Conceptual Design and Numerical Analysis of a Novel Floating Desalination Plant Powered by Marine Renewable Energy for Egypt

The supply of freshwater has become a worldwide interest, due to serious water shortages in many countries. Due to rapid increases in the population, poor water management, and limitations of freshwater resources, Egypt is currently below the water scarcity limit. Since Egypt has approximately 3000...

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Main Authors: Islam Amin, Mohamed E.A. Ali, Seif Bayoumi, Selda Oterkus, Hosam Shawky, Erkan Oterkus
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Journal of Marine Science and Engineering
Subjects:
Online Access:https://www.mdpi.com/2077-1312/8/2/95
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spelling doaj-d1231697ab7b4a94a6b36356493e377b2021-04-02T12:06:04ZengMDPI AGJournal of Marine Science and Engineering2077-13122020-02-01829510.3390/jmse8020095jmse8020095Conceptual Design and Numerical Analysis of a Novel Floating Desalination Plant Powered by Marine Renewable Energy for EgyptIslam Amin0Mohamed E.A. Ali1Seif Bayoumi2Selda Oterkus3Hosam Shawky4Erkan Oterkus5Department of Naval Architecture and Marine Engineering, Port Said University, Port Said 42511, EgyptEgypt Desalination Research Centerpf Excellence (EDRC) and Hydrogeochemistry Department, Desert Research Centre, Cairo 11753, EgyptArab Academy for Science, Technology and Maritime Transport, Alexandria 1029, EgyptNaval Architecture, Ocean and Marine Engineering, University of Strathclyde, Glasgow G4 0LZ, UKEgypt Desalination Research Centerpf Excellence (EDRC) and Hydrogeochemistry Department, Desert Research Centre, Cairo 11753, EgyptNaval Architecture, Ocean and Marine Engineering, University of Strathclyde, Glasgow G4 0LZ, UKThe supply of freshwater has become a worldwide interest, due to serious water shortages in many countries. Due to rapid increases in the population, poor water management, and limitations of freshwater resources, Egypt is currently below the water scarcity limit. Since Egypt has approximately 3000 km of coastlines on both the Red Sea and the Mediterranean Sea, seawater desalination powered by marine renewable energy could be a sustainable alternative solution, especially for remote coastal cities which are located far from the national water grid. The objective of this research work is to evaluate the feasibility of a floating desalination plant (FDP) concept powered by marine renewable energy for Egypt. A novel design of the FDP concept is developed as an innovative solution to overcome the freshwater shortage of remote coastal cities in Egypt. A mobile floating platform supported by reverse osmosis (RO) membrane powered by marine renewable power technology is proposed. Based on the abundant solar irradiation and sufficient wind density, Ras Ghareb was selected to be the base site location for the proposed FDP concept. According to the collected data from the selected location, a hybrid solar−wind system was designed to power the FDP concept under a maximum power load condition. A numerical tool, the DNV-GL Sesam software package, was used for static stability, hydrodynamic performance, and dynamic response evaluation. Moreover, WAVE software was used to design and simulate the operation of the RO desalination system and calculate the power consumption for the proposed FDP concept. The results show that the proposed mobile FDP concept is highly suitable for being implemented in remote coastal areas in Egypt, without the need for infrastructure or connection to the national grid for both water and power.https://www.mdpi.com/2077-1312/8/2/95desalinationfloating desalination planthybrid renewable energy systemsmarine renewable energyoffshore marine platform
collection DOAJ
language English
format Article
sources DOAJ
author Islam Amin
Mohamed E.A. Ali
Seif Bayoumi
Selda Oterkus
Hosam Shawky
Erkan Oterkus
spellingShingle Islam Amin
Mohamed E.A. Ali
Seif Bayoumi
Selda Oterkus
Hosam Shawky
Erkan Oterkus
Conceptual Design and Numerical Analysis of a Novel Floating Desalination Plant Powered by Marine Renewable Energy for Egypt
Journal of Marine Science and Engineering
desalination
floating desalination plant
hybrid renewable energy systems
marine renewable energy
offshore marine platform
author_facet Islam Amin
Mohamed E.A. Ali
Seif Bayoumi
Selda Oterkus
Hosam Shawky
Erkan Oterkus
author_sort Islam Amin
title Conceptual Design and Numerical Analysis of a Novel Floating Desalination Plant Powered by Marine Renewable Energy for Egypt
title_short Conceptual Design and Numerical Analysis of a Novel Floating Desalination Plant Powered by Marine Renewable Energy for Egypt
title_full Conceptual Design and Numerical Analysis of a Novel Floating Desalination Plant Powered by Marine Renewable Energy for Egypt
title_fullStr Conceptual Design and Numerical Analysis of a Novel Floating Desalination Plant Powered by Marine Renewable Energy for Egypt
title_full_unstemmed Conceptual Design and Numerical Analysis of a Novel Floating Desalination Plant Powered by Marine Renewable Energy for Egypt
title_sort conceptual design and numerical analysis of a novel floating desalination plant powered by marine renewable energy for egypt
publisher MDPI AG
series Journal of Marine Science and Engineering
issn 2077-1312
publishDate 2020-02-01
description The supply of freshwater has become a worldwide interest, due to serious water shortages in many countries. Due to rapid increases in the population, poor water management, and limitations of freshwater resources, Egypt is currently below the water scarcity limit. Since Egypt has approximately 3000 km of coastlines on both the Red Sea and the Mediterranean Sea, seawater desalination powered by marine renewable energy could be a sustainable alternative solution, especially for remote coastal cities which are located far from the national water grid. The objective of this research work is to evaluate the feasibility of a floating desalination plant (FDP) concept powered by marine renewable energy for Egypt. A novel design of the FDP concept is developed as an innovative solution to overcome the freshwater shortage of remote coastal cities in Egypt. A mobile floating platform supported by reverse osmosis (RO) membrane powered by marine renewable power technology is proposed. Based on the abundant solar irradiation and sufficient wind density, Ras Ghareb was selected to be the base site location for the proposed FDP concept. According to the collected data from the selected location, a hybrid solar−wind system was designed to power the FDP concept under a maximum power load condition. A numerical tool, the DNV-GL Sesam software package, was used for static stability, hydrodynamic performance, and dynamic response evaluation. Moreover, WAVE software was used to design and simulate the operation of the RO desalination system and calculate the power consumption for the proposed FDP concept. The results show that the proposed mobile FDP concept is highly suitable for being implemented in remote coastal areas in Egypt, without the need for infrastructure or connection to the national grid for both water and power.
topic desalination
floating desalination plant
hybrid renewable energy systems
marine renewable energy
offshore marine platform
url https://www.mdpi.com/2077-1312/8/2/95
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