Modeling Water Flux in Forward Osmosis: Implications for Improved Membrane Design

A Master of Science thesis in Chemical Engineering by Muna Al Mazrooei entitled, "Modeling Water Flux in Forward Osmosis: Implications for Improved Membrane Design," submitted in May 2013. Thesis advisor is Dr. Raafat Alnaizy and co-advisor is Dr. Ahmed Aidan. Available are both soft and h...

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محفوظ في:
التفاصيل البيبلوغرافية
المؤلف الرئيسي: Al Mazrooei, Muna (author)
التنسيق: doctoralThesis
منشور في: 2013
الموضوعات:
الوصول للمادة أونلاين:http://hdl.handle.net/11073/5991
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author Al Mazrooei, Muna
author_facet Al Mazrooei, Muna
author_role author
dc.contributor.none.fl_str_mv Alnaizy, Raafat
Aidan, Ahmed
dc.creator.none.fl_str_mv Al Mazrooei, Muna
dc.date.none.fl_str_mv 2013-05
2014-01-16T06:38:55Z
2014-01-16T06:38:55Z
dc.format.none.fl_str_mv application/pdf
dc.identifier.none.fl_str_mv 35.232-2013.43
http://hdl.handle.net/11073/5991
dc.language.none.fl_str_mv en_US
dc.subject.none.fl_str_mv forward osmosis
concentration polarization
membrane
draw solution
modeling
Saline water conversion
Water
Purification
dc.title.none.fl_str_mv Modeling Water Flux in Forward Osmosis: Implications for Improved Membrane Design
dc.type.none.fl_str_mv info:eu-repo/semantics/publishedVersion
info:eu-repo/semantics/doctoralThesis
description A Master of Science thesis in Chemical Engineering by Muna Al Mazrooei entitled, "Modeling Water Flux in Forward Osmosis: Implications for Improved Membrane Design," submitted in May 2013. Thesis advisor is Dr. Raafat Alnaizy and co-advisor is Dr. Ahmed Aidan. Available are both soft and hard copies of the thesis.
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network_acronym_str aus
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oai_identifier_str oai:repository.aus.edu:11073/5991
publishDate 2013
repository.mail.fl_str_mv
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spelling Modeling Water Flux in Forward Osmosis: Implications for Improved Membrane DesignAl Mazrooei, Munaforward osmosisconcentration polarizationmembranedraw solutionmodelingSaline water conversionWaterPurificationA Master of Science thesis in Chemical Engineering by Muna Al Mazrooei entitled, "Modeling Water Flux in Forward Osmosis: Implications for Improved Membrane Design," submitted in May 2013. Thesis advisor is Dr. Raafat Alnaizy and co-advisor is Dr. Ahmed Aidan. Available are both soft and hard copies of the thesis.In efforts to make fresh water available to all people, researchers are dedicated to establish a water treatment method that will reduce the cost of production and impact on the environment. Forward osmosis desalination has been under the spotlight as a candidate of being a revolutionary water treatment method. Nevertheless, forward osmosis is faced with obstacles that hinder it from being commercially available. One of the main forward osmosis problems is low flux induced by concentration polarization and inadequate membrane design. To examine the problem, a commercially available forward osmosis membrane was tested using two different draw solutions. Using different feed solutions, experimental flux was determined and flux modeling was performed for the system in hand. The flux model selected was a good fit to experimental data for all draw solutions used; NaCl, magnesium sulfate and copper sulfate. The model was tested on our experimental data and other researchers' data. The flux model was found to be in line with experimental data for all systems at various operating conditions. It was found that dilutive internal concentration polarization (ICP) had a significant impact on flux. The overall driving force was reduced by dilutive ICP which caused a substantial reduction in the flux. It was determined that to reduce Dilutive ICP, solute resistance to diffusion (K) had to be minimized. Results also indicated that minimizing solute resistance to diffusion (K) achieved higher flux. It was also concluded that concentrative external concentration polarization (ECP) had a minor impact on flux. Varying feed mass transfer coefficient, a factor controlling concentrative ECP, had a small effect on flux. Magnesium sulfate and copper sulfate draw solutions were compared in terms of flux; it was found that coppers sulfate generates higher flux.College of EngineeringDepartment of Chemical EngineeringMaster of Science in Chemical Engineering (MSChE)Alnaizy, RaafatAidan, Ahmed2014-01-16T06:38:55Z2014-01-16T06:38:55Z2013-05info:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/doctoralThesisapplication/pdf35.232-2013.43http://hdl.handle.net/11073/5991en_USoai:repository.aus.edu:11073/59912025-06-26T12:25:46Z
spellingShingle Modeling Water Flux in Forward Osmosis: Implications for Improved Membrane Design
Al Mazrooei, Muna
forward osmosis
concentration polarization
membrane
draw solution
modeling
Saline water conversion
Water
Purification
status_str publishedVersion
title Modeling Water Flux in Forward Osmosis: Implications for Improved Membrane Design
title_full Modeling Water Flux in Forward Osmosis: Implications for Improved Membrane Design
title_fullStr Modeling Water Flux in Forward Osmosis: Implications for Improved Membrane Design
title_full_unstemmed Modeling Water Flux in Forward Osmosis: Implications for Improved Membrane Design
title_short Modeling Water Flux in Forward Osmosis: Implications for Improved Membrane Design
title_sort Modeling Water Flux in Forward Osmosis: Implications for Improved Membrane Design
topic forward osmosis
concentration polarization
membrane
draw solution
modeling
Saline water conversion
Water
Purification
url http://hdl.handle.net/11073/5991