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Thermodynamic analysis and performance evaluation of PTC receiver with external annular fins

Since the advent of industrial revolution, the main source of energy has been fossil fuels, and it has resulted in adverse environmental impacts. With the depletion of fossil fuels and greenhouse effect, the utilization of solar energy has attracted increasing attention owing to the distinct advanta...

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Main Author: Aketch, Jacob Mator
Other Authors: Bello-Ochende, Tunde
Format: Thesis
Language:English
Published: Department of Mechanical Engineering 2025
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access_status_str Open Access
author Aketch, Jacob Mator
author2 Bello-Ochende, Tunde
author_browse Aketch, Jacob Mator
Bello-Ochende, Tunde
author_facet Bello-Ochende, Tunde
Aketch, Jacob Mator
author_sort Aketch, Jacob Mator
collection Thesis
description Since the advent of industrial revolution, the main source of energy has been fossil fuels, and it has resulted in adverse environmental impacts. With the depletion of fossil fuels and greenhouse effect, the utilization of solar energy has attracted increasing attention owing to the distinct advantages, including cleanliness, sustainability, inexhaustibility. This has motivated extensive research and innovation to foster a shift to renewable energies, of which concentrated solar power presents itself as the most promising option. Given the unrivalled abundance of solar energy, the source has a potential to meet a substantial portion of future energy demand. This research investigates the influence of external annular fins on the thermal and thermodynamic performance of parabolic trough collector receiver. The objective is achieved by developing thermal and fluid flow model with geometry of varied fin length and fin numbers in different range of Reynolds number and inlet temperature. The model was implemented in commercial ANSYS Fluent software and validated with existing literature—Forristall (2003) that yielded significant agreement. The results showed that introduction of fins increases thermal efficiency of the receiver. An increase of 2.26 percent for Tin = 350 K, 2.21 percent for Tin = 400 K and 2.22 percent for Tin = 500 K was recorded for varying Reynolds numbers. Also, the thermal efficiency in t = 10 mm was higher than t = 5 mm with values in the range of 88 - 90.5 percent while smooth receiver fell in the range of 84 - 86 percent. Additionally, thermal enhancement factor showed slight improvement. i What's more, exergy efficiency showed an improvement with introduction of fins. It was noted that the enhancement increased the exergy efficiency by 2.44 percent for Re = 5000, 2.30 percent for Re = 10000, and 2.30 percent for Re = 20000. Similarly, entropy generation reduced with fins variations. The entropy generation rate decreases with increasing fin length. The smooth absorber tube has the highest entropy generation rate whereas the absorber tube with largest fin length has the lowest. Heat transfer irreversibility has been found to be dominant at lower turbulence and variation of annular fin length and numbers reduces it. In summary, the introduction of passive enhancement of external annular fins was shown by the results to be thermally and thermodynamically favourable, regardless of the degree of improvement. Therefore, this enhancement technique can be combined with other methods to design a high performing PTC receiver—an endeavour that will contribute to implementation of a stand-alone reliable PTC power plants
format Thesis
id oai:open.uct.ac.za:11427/41208
institution University of Cape Town (South Africa)
language eng
last_indexed 2026-06-10T12:43:24.892Z
license_str Not specified — see source repository
provenance_str_mv Harvested via OAI-PMH from UCTD — University of Cape Town Open Access Repository
publishDate 2025
publishDateRange 2025
publishDateSort 2025
publisher Department of Mechanical Engineering
publisherStr Department of Mechanical Engineering
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source_str UCTD — University of Cape Town Open Access Repository
spelling oai:open.uct.ac.za:11427/41208 Thermodynamic analysis and performance evaluation of PTC receiver with external annular fins Aketch, Jacob Mator Bello-Ochende, Tunde Engeneering Since the advent of industrial revolution, the main source of energy has been fossil fuels, and it has resulted in adverse environmental impacts. With the depletion of fossil fuels and greenhouse effect, the utilization of solar energy has attracted increasing attention owing to the distinct advantages, including cleanliness, sustainability, inexhaustibility. This has motivated extensive research and innovation to foster a shift to renewable energies, of which concentrated solar power presents itself as the most promising option. Given the unrivalled abundance of solar energy, the source has a potential to meet a substantial portion of future energy demand. This research investigates the influence of external annular fins on the thermal and thermodynamic performance of parabolic trough collector receiver. The objective is achieved by developing thermal and fluid flow model with geometry of varied fin length and fin numbers in different range of Reynolds number and inlet temperature. The model was implemented in commercial ANSYS Fluent software and validated with existing literature—Forristall (2003) that yielded significant agreement. The results showed that introduction of fins increases thermal efficiency of the receiver. An increase of 2.26 percent for Tin = 350 K, 2.21 percent for Tin = 400 K and 2.22 percent for Tin = 500 K was recorded for varying Reynolds numbers. Also, the thermal efficiency in t = 10 mm was higher than t = 5 mm with values in the range of 88 - 90.5 percent while smooth receiver fell in the range of 84 - 86 percent. Additionally, thermal enhancement factor showed slight improvement. i What's more, exergy efficiency showed an improvement with introduction of fins. It was noted that the enhancement increased the exergy efficiency by 2.44 percent for Re = 5000, 2.30 percent for Re = 10000, and 2.30 percent for Re = 20000. Similarly, entropy generation reduced with fins variations. The entropy generation rate decreases with increasing fin length. The smooth absorber tube has the highest entropy generation rate whereas the absorber tube with largest fin length has the lowest. Heat transfer irreversibility has been found to be dominant at lower turbulence and variation of annular fin length and numbers reduces it. In summary, the introduction of passive enhancement of external annular fins was shown by the results to be thermally and thermodynamically favourable, regardless of the degree of improvement. Therefore, this enhancement technique can be combined with other methods to design a high performing PTC receiver—an endeavour that will contribute to implementation of a stand-alone reliable PTC power plants 2025-03-19T11:07:12Z 2025-03-19T11:07:12Z 2024 2025-03-19T11:05:34Z Thesis / Dissertation Masters Masters http://hdl.handle.net/11427/41208 eng application/pdf Department of Mechanical Engineering Faculty of Engineering and the Built Environment University of Cape Town
spellingShingle Engeneering
Aketch, Jacob Mator
Thermodynamic analysis and performance evaluation of PTC receiver with external annular fins
thesis_degree_str Master's
title Thermodynamic analysis and performance evaluation of PTC receiver with external annular fins
title_full Thermodynamic analysis and performance evaluation of PTC receiver with external annular fins
title_fullStr Thermodynamic analysis and performance evaluation of PTC receiver with external annular fins
title_full_unstemmed Thermodynamic analysis and performance evaluation of PTC receiver with external annular fins
title_short Thermodynamic analysis and performance evaluation of PTC receiver with external annular fins
title_sort thermodynamic analysis and performance evaluation of ptc receiver with external annular fins
topic Engeneering
url http://hdl.handle.net/11427/41208
work_keys_str_mv AT aketchjacobmator thermodynamicanalysisandperformanceevaluationofptcreceiverwithexternalannularfins