Tang and H. He, "Improved Sliding Mode Design for Load Frequency Control of Power System Integrated an Adaptive
Learning Strategy,” IEEE Transactions on Industrial Electronics, vol.64, no.8, pp.6742-6751, 2017.
[40] P. Ojaghi and M. Rahmani, "Lmi-Based Robust Predictive Load Frequency Control for Power Systems with Communication
Delays,” IEEE Transactions on Power Systems, vol.32, no.5, pp.4091-4100, 2017.
[41] M. Mohamed, A. Diab, H. Rezk and T. Jin, "A Novel Adaptive Model Predictive Controller for Load Frequency Control of Power
Systems Integrated with Dfig Wind Turbines,” Neural Computing and Applications, vol.32, no.11, pp.7171-7181, 2019.
[42] G. Shankar and V. Mukherjee, "Quasi Oppositional Harmony Search Algorithm Based Controller Tuning for Load Frequency Control
of Multi-Source Multi-Area Power System,” International Journal of Electrical Power & Energy Systems, vol.75, pp.289-302, 2016.
[43] J. Pereira, M. Francisco, S. Cunha Jr. and G. Gomes, "A Powerful Lichtenberg Optimization Algorithm: A Damage Identification Case
Study,” Engineering Applications of Artificial Intelligence, vol.97, pp.104055, 2021.
[44] M. Ghasemi, I. Davoudkhani, E. Akbari, A. Rahimnejad, S. Ghavidel and L. Li, "A Novel and Effective Optimization Algorithm for
Global Optimization and Its Engineering Applications: Turbulent Flow of Water-Based Optimization (Tfwo),” Engineering
Applications of Artificial Intelligence, vol.92, pp.103666, 2020.
[45] A. Bagheri, A. Jabbari and S. Mobayen, "An Intelligent Abc-Based Terminal Sliding Mode Controller for Load-Frequency Control of
Islanded Micro-Grids,” Sustainable Cities and Society, vol.64, pp.102544, 2021.
[46] Dr. S. Deepa, Lavanya Dhanesh, P.Elangovan, “Optimal Fuzzy Controller for Power Quality Improvement of Dynamic Voltage
Restorer Using Bacterial Foraging Algorithm,” International Journal of Advanced Science and Technology, vol.28, no.19, pp.10-15 ,
2019.
[47] Dr.S.Deepa ,“A Fuzzy Ga Based Statcom for Power Quality Improvement,” International Journal of Power Electronics and Drives,
vol.8, no.1, pp.483-491, 2017.