article · Energy Exploration & Exploitation
The adaptability of the power system needs to be improved due to the significant growth in the share of variable renewable electricity generation. Enhancing the flexibility of low-carbon sources, including nuclear power plants (NPPs), is essential to achieving this goal while reducing CO 2 emissions. Reactivity, a measure of a nuclear reactor's critical state, is a commonly used metric in the nuclear industry. Reactivity can be controlled through a reactor control (RC), which poses a significant challenge in NPPs. This study focuses on designing and implementing an optimized fractional-order proportional-integral-derivative controller (FOPIDC) to support the reactivity of NPPs through RC. The FOPIDC controls the movement of the rod to match the reactor system's reactivity for power regulation during load-following operations. The gains of the FOPIDC are optimized using the arithmetic optimization algorithm (AOA) and particle swarm optimization (PSO) to improve its effectiveness and efficiency. A comparison between AOA and PSO techniques is presented to demonstrate the usefulness and superiority of AOA. Simulation outcomes reveal that AOA-FOPIDC is performing better than PSO-FOPIDC, which is 25% faster in settling time in dynamic conditions with an overshoot reduced by 38%. In addition, the proposed method exhibited better stability and the ability to cope with reactivity perturbations owing to Xenon and Iodine more rapidly. All of these findings indicate that AOA could be a strong potential tuning method for nuclear reactor control systems under flexible grid operations. The MATLAB/SIMULINK software is used for all studied scenarios.
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DOI: 10.1177/01445987251357362
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