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Published on: February 14, 2025
Optimized cascaded regulation strategy for robust automatic generation control in renewable-integrated power networks
Kareem M AboRas1, Mohammed Hassan El-Banna2, Ahmed M El-Wakil2
1Department of Electrical Power and Machines, Faculty of Engineering, Alexandria University, Alexandria, 21544, Egypt. kareem.aboras@alexu.edu.eg.
This study introduces a novel cascaded controller for linked power networks (LPNs) to enhance voltage and frequency stability. The proposed FOPI-TIDμ-PIDA controller, optimized by the Differential Creative Search (DCS) algorithm, significantly improves regulation performance and robustness in hybrid grids.
Area of Science:
- Electrical Engineering
- Control Systems Engineering
- Renewable Energy Systems
Background:
- Linked Power Networks (LPNs) face challenges in maintaining voltage and frequency stability due to nonlinear dynamics and load variations.
- High penetration of intermittent renewable energy sources complicates traditional Load Frequency Control (LFC) and Automatic Voltage Regulation (AVR) schemes.
- Modern multi-area hybrid grids require advanced control strategies for fast, robust, and coordinated regulation.
Purpose of the Study:
- To develop and evaluate a novel cascaded control architecture for LFC and AVR in a three-area hybrid LPN.
- To enhance the transient response, robustness, and steady-state accuracy of voltage and frequency regulation.
- To optimize controller parameters using the Differential Creative Search (DCS) algorithm.
Main Methods:
- A cascaded control framework integrating FOPI, TIDμ, and PIDA regulators was designed for LFC and AVR.
- Controller parameters were optimized using the Differential Creative Search (DCS) algorithm.
- Simulations were conducted in MATLAB/Simulink and results compared against Artificial Ecosystem-based Optimization (AEO), Dandelion Optimizer (DO), and Runge-Kutta Optimization (RUN) algorithms, as well as other advanced controllers.
Main Results:
- The DCS algorithm achieved a superior objective function value of 0.0507, outperforming AEO, DO, and RUN.
- The proposed FOPI-TIDμ-PIDA controller demonstrated significant improvements over FOPI-PI, TFOIDFF, and FOPI-PIDD2 controllers.
- The controller achieved reduced overshoot (<0.12 Hz), faster settling times (<9.4 s), and enhanced regulation under parameter variations (±25%).
Conclusions:
- The proposed FOPI-TIDμ-PIDA controller offers superior performance in terms of stability, robustness, and adaptability for hybrid LPNs.
- The DCS optimization algorithm effectively tunes controller parameters for optimal performance.
- The developed control strategy enhances the stability and resilience of sustainable hybrid linked power networks.
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