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VANĚK, J. HYLSKÝ, J. STRACHALA, D. ČUDEK, P. ŠTURM, M.
Original Title
Analysis of Photovoltaic Module after Potential Induced Degradation
Type
article in a collection out of WoS and Scopus
Language
English
Original Abstract
This work deals with the phenomenon called Potential-Induced Degradation of PV modules (PID shortly). Currently is this problem solved in a lot of scientific institutes where is analyzed the physical description of the process that occurs due to PID. The cause of PID degradation is in a migration of positive sodium ions from glass (that protects PV modules from the environmental influences) to the PV cell which leads to a negative effect in a pn junction of photovoltaic cell. This article is focused on the entire photovoltaic module. PV module is firstly degraded and then regenerated through an applied voltage of 600 V between the aluminum frame and PV cells of module. The degradation and regeneration process was locally supported by increasing of the temperature of PV module to 80 ° C. In this way was possible to observe the influence of temperature in a PID affected PV module.
Keywords
Keywords: Potential-Induced Degradation, PV modules, solar cells.
Authors
VANĚK, J.; HYLSKÝ, J.; STRACHALA, D.; ČUDEK, P.; ŠTURM, M.
Released
26. 7. 2016
Publisher
WIP
Location
Mnichov, Německo
ISBN
3-936338-41-8
Book
Proceedings of 32st European PV Solar Energy Conference and Exhibition
2196-0992
Periodical
EU PVSEC 2014 Proceedings DVD
Year of study
1
Number
2016
State
Federal Republic of Germany
Pages from
1901
Pages to
1904
Pages count
4
BibTex
@inproceedings{BUT127262, author="Jiří {Vaněk} and Josef {Hylský} and Dávid {Strachala} and Pavel {Čudek} and Martin {Šturm}", title="Analysis of Photovoltaic Module after Potential Induced Degradation", booktitle="Proceedings of 32st European PV Solar Energy Conference and Exhibition", year="2016", journal="EU PVSEC 2014 Proceedings DVD", volume="1", number="2016", pages="1901--1904", publisher="WIP", address="Mnichov, Německo", isbn="3-936338-41-8", issn="2196-0992" }