Harvesting maximum power from mismatch module of PV system using PO buck-boost converter

This paper presents a simulation and laboratory test of Photovoltaic (PV) module incorporated with Positive Output (PO) Buck-Boost Converter for harnessing maximum energy from the solar PV module. The main intention is to invent a system which can harvest maximum power point (MPP) energy of the PV s...

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Published in:Advanced Materials Research
Main Author: Mohd Hussain M.N.; Omar A.M.; Ibrahim I.R.
Format: Conference paper
Language:English
Published: Trans Tech Publications Ltd 2014
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-84904052422&doi=10.4028%2fwww.scientific.net%2fAMR.953-954.95&partnerID=40&md5=e16767fab27b36d011cf363c01cb8a60
id 2-s2.0-84904052422
spelling 2-s2.0-84904052422
Mohd Hussain M.N.; Omar A.M.; Ibrahim I.R.
Harvesting maximum power from mismatch module of PV system using PO buck-boost converter
2014
Advanced Materials Research
953-954

10.4028/www.scientific.net/AMR.953-954.95
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84904052422&doi=10.4028%2fwww.scientific.net%2fAMR.953-954.95&partnerID=40&md5=e16767fab27b36d011cf363c01cb8a60
This paper presents a simulation and laboratory test of Photovoltaic (PV) module incorporated with Positive Output (PO) Buck-Boost Converter for harnessing maximum energy from the solar PV module. The main intention is to invent a system which can harvest maximum power point (MPP) energy of the PV system in string-connection. The model-based design of the controller and maximum power point tracking (MPPT) algorithm for the system were implemented using MATLAB SIMULINK software. For laboratory execution, the digital microcontroller of dsPIC30F digital signal controller (DSC) was used to control the prototype of PO buck-boost converter. The code generation via MPLAB Integrated Development Environment (IDE) from model-based design was embedded into the dsPIC30F using the SKds40A target board and PICkit 3 circuit debugger. The system was successfully simulated and verified by simulation and laboratory evaluations. A physical two PV module of PV-MF120EC3 Mitsubishi Electric is modeled in string connection to represent a mismatch module. While in laboratory process, a string-connection of 10W and 5W PV module is implemented for the mismatch module condition. © (2014) Trans Tech Publications, Switzerland.
Trans Tech Publications Ltd
10226680
English
Conference paper

author Mohd Hussain M.N.; Omar A.M.; Ibrahim I.R.
spellingShingle Mohd Hussain M.N.; Omar A.M.; Ibrahim I.R.
Harvesting maximum power from mismatch module of PV system using PO buck-boost converter
author_facet Mohd Hussain M.N.; Omar A.M.; Ibrahim I.R.
author_sort Mohd Hussain M.N.; Omar A.M.; Ibrahim I.R.
title Harvesting maximum power from mismatch module of PV system using PO buck-boost converter
title_short Harvesting maximum power from mismatch module of PV system using PO buck-boost converter
title_full Harvesting maximum power from mismatch module of PV system using PO buck-boost converter
title_fullStr Harvesting maximum power from mismatch module of PV system using PO buck-boost converter
title_full_unstemmed Harvesting maximum power from mismatch module of PV system using PO buck-boost converter
title_sort Harvesting maximum power from mismatch module of PV system using PO buck-boost converter
publishDate 2014
container_title Advanced Materials Research
container_volume 953-954
container_issue
doi_str_mv 10.4028/www.scientific.net/AMR.953-954.95
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-84904052422&doi=10.4028%2fwww.scientific.net%2fAMR.953-954.95&partnerID=40&md5=e16767fab27b36d011cf363c01cb8a60
description This paper presents a simulation and laboratory test of Photovoltaic (PV) module incorporated with Positive Output (PO) Buck-Boost Converter for harnessing maximum energy from the solar PV module. The main intention is to invent a system which can harvest maximum power point (MPP) energy of the PV system in string-connection. The model-based design of the controller and maximum power point tracking (MPPT) algorithm for the system were implemented using MATLAB SIMULINK software. For laboratory execution, the digital microcontroller of dsPIC30F digital signal controller (DSC) was used to control the prototype of PO buck-boost converter. The code generation via MPLAB Integrated Development Environment (IDE) from model-based design was embedded into the dsPIC30F using the SKds40A target board and PICkit 3 circuit debugger. The system was successfully simulated and verified by simulation and laboratory evaluations. A physical two PV module of PV-MF120EC3 Mitsubishi Electric is modeled in string connection to represent a mismatch module. While in laboratory process, a string-connection of 10W and 5W PV module is implemented for the mismatch module condition. © (2014) Trans Tech Publications, Switzerland.
publisher Trans Tech Publications Ltd
issn 10226680
language English
format Conference paper
accesstype
record_format scopus
collection Scopus
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