Transient simulation and life cycle cost analysis of a solar polygeneration system using photovoltaic-thermal collectors and hybrid desalination unit

Recently, water scarcity has been intensified in arid areas because of depletion of freshwater resources, reduction of rainfall, population, and urbanization growth. Therefore, the need to use desalination systems has increased in these areas. On the other hand, the increase of building energy consu...

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Main Authors: Maryam Karami, Seyedeh Somayeh Nasiri Gahraz
Format: Article
Language:English
Published: Semnan University 2021-10-01
Series:Journal of Heat and Mass Transfer Research
Subjects:
Online Access:https://jhmtr.semnan.ac.ir/article_5633_cf1975636e2c612543d0f5e65986d07d.pdf
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author Maryam Karami
Seyedeh Somayeh Nasiri Gahraz
author_facet Maryam Karami
Seyedeh Somayeh Nasiri Gahraz
author_sort Maryam Karami
collection DOAJ
description Recently, water scarcity has been intensified in arid areas because of depletion of freshwater resources, reduction of rainfall, population, and urbanization growth. Therefore, the need to use desalination systems has increased in these areas. On the other hand, the increase of building energy consumption for achieving enhanced thermal comfort has become a global crisis due to the depletion of fossil fuel resources and related environmental problems. In this study, a small-scale solar polygeneration system using photovoltaic-thermal solar collectors and hybrid humidification-dehumidification and reverse osmosis desalination units is proposed to supply the electricity, domestic hot water, space heating, and freshwater demands of a one-story house. The dynamic simulation of the system performance in the Hot-Dry climate zone is done using the TRNSYS-MATLAB co-simulator. The results indicate that using the thermal and electrical energy generated by the proposed system, the building annual energy consumption for providing domestic hot water, and space heating demands reduce 100% and 27.2%. The increase of the annual solar fraction of domestic hot water and space heating, because of using the electrical energy generated by the system, is 11.3% and 15.6%, respectively. The electricity and freshwater demand of the building is completely supplied by the proposed system and the excess electricity is sold to the grid. Economic analysis indicated that fuel saving cost of 29479 $ and water saving cost of 23779 $ are obtained during the life cycle of the system and the payback period is 3.75 years. The results show that the considerable energy savings are achieved using the proposed solar polygeneration system for providing the required electricity, heating, and fresh water demands of the residential buildings.
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spelling doaj.art-5f1afeb1eab74f10ae8e018bb907ce002024-03-17T08:04:24ZengSemnan UniversityJournal of Heat and Mass Transfer Research2345-508X2383-30682021-10-018224325610.22075/jhmtr.2021.23429.13435633Transient simulation and life cycle cost analysis of a solar polygeneration system using photovoltaic-thermal collectors and hybrid desalination unitMaryam Karami0Seyedeh Somayeh Nasiri Gahraz1Department of Mechanical Engineering, Faculty of Engineering, Kharazmi University, Tehran, IranDepartment of Mechanical Engineering, Faculty of Engineering, Kharazmi University, Tehran, IranRecently, water scarcity has been intensified in arid areas because of depletion of freshwater resources, reduction of rainfall, population, and urbanization growth. Therefore, the need to use desalination systems has increased in these areas. On the other hand, the increase of building energy consumption for achieving enhanced thermal comfort has become a global crisis due to the depletion of fossil fuel resources and related environmental problems. In this study, a small-scale solar polygeneration system using photovoltaic-thermal solar collectors and hybrid humidification-dehumidification and reverse osmosis desalination units is proposed to supply the electricity, domestic hot water, space heating, and freshwater demands of a one-story house. The dynamic simulation of the system performance in the Hot-Dry climate zone is done using the TRNSYS-MATLAB co-simulator. The results indicate that using the thermal and electrical energy generated by the proposed system, the building annual energy consumption for providing domestic hot water, and space heating demands reduce 100% and 27.2%. The increase of the annual solar fraction of domestic hot water and space heating, because of using the electrical energy generated by the system, is 11.3% and 15.6%, respectively. The electricity and freshwater demand of the building is completely supplied by the proposed system and the excess electricity is sold to the grid. Economic analysis indicated that fuel saving cost of 29479 $ and water saving cost of 23779 $ are obtained during the life cycle of the system and the payback period is 3.75 years. The results show that the considerable energy savings are achieved using the proposed solar polygeneration system for providing the required electricity, heating, and fresh water demands of the residential buildings.https://jhmtr.semnan.ac.ir/article_5633_cf1975636e2c612543d0f5e65986d07d.pdfsolar polygeneration systemphotovoltaic-thermal solar collectorshumidification-dehumidification (hdh)reverse osmosishot-dry climateeconomic analysis
spellingShingle Maryam Karami
Seyedeh Somayeh Nasiri Gahraz
Transient simulation and life cycle cost analysis of a solar polygeneration system using photovoltaic-thermal collectors and hybrid desalination unit
Journal of Heat and Mass Transfer Research
solar polygeneration system
photovoltaic-thermal solar collectors
humidification-dehumidification (hdh)
reverse osmosis
hot-dry climate
economic analysis
title Transient simulation and life cycle cost analysis of a solar polygeneration system using photovoltaic-thermal collectors and hybrid desalination unit
title_full Transient simulation and life cycle cost analysis of a solar polygeneration system using photovoltaic-thermal collectors and hybrid desalination unit
title_fullStr Transient simulation and life cycle cost analysis of a solar polygeneration system using photovoltaic-thermal collectors and hybrid desalination unit
title_full_unstemmed Transient simulation and life cycle cost analysis of a solar polygeneration system using photovoltaic-thermal collectors and hybrid desalination unit
title_short Transient simulation and life cycle cost analysis of a solar polygeneration system using photovoltaic-thermal collectors and hybrid desalination unit
title_sort transient simulation and life cycle cost analysis of a solar polygeneration system using photovoltaic thermal collectors and hybrid desalination unit
topic solar polygeneration system
photovoltaic-thermal solar collectors
humidification-dehumidification (hdh)
reverse osmosis
hot-dry climate
economic analysis
url https://jhmtr.semnan.ac.ir/article_5633_cf1975636e2c612543d0f5e65986d07d.pdf
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