Data-Driven Photovoltaic System Modeling Based on Nonlinear System Identification

Author:

Alqahtani Ayedh1ORCID,Alsaffar Mohammad2,El-Sayed Mohamed2,Alajmi Bader1

Affiliation:

1. Electrical Engineering Department, Public Authority for Applied Education & Training (PAAET), 42325 Kuwait, Kuwait

2. Electrical Engineering Department, Kuwait University, 42325 Kuwait, Kuwait

Abstract

Solar photovoltaic (PV) energy sources are rapidly gaining potential growth and popularity compared to conventional fossil fuel sources. As the merging of PV systems with existing power sources increases, reliable and accurate PV system identification is essential, to address the highly nonlinear change in PV system dynamic and operational characteristics. This paper deals with the identification of a PV system characteristic with a switch-mode power converter. Measured input-output data are collected from a real PV panel to be used for the identification. The data are divided into estimation and validation sets. The identification methodology is discussed. A Hammerstein-Wiener model is identified and selected due to its suitability to best capture the PV system dynamics, and results and discussion are provided to demonstrate the accuracy of the selected model structure.

Publisher

Hindawi Limited

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment,Atomic and Molecular Physics, and Optics,General Chemistry

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