Development of Slime Mold Optimizer with Application for Tuning Cascaded PD-PI Controller to Enhance Frequency Stability in Power Systems

Author:

Abid Slim12,El-Rifaie Ali M.3ORCID,Elshahed Mostafa45ORCID,Ginidi Ahmed R.6ORCID,Shaheen Abdullah M.6ORCID,Moustafa Ghareeb17ORCID,Tolba Mohamed A.89ORCID

Affiliation:

1. Electrical Engineering Department, Jazan University, Jazan 45142, Saudi Arabia

2. Ecole Nationale d’Ingénieurs de Sfax, ENIS, Sfax 3038, Tunisia

3. College of Engineering and Technology, American University of the Middle East, Egaila 54200, Kuwait

4. Electrical Engineering Department, Engineering and Information Technology College, Buraydah Private Colleges, Buraydah 51418, Saudi Arabia

5. Electrical Power Engineering Department, Faculty of Engineering, Cairo University, Giza 12613, Egypt

6. Department of Electrical Power Engineering, Faculty of Engineering, Suez University, Suez 43533, Egypt

7. Electrical Engineering Department, Suez Canal University, Ismailia 41522, Egypt

8. Reactors Department, Nuclear Research Center, Egyptian Atomic Energy Authority, Cairo 11787, Egypt

9. Electrical Power Systems Department, National Research University “MPEI”, 111250 Moscow, Russia

Abstract

Multi-area power systems (MAPSs) are highly complex non-linear systems facing a fundamental issue in real-world engineering problems called frequency stability problems (FSP). This paper develops an enhanced slime mold optimization algorithm (ESMOA) to optimize the tuning parameters for a cascaded proportional derivative-proportional integral (PD-PI) controller. The novel ESMOA proposal includes a new system that combines basic SMO, chaotic dynamics, and an elite group. The motion update incorporates the chaotic technique, and the exploitation procedure is enhanced by searching for a select group rather than merely the best solution overall. The proposed cascaded PD-PI controller based on the ESMOA is employed for solving the FSP in MAPSs with two area non-reheat thermal systems to keep the balance between the electrical power load and the generation and provide power system security, reliability, and quality. The proposed cascaded PD-PI controller based on the ESMOA is evaluated using time domain simulation to minimize the integral time-multiplied absolute error (ITAE). It is evaluated in four different test situations with various sets of perturbations. For tuning the cascaded PD-PI controller, the proposed ESMOA is compared to the golden search optimizer (GSO) and circle optimizer (CO), where the proposed ESMOA provides the best performance. Furthermore, the findings of the proposed cascaded PD-PI controller based on the ESMOA outperform previous published PID and PI controllers adjusted using numerous contemporary techniques.

Publisher

MDPI AG

Subject

General Mathematics,Engineering (miscellaneous),Computer Science (miscellaneous)

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