Thermodynamic Analysis and Sizing of a Small Scale Solar Thermal Power System Based on Organic Rankine Cycle

This paper presents the feasibility analysis of a small-scale low-temperature solar organic Rankine cycle power system. The heat transfer fluid for running the organic Rankine cycle system is hot water with a temperature of 120 °C provided by an array of evacuated tube solar collectors. The...

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Main Authors: Khaled Hossin, Khamid Mahkamov, Basim Belgasim
Format: Article
Language:English
Published: SDEWES Centre 2020-09-01
Series:Journal of Sustainable Development of Energy, Water and Environment Systems
Subjects:
Online Access: http://www.sdewes.org/jsdewes/pid7.0294
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spelling doaj-331753d161ea4768be6196a7f12128fc2020-11-25T03:49:21ZengSDEWES CentreJournal of Sustainable Development of Energy, Water and Environment Systems1848-92572020-09-018349350610.13044/j.sdewes.d7.029400294Thermodynamic Analysis and Sizing of a Small Scale Solar Thermal Power System Based on Organic Rankine CycleKhaled Hossin0Khamid Mahkamov1Basim Belgasim2 Mechanical and Industrial Engineering Department, American University of Ras Al Khaimah, Ras Al Khaimah, United Arab Emirates Mechanical and Construction Engineering Department, Northumbria University, Wynne-Jones Building, Newcastle upon Tyne, United Kingdom Mechanical Engineering Department, University of Benghazi, Benghazi, Libya This paper presents the feasibility analysis of a small-scale low-temperature solar organic Rankine cycle power system. The heat transfer fluid for running the organic Rankine cycle system is hot water with a temperature of 120 °C provided by an array of evacuated tube solar collectors. The performance of the solar organic Rankine cycle system was investigated using two different working fluids over a wide range of the evaporation temperature. Technical and economic indicators such as the required solar collector aperture area, the total heat transfer surface area of the heat exchangers and the volume flow ratio between the outlet and inlet of the expander are among the key parameters used to evaluate the solar organic Rankine cycle. Thermolib toolbox 5.2 in conjunction with MATLAB/Simulink was used to predict the variation of the system performance. The results showed that the solar organic Rankine cycle system is able to achieve an overall system efficiency of 6.75% using a relatively low-temperature heat source. The results also showed that the solar organic Rankine cycle system requires smaller evacuated tube solar collector and heat exchanger areas when R245fa is used as the working fluid. http://www.sdewes.org/jsdewes/pid7.0294 organic rankine cyclesolar energyorganic fluidsevacuated tube solar collectorlow temperature heat sourcesthermolib.
collection DOAJ
language English
format Article
sources DOAJ
author Khaled Hossin
Khamid Mahkamov
Basim Belgasim
spellingShingle Khaled Hossin
Khamid Mahkamov
Basim Belgasim
Thermodynamic Analysis and Sizing of a Small Scale Solar Thermal Power System Based on Organic Rankine Cycle
Journal of Sustainable Development of Energy, Water and Environment Systems
organic rankine cycle
solar energy
organic fluids
evacuated tube solar collector
low temperature heat sources
thermolib.
author_facet Khaled Hossin
Khamid Mahkamov
Basim Belgasim
author_sort Khaled Hossin
title Thermodynamic Analysis and Sizing of a Small Scale Solar Thermal Power System Based on Organic Rankine Cycle
title_short Thermodynamic Analysis and Sizing of a Small Scale Solar Thermal Power System Based on Organic Rankine Cycle
title_full Thermodynamic Analysis and Sizing of a Small Scale Solar Thermal Power System Based on Organic Rankine Cycle
title_fullStr Thermodynamic Analysis and Sizing of a Small Scale Solar Thermal Power System Based on Organic Rankine Cycle
title_full_unstemmed Thermodynamic Analysis and Sizing of a Small Scale Solar Thermal Power System Based on Organic Rankine Cycle
title_sort thermodynamic analysis and sizing of a small scale solar thermal power system based on organic rankine cycle
publisher SDEWES Centre
series Journal of Sustainable Development of Energy, Water and Environment Systems
issn 1848-9257
publishDate 2020-09-01
description This paper presents the feasibility analysis of a small-scale low-temperature solar organic Rankine cycle power system. The heat transfer fluid for running the organic Rankine cycle system is hot water with a temperature of 120 °C provided by an array of evacuated tube solar collectors. The performance of the solar organic Rankine cycle system was investigated using two different working fluids over a wide range of the evaporation temperature. Technical and economic indicators such as the required solar collector aperture area, the total heat transfer surface area of the heat exchangers and the volume flow ratio between the outlet and inlet of the expander are among the key parameters used to evaluate the solar organic Rankine cycle. Thermolib toolbox 5.2 in conjunction with MATLAB/Simulink was used to predict the variation of the system performance. The results showed that the solar organic Rankine cycle system is able to achieve an overall system efficiency of 6.75% using a relatively low-temperature heat source. The results also showed that the solar organic Rankine cycle system requires smaller evacuated tube solar collector and heat exchanger areas when R245fa is used as the working fluid.
topic organic rankine cycle
solar energy
organic fluids
evacuated tube solar collector
low temperature heat sources
thermolib.
url http://www.sdewes.org/jsdewes/pid7.0294
work_keys_str_mv AT khaledhossin thermodynamicanalysisandsizingofasmallscalesolarthermalpowersystembasedonorganicrankinecycle
AT khamidmahkamov thermodynamicanalysisandsizingofasmallscalesolarthermalpowersystembasedonorganicrankinecycle
AT basimbelgasim thermodynamicanalysisandsizingofasmallscalesolarthermalpowersystembasedonorganicrankinecycle
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