Real-time experimental performance assessment of a photovoltaic thermal system cascaded with flat plate and heat pipe evacuated tube collector

In response to the global quest for a sustainable and environmentally friendly source of energy, most scientists' discretion is solar energy, especially solar thermal. However, successful deployment of solar thermal technologies such as solar-assisted process heating (SAPH) systems in medium- t...

Full description

Saved in:
Bibliographic Details
Main Authors: Kumar, Laveet, Hasanuzzaman, M., Rahim, N. A.
Format: Article
Published: ASME 2022
Subjects:
Online Access:http://eprints.um.edu.my/33420/
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Universiti Malaya
id my.um.eprints.33420
record_format eprints
spelling my.um.eprints.334202022-08-03T02:29:20Z http://eprints.um.edu.my/33420/ Real-time experimental performance assessment of a photovoltaic thermal system cascaded with flat plate and heat pipe evacuated tube collector Kumar, Laveet Hasanuzzaman, M. Rahim, N. A. TA Engineering (General). Civil engineering (General) In response to the global quest for a sustainable and environmentally friendly source of energy, most scientists' discretion is solar energy, especially solar thermal. However, successful deployment of solar thermal technologies such as solar-assisted process heating (SAPH) systems in medium- to large-scale industries is still in quandary due to their inefficacy in raising ample temperatures. Cascaded SAPH system, which is essentially a series combination of two same or different types of thermal collectors, may provide a worthwhile solution to this problem. In this article, performance assessment and comparison of two cascaded SAPH systems have been presented: photovoltaic thermal (PVT) cascaded with flat-plate collector (PVT-FPC) and PVT coupled with heat pipe evacuated tube collector (PVT-HPETC). Simulation models have been presented for individual FPC, HPETC, and PVT as well as PVT cascaded with FPC and HPETC systems in TRNSYS and validated through outdoor experimentation. Both the first and the second laws of thermodynamics have been employed to reveal veritable performance of the systems. Results show that PVT-HPETC delivers better performance with 1625 W thermal energy, 81.59% energy efficiency, and 13.22% exergy efficiency. It cuts 1.37 kg of CO2 on an hourly basis. Cascaded systems can be effective in sustaining industrial process heat requirements. ASME 2022-02-01 Article PeerReviewed Kumar, Laveet and Hasanuzzaman, M. and Rahim, N. A. (2022) Real-time experimental performance assessment of a photovoltaic thermal system cascaded with flat plate and heat pipe evacuated tube collector. Journal of Solar Energy Engineering-Transactions of the Asme, 144 (1). ISSN 0199-6231, DOI https://doi.org/10.1115/1.4051861 <https://doi.org/10.1115/1.4051861>. 10.1115/1.4051861
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic TA Engineering (General). Civil engineering (General)
spellingShingle TA Engineering (General). Civil engineering (General)
Kumar, Laveet
Hasanuzzaman, M.
Rahim, N. A.
Real-time experimental performance assessment of a photovoltaic thermal system cascaded with flat plate and heat pipe evacuated tube collector
description In response to the global quest for a sustainable and environmentally friendly source of energy, most scientists' discretion is solar energy, especially solar thermal. However, successful deployment of solar thermal technologies such as solar-assisted process heating (SAPH) systems in medium- to large-scale industries is still in quandary due to their inefficacy in raising ample temperatures. Cascaded SAPH system, which is essentially a series combination of two same or different types of thermal collectors, may provide a worthwhile solution to this problem. In this article, performance assessment and comparison of two cascaded SAPH systems have been presented: photovoltaic thermal (PVT) cascaded with flat-plate collector (PVT-FPC) and PVT coupled with heat pipe evacuated tube collector (PVT-HPETC). Simulation models have been presented for individual FPC, HPETC, and PVT as well as PVT cascaded with FPC and HPETC systems in TRNSYS and validated through outdoor experimentation. Both the first and the second laws of thermodynamics have been employed to reveal veritable performance of the systems. Results show that PVT-HPETC delivers better performance with 1625 W thermal energy, 81.59% energy efficiency, and 13.22% exergy efficiency. It cuts 1.37 kg of CO2 on an hourly basis. Cascaded systems can be effective in sustaining industrial process heat requirements.
format Article
author Kumar, Laveet
Hasanuzzaman, M.
Rahim, N. A.
author_facet Kumar, Laveet
Hasanuzzaman, M.
Rahim, N. A.
author_sort Kumar, Laveet
title Real-time experimental performance assessment of a photovoltaic thermal system cascaded with flat plate and heat pipe evacuated tube collector
title_short Real-time experimental performance assessment of a photovoltaic thermal system cascaded with flat plate and heat pipe evacuated tube collector
title_full Real-time experimental performance assessment of a photovoltaic thermal system cascaded with flat plate and heat pipe evacuated tube collector
title_fullStr Real-time experimental performance assessment of a photovoltaic thermal system cascaded with flat plate and heat pipe evacuated tube collector
title_full_unstemmed Real-time experimental performance assessment of a photovoltaic thermal system cascaded with flat plate and heat pipe evacuated tube collector
title_sort real-time experimental performance assessment of a photovoltaic thermal system cascaded with flat plate and heat pipe evacuated tube collector
publisher ASME
publishDate 2022
url http://eprints.um.edu.my/33420/
_version_ 1740826030080262144