Analyses of Po-Based Fuzzy Logic-Controlled Mppt and Incremental Conductance Mppt Algorithms in Pv Systems

relationships.isProjectOf

relationships.isJournalIssueOf

Abstract

This manuscript aims to increase the utilization of solar energy, which is both environmentally friendly and easily accessible, to satisfy the energy needs of developing countries. In order to achieve this goal, maximum power generation should be provided from photovoltaic panels. Several maximum power point tracking (MPPT) methods are utilized for maximum power generation in photovoltaic panel systems under different weather conditions. In this paper, a novel intelligent hybrid fuzzy logic-controlled maximum power point tracking algorithm founded on the perturb and observe (PO) algorithm is presented. The proposed fuzzy logic controller algorithm and the incremental conductivity maximum power point tracking algorithm were simulated in a MATLAB(2018b version)/Simulink environment and evaluated by comparing the results. Four Sharp ND-F4Q295 solar panels, two in series and two in parallel, were used for the simulation. In this study, the voltage ripple of the proposed hybrid method was measured at 1% compared to the classical incremental conductivity method, while it was 8.6% in the IncCon method. Similarly, the current ripple was 1.08% in the proposed hybrid FLC method, while the current ripple was 9.27% in the IncCon method. It is observed that the proposed smart method stabilizes the system voltage faster, at 25 ms, in the event of sudden weather changes.

Description

CAKMAK, Fevzi/0000-0002-5019-2181

Keywords

Boost Converter, Fuzzy Logic Algorithm, Incremental Conductivity Algorithm, Maximum Power Point Trackers, Photovoltaic Systems, Maximum Power Principle, Photovoltaic System, Maximum Power Point Tracking, Fuzzy Logic, Algorithm, Technology, fuzzy logic algorithm, incremental conductivity algorithm, T, boost converter, photovoltaic systems, maximum power point trackers

Fields of Science

0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology

Citation

WoS Q

Scopus Q

OpenCitations Logo
OpenCitations Citation Count
10

Source

Volume

18

Issue

2

Start Page

233

End Page

233
PlumX Metrics
Citations

CrossRef : 3

Scopus : 21

Captures

Mendeley Readers : 33

Google Scholar Logo
Google Scholar™
OpenAlex Logo
OpenAlex FWCI
3.14