Design and experimental implementation of voltage control scheme using the coefficient diagram method based PID controller for two-level boost converter with photovoltaic system
Introduction.Currently, in the solar energy systems and a variety of electrical applications, the power converters are essential part. The main challenge for similar systems is controller design. In the literature, the PID controller has proved its effectiveness in many industrial applications, but...
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Veröffentlicht in: | Electronics and electromechanics 2024-01, Vol.2024 (1), p.3-9 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Introduction.Currently, in the solar energy systems and a variety of electrical applications, the power converters are essential part. The main challenge for similar systems is controller design. In the literature, the PID controller has proved its effectiveness in many industrial applications, but determining its parameters remains one of the challenges in control theory field. Thenoveltyof the work resides in the design and experimental implementation of a two-level boost DC-DC converter controlled by a PID controller for photovoltaic (PV) maximum power extraction. Purpose.Analysis and control of the two-level boost topology with renewable energy source and design of the PID controller parameters using simple and accurate method.Methods.PID coefficients are optimized using Coefficient Diagram Method (CDM) in the MATLAB environment.Results.A mathematical model of a two-level boost converter with PID controller and PV energy source was developed and analyzed. The model allows to design the controller parameters of the proposed system.Practical value. A prototype steered by the proposed CDM-PID controller was tested using an Arduino embedded board. A comparison between the simulation results and the experimental one is presented. The obtained results illustrate that the experimental results match the simulation closely, and the proposed CDM-PID controller provides a fast and precise results. |
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ISSN: | 2074-272X 2309-3404 |
DOI: | 10.20998/2074-272X.2024.1.01 |