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  4. Multi-Objective Optimization Algorithms for Energy Management System in Microgrids Including Control Strategy
 
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2025
Conference Paper
Title

Multi-Objective Optimization Algorithms for Energy Management System in Microgrids Including Control Strategy

Abstract
This paper focuses on multi-objective optimization methods to address control strategies in microgrid systems. We introduce an unique problem formulation capable of processing real-time data and propose a new methodology that integrates multiple energy management constraints within a multi-objective optimization framework. Additionally, we propose a set of objective functions tailored for this optimization approach. The goal of this paper is to implement several multi-objective optimization algorithms within this strategy and use a dataset to evaluate them. This approach is applied to optimize microgrid design based on energy requirements, while conducting optimal sizing analysis accompanied by sensitivity analysis. An Energy Management System has been developed with technical functionalities that incorporate various constraints. Our findings demonstrate that the NSGA-II algorithm delivers highly promising results, achieving significant reductions in energy costs and total net present value, while maximizing energy production from sustainable sources.
Author(s)
Islam, Saiful
Otto-von-Guericke-Universität Magdeburg  
Mostaghim, Sanaz
Fraunhofer-Institut für Verkehrs- und Infrastruktursysteme IVI  
Hartmann, Michael
SRH University
Mainwork
IEEE Symposia on Computational Intelligence for Energy, Transport and Environmental Sustainability, CIETES Companion 2025  
Conference
Symposia on Computational Intelligence for Energy, Transport and Environmental Sustainability 2025  
DOI
10.1109/CIETESCompanion65203.2025.11003308
Language
English
Fraunhofer-Institut für Verkehrs- und Infrastruktursysteme IVI  
Keyword(s)
  • renewable energy

  • multi-objective optimization

  • microgrid

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