Neural Network Energy Management-Based Nonlinear Control of a DC Micro-Grid with Integrating Renewable Energies

Author:

Jouili Khalil1ORCID,Jouili Mabrouk2,Mohammad Alsharef3,Babqi Abdulrahman J.3,Belhadj Walid4ORCID

Affiliation:

1. Laboratory of Advanced Systems, Polytechnic School of Tunisia (EPT), B.P. 743, Marsa 2078, Tunisia

2. ETIS, CNRS UMR 8051, CY Cergy Paris University, ENSEA, 6 Avenue du Ponceau, 95014 Cergy, France

3. Department of Electrical Engineering, College of Engineering, Taif University, Taif 21944, Saudi Arabia

4. Physics Department, Faculty of Science, Umm AL-Qura University, P.O. Box 715, Makkah 24382, Saudi Arabia

Abstract

The broad acceptance of sustainable and renewable energy sources as a means of integrating them into electrical power networks is essential to promote sustainable development. Microgrids using direct currents (DCs) are becoming more and more popular because of their great energy efficiency and straightforward design. In this work, we discuss the control of a PV-based renewable energy system and a battery- and supercapacitor-based energy storage system in a DC microgrid. We describe a hierarchical control approach based on sliding-mode controllers and the Lyapunov stability theory. To balance the load and generation, a fuzzy logic-based energy management system has been created. Using a neural network, maximum power defects for the PV system were determined. The global asymptotic stability of the framework has been verified using Lyapunov stability analysis. In order to simulate the proposed DC microgrid and controllers, MATLAB/SimulinkR (2019a) was utilized. The outcomes show that the system operates effectively with changing production and consumption.

Funder

Taif University

Publisher

MDPI AG

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