Thermally Conductive Backsheets (TCB) of PV Modules: Positive Impacts on Performance, Lifetime and LCOE

The operating temperatures of photovoltaic (PV) modules can be impacted by the selection of specific packaging materials, e.g., backsheets and encapsulants. This research focuses on the evaluation of operating temperature reduction of one-cell modules by comparing conventional Tedlar/polyester/Tedla...

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Main Authors: Ashwini Pavgi, Jaewon Oh, GovindaSamy TamizhMani
Format: Article
Language:English
Published: MDPI AG 2021-02-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/14/5/1252
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spelling doaj-c9059bc792db4511af4032aa6ba3fedd2021-02-26T00:03:11ZengMDPI AGEnergies1996-10732021-02-01141252125210.3390/en14051252Thermally Conductive Backsheets (TCB) of PV Modules: Positive Impacts on Performance, Lifetime and LCOEAshwini Pavgi0Jaewon Oh1GovindaSamy TamizhMani2Photovoltaic Reliability Laboratory, Arizona State University, Mesa, AZ 85212, USAPhotovoltaic Reliability Laboratory, Arizona State University, Mesa, AZ 85212, USAPhotovoltaic Reliability Laboratory, Arizona State University, Mesa, AZ 85212, USAThe operating temperatures of photovoltaic (PV) modules can be impacted by the selection of specific packaging materials, e.g., backsheets and encapsulants. This research focuses on the evaluation of operating temperature reduction of one-cell modules by comparing conventional Tedlar/polyester/Tedlar (TPT) backsheet with novel thermally conductive backsheets (TCBs) materials. A large number of one-cell modules with two TCB types (TCB_A and TCB_B) and baseline TPT type were fabricated and installed in three different climatic conditions of the hot-dry desert in Arizona (high and low wind speed locations) and North Carolina (temperate with low wind speed location). In this study, these two TCBs were compared with conventional TPT backsheet in terms of performance, lifetime and levelized cost of energy (LCOE). The field results were analyzed for thermal performance of TCBs compared to TPT at three sites for two and half years. This study concludes that the thermal and electrical performances of the PV modules can be improved by using TCB_A in hot and dry climate sites and TCB_B at temperate climate sites. Therefore, the lifetime of TCB-based modules is expected to be higher than TPT-based modules. Using backsheet-specific power degradation levels and assuming the same cost for both types of backsheets, the LCOE of modules using TCBs is estimated to be lower than that of TPT.https://www.mdpi.com/1996-1073/14/5/1252thermally conductive backsheetsacceleration factorservice lifetimeLCOEPV modules
collection DOAJ
language English
format Article
sources DOAJ
author Ashwini Pavgi
Jaewon Oh
GovindaSamy TamizhMani
spellingShingle Ashwini Pavgi
Jaewon Oh
GovindaSamy TamizhMani
Thermally Conductive Backsheets (TCB) of PV Modules: Positive Impacts on Performance, Lifetime and LCOE
Energies
thermally conductive backsheets
acceleration factor
service lifetime
LCOE
PV modules
author_facet Ashwini Pavgi
Jaewon Oh
GovindaSamy TamizhMani
author_sort Ashwini Pavgi
title Thermally Conductive Backsheets (TCB) of PV Modules: Positive Impacts on Performance, Lifetime and LCOE
title_short Thermally Conductive Backsheets (TCB) of PV Modules: Positive Impacts on Performance, Lifetime and LCOE
title_full Thermally Conductive Backsheets (TCB) of PV Modules: Positive Impacts on Performance, Lifetime and LCOE
title_fullStr Thermally Conductive Backsheets (TCB) of PV Modules: Positive Impacts on Performance, Lifetime and LCOE
title_full_unstemmed Thermally Conductive Backsheets (TCB) of PV Modules: Positive Impacts on Performance, Lifetime and LCOE
title_sort thermally conductive backsheets (tcb) of pv modules: positive impacts on performance, lifetime and lcoe
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2021-02-01
description The operating temperatures of photovoltaic (PV) modules can be impacted by the selection of specific packaging materials, e.g., backsheets and encapsulants. This research focuses on the evaluation of operating temperature reduction of one-cell modules by comparing conventional Tedlar/polyester/Tedlar (TPT) backsheet with novel thermally conductive backsheets (TCBs) materials. A large number of one-cell modules with two TCB types (TCB_A and TCB_B) and baseline TPT type were fabricated and installed in three different climatic conditions of the hot-dry desert in Arizona (high and low wind speed locations) and North Carolina (temperate with low wind speed location). In this study, these two TCBs were compared with conventional TPT backsheet in terms of performance, lifetime and levelized cost of energy (LCOE). The field results were analyzed for thermal performance of TCBs compared to TPT at three sites for two and half years. This study concludes that the thermal and electrical performances of the PV modules can be improved by using TCB_A in hot and dry climate sites and TCB_B at temperate climate sites. Therefore, the lifetime of TCB-based modules is expected to be higher than TPT-based modules. Using backsheet-specific power degradation levels and assuming the same cost for both types of backsheets, the LCOE of modules using TCBs is estimated to be lower than that of TPT.
topic thermally conductive backsheets
acceleration factor
service lifetime
LCOE
PV modules
url https://www.mdpi.com/1996-1073/14/5/1252
work_keys_str_mv AT ashwinipavgi thermallyconductivebacksheetstcbofpvmodulespositiveimpactsonperformancelifetimeandlcoe
AT jaewonoh thermallyconductivebacksheetstcbofpvmodulespositiveimpactsonperformancelifetimeandlcoe
AT govindasamytamizhmani thermallyconductivebacksheetstcbofpvmodulespositiveimpactsonperformancelifetimeandlcoe
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