Optimizing Load Frequency Control in Standalone Marine Microgrids Using Meta-Heuristic Techniques

Author:

Alahakoon Sanath1ORCID,Roy Rajib Baran1,Arachchillage Shantha Jayasinghe23

Affiliation:

1. School of Engineering and Technology, Central Queensland University, Rockhampton 4701, Australia

2. Australian Energy Market Operator, Melbourne 3000, Australia

3. Australian Maritime College, University of Tasmania, Launceston 7250, Australia

Abstract

Integrating renewable resources into the electrical systems of marine vessels achieves the dual goal of diversifying energy resources and reducing greenhouse gas emissions. The presence of intermittent renewable sources and sudden nonlinear load changes can cause frequency deviations in isolated hybrid marine microgrids. To address this issue, the paper proposes a conventional PID (proportional–integral–derivative)-controller-based LFC (load frequency controller) which is optimized by meta-heuristic optimization algorithms, namely, PSO (particle swarm optimization), GWO (grey wolf optimization) and hybrid PSO-GWO. The proposed LFC was designed using transfer functions of various microgrid components, with ITAE (integral time absolute error) and ITSE (integral time square error) serving as performance indices. The proposed LFC’s validation was performed through HIL (hardware-in-loop) real-time simulation using a DS 1104 R&D controller board, with simulation results showing the better performance of the optimized frequency response compared to the nonoptimized LFC controller in terms of rise time, fall time, slew rate and overshoot. The hybrid PSO-GWO algorithm performs better than the other optimization algorithms. The simulation results demonstrate the stability and robustness of the proposed controller. In summary, the proposed PID-controller-based LFC can regulate frequency deviation in standalone hybrid marine microgrids effectively.

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction

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1. Design of Sliding Mode Controller for Load Frequency Control Using Particle Swarm and Grey Wolf Algorithms;2023 12th International Conference on Renewable Energy Research and Applications (ICRERA);2023-08-29

2. Hierarchical Control and Economic Optimization of Microgrids Considering the Randomness of Power Generation and Load Demand;Energies;2023-07-20

3. PSO Tuned Marine Microgrid Load Frequency Control;2023 3rd International Conference on Electrical, Computer, Communications and Mechatronics Engineering (ICECCME);2023-07-19

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