Quantitative review on recent developments of flat-plate solar collector design. Part 1: Front-side heat loss reduction

Several studies demonstrated novel and effective design solutions for the FPC thermal performance enchantment by the front side heat loss reduction. However, these design improvements were tested under different climatic and operating conditions. This fact makes it almost impossible to compare these...

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Main Authors: Viacheslav Shemelin, Tomáš Matuška
Format: Article
Language:English
Published: Elsevier 2023-11-01
Series:Energy Reports
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2352484723013884
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author Viacheslav Shemelin
Tomáš Matuška
author_facet Viacheslav Shemelin
Tomáš Matuška
author_sort Viacheslav Shemelin
collection DOAJ
description Several studies demonstrated novel and effective design solutions for the FPC thermal performance enchantment by the front side heat loss reduction. However, these design improvements were tested under different climatic and operating conditions. This fact makes it almost impossible to compare these design improvements. The following study quantitatively analyses the current flat-plate solar collector design developments, focusing on reducing front-side heat loss. It also performs a simulation analysis to demonstrate the thermal performance improvement of the chosen design solutions for three specific applications. The literature review was performed to identify the most promising design solutions. Then, the considered design solutions were modelled using the validated detailed theoretical model of a flat-plate solar collector (FPC). Finally, the modelling results were used to perform the thermal performance simulation analysis for Würzburg (Germany) climatic conditions and constant mean fluid operating temperatures of 50, 75, and 100 °C. The simulation results indicated that applying the considered design solutions to decrease the front-side heat losses could significantly increase the FPC thermal performance. Moreover, for high-temperature applications, where the front-side heat loss is a crucial factor determining the FPC thermal performance, there is more than a significant potential for the FPC thermal performance enchantment. To sum up, our findings indicate a significant thermal performance improvement potential that could increase the application range of FPCs and make them more competitive for a broader application area.
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spelling doaj.art-9eb1e339a1cc4afcbe05063924d7254d2023-12-28T05:18:08ZengElsevierEnergy Reports2352-48472023-11-0196469Quantitative review on recent developments of flat-plate solar collector design. Part 1: Front-side heat loss reductionViacheslav Shemelin0Tomáš Matuška1Corresponding author.; Czech Technical University in Prague, University Centre for Energy Efficient Buildings, 27343 Bustehrad, Czech RepublicCzech Technical University in Prague, University Centre for Energy Efficient Buildings, 27343 Bustehrad, Czech RepublicSeveral studies demonstrated novel and effective design solutions for the FPC thermal performance enchantment by the front side heat loss reduction. However, these design improvements were tested under different climatic and operating conditions. This fact makes it almost impossible to compare these design improvements. The following study quantitatively analyses the current flat-plate solar collector design developments, focusing on reducing front-side heat loss. It also performs a simulation analysis to demonstrate the thermal performance improvement of the chosen design solutions for three specific applications. The literature review was performed to identify the most promising design solutions. Then, the considered design solutions were modelled using the validated detailed theoretical model of a flat-plate solar collector (FPC). Finally, the modelling results were used to perform the thermal performance simulation analysis for Würzburg (Germany) climatic conditions and constant mean fluid operating temperatures of 50, 75, and 100 °C. The simulation results indicated that applying the considered design solutions to decrease the front-side heat losses could significantly increase the FPC thermal performance. Moreover, for high-temperature applications, where the front-side heat loss is a crucial factor determining the FPC thermal performance, there is more than a significant potential for the FPC thermal performance enchantment. To sum up, our findings indicate a significant thermal performance improvement potential that could increase the application range of FPCs and make them more competitive for a broader application area.http://www.sciencedirect.com/science/article/pii/S2352484723013884Solar energyFlat-plate solar collectorMathematical modellingTransparent insulation materialAerogelVacuum glazing
spellingShingle Viacheslav Shemelin
Tomáš Matuška
Quantitative review on recent developments of flat-plate solar collector design. Part 1: Front-side heat loss reduction
Energy Reports
Solar energy
Flat-plate solar collector
Mathematical modelling
Transparent insulation material
Aerogel
Vacuum glazing
title Quantitative review on recent developments of flat-plate solar collector design. Part 1: Front-side heat loss reduction
title_full Quantitative review on recent developments of flat-plate solar collector design. Part 1: Front-side heat loss reduction
title_fullStr Quantitative review on recent developments of flat-plate solar collector design. Part 1: Front-side heat loss reduction
title_full_unstemmed Quantitative review on recent developments of flat-plate solar collector design. Part 1: Front-side heat loss reduction
title_short Quantitative review on recent developments of flat-plate solar collector design. Part 1: Front-side heat loss reduction
title_sort quantitative review on recent developments of flat plate solar collector design part 1 front side heat loss reduction
topic Solar energy
Flat-plate solar collector
Mathematical modelling
Transparent insulation material
Aerogel
Vacuum glazing
url http://www.sciencedirect.com/science/article/pii/S2352484723013884
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