Robust Back-stepping Based Higher Order Sliding Mode Control of Non-Inverted Buck-Boost Converter for a Photovoltaic System

Photovoltaic (PV) system generates renewable energy from sunlight, which has low efficiency due to the variance in nature of temperature and irradiance in a fast changing environment condition. Different researchers have proposed different maximum power point tracking MPPT techniques to improve the...

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Main Author: Ullah Shaukat
Format: Article
Language:English
Published: Sciendo 2021-01-01
Series:Power Electronics and Drives
Subjects:
Online Access:https://doi.org/10.2478/pead-2021-0007
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spelling doaj-d05fcf7671624f68906117008d487ea42021-10-03T07:42:48ZengSciendoPower Electronics and Drives2543-42922021-01-016111312710.2478/pead-2021-0007Robust Back-stepping Based Higher Order Sliding Mode Control of Non-Inverted Buck-Boost Converter for a Photovoltaic SystemUllah Shaukat0Sarhad University of Science and Information Technology,Peshawar, PakistanPhotovoltaic (PV) system generates renewable energy from sunlight, which has low efficiency due to the variance in nature of temperature and irradiance in a fast changing environment condition. Different researchers have proposed different maximum power point tracking MPPT techniques to improve the efficiency. However, still there are many open issues. Thus, to address this, a non-linear back-stepping–based higher order sliding mode controller (BHOSMC) is proposed to harvest maximum power from PV system. The PV module and load is interfaced by a non-inverted buck-boost converter (NIBBC). A linear interpolation method is used for voltage generation and Lyapunov stability is used to verify the control system equation. MATLAB/Simulink software is used for testing the proposed controller performance. The experimental result verified that the proposed BHOSMC is robust, accurate and fast tracking, faultless and less chattering as compared to perturb and observe (P&O), back-stepping control (BSC) and back-stepping-based sliding mode control under rapidly varying meteorological condition.https://doi.org/10.2478/pead-2021-0007mpptbuck-boost converternon-linear controlback-steppinghigher order slidingphotovoltaic pv
collection DOAJ
language English
format Article
sources DOAJ
author Ullah Shaukat
spellingShingle Ullah Shaukat
Robust Back-stepping Based Higher Order Sliding Mode Control of Non-Inverted Buck-Boost Converter for a Photovoltaic System
Power Electronics and Drives
mppt
buck-boost converter
non-linear control
back-stepping
higher order sliding
photovoltaic pv
author_facet Ullah Shaukat
author_sort Ullah Shaukat
title Robust Back-stepping Based Higher Order Sliding Mode Control of Non-Inverted Buck-Boost Converter for a Photovoltaic System
title_short Robust Back-stepping Based Higher Order Sliding Mode Control of Non-Inverted Buck-Boost Converter for a Photovoltaic System
title_full Robust Back-stepping Based Higher Order Sliding Mode Control of Non-Inverted Buck-Boost Converter for a Photovoltaic System
title_fullStr Robust Back-stepping Based Higher Order Sliding Mode Control of Non-Inverted Buck-Boost Converter for a Photovoltaic System
title_full_unstemmed Robust Back-stepping Based Higher Order Sliding Mode Control of Non-Inverted Buck-Boost Converter for a Photovoltaic System
title_sort robust back-stepping based higher order sliding mode control of non-inverted buck-boost converter for a photovoltaic system
publisher Sciendo
series Power Electronics and Drives
issn 2543-4292
publishDate 2021-01-01
description Photovoltaic (PV) system generates renewable energy from sunlight, which has low efficiency due to the variance in nature of temperature and irradiance in a fast changing environment condition. Different researchers have proposed different maximum power point tracking MPPT techniques to improve the efficiency. However, still there are many open issues. Thus, to address this, a non-linear back-stepping–based higher order sliding mode controller (BHOSMC) is proposed to harvest maximum power from PV system. The PV module and load is interfaced by a non-inverted buck-boost converter (NIBBC). A linear interpolation method is used for voltage generation and Lyapunov stability is used to verify the control system equation. MATLAB/Simulink software is used for testing the proposed controller performance. The experimental result verified that the proposed BHOSMC is robust, accurate and fast tracking, faultless and less chattering as compared to perturb and observe (P&O), back-stepping control (BSC) and back-stepping-based sliding mode control under rapidly varying meteorological condition.
topic mppt
buck-boost converter
non-linear control
back-stepping
higher order sliding
photovoltaic pv
url https://doi.org/10.2478/pead-2021-0007
work_keys_str_mv AT ullahshaukat robustbacksteppingbasedhigherorderslidingmodecontrolofnoninvertedbuckboostconverterforaphotovoltaicsystem
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