A Hybrid Renewable Sources Implementation for a DC Microgrid with Flatness-Nonlinear Control to Achieve Efficient Energy Management Strategy

Authors

  • Furqan A. Abbas Electrical Engineering Technical College, Middle Technical University, Baghdad, Iraq
  • Adel A.Obed Electrical Engineering Technical College, Middle Technical University, Baghdad, Iraq
  • Ammar Alhasiri Istanbul Gelisim University, İstanbul, Turkey
  • Salam J. Yaqoob University of Jaén, Jaén, Spain

DOI:

https://doi.org/10.51173/jt.v5i4.1005

Keywords:

Differential Flatness, Energy Management System (EMS), Energy Storage System, Fuel Cell, Microgrid, Photovoltaic (PV)

Abstract

The significance of energy management using sustainable energy sources and the merits of DC in AC microgrids are due to less complexity, smaller size, and fewer conversion stages. In this paper, we propose a standard-islanded DC microgrid with photovoltaic (PV) and fuel cell (FC) primary sources and a supercapacitor (SC) storage unit. The proposed system provides high-quality energy supplied to the DC load under different levels of solar irradiation and changing loading situations. Taking into account the slow dynamic response of the FC, the SC provides transient periods under various conditions to maintain stability of the system. Because of the nonlinear system's behavior, differential flatness-based control has been applied mainly in nonlinear systems where the number of variables to the outputs is reduced with a robust control system established through inherited parameter reductions and equality constraints due to the system trajectories (x, u) is straightforwardly estimated from flat output trajectories y and their derivatives without any differential equation integration. The PI control is executed when the SC adjusts the DC bus voltage variation. Therefore, the objective is to provide management that ensures stable DC bus voltage and arranges power sharing between variable sources and power balance with a load. Flatness PI has been investigated and has proven effective in offering faster response without overshoot and greater robustness.

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Author Biographies

Furqan A. Abbas, Electrical Engineering Technical College, Middle Technical University, Baghdad, Iraq

      

Adel A.Obed, Electrical Engineering Technical College, Middle Technical University, Baghdad, Iraq

     

Ammar Alhasiri, Istanbul Gelisim University, İstanbul, Turkey

         

Salam J. Yaqoob, University of Jaén, Jaén, Spain

    

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Electrical Model of FC

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Published

2023-12-31

How to Cite

Furqan A. Abbas, Adel A.Obed, Ammar Alhasiri, & Salam J. Yaqoob. (2023). A Hybrid Renewable Sources Implementation for a DC Microgrid with Flatness-Nonlinear Control to Achieve Efficient Energy Management Strategy. Journal of Techniques, 5(4), 16–27. https://doi.org/10.51173/jt.v5i4.1005

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Section

Engineering

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