Permeate flux enhancement with a helical wired concentric tube in air gap membrane distillation systems

Temperature polarization plays an important role in determining the permeate flux of the membrane distillation in an air gap membrane distillation (AGMD) module. This study aimed to increase the pure water productivity of saline water desalination by applying helical wire on the circumference of a c...

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Main Authors: Ho, C.-D., Chen, L., Wu, K.-Y., Ni, C.-H., Chew, T.L.
Format: Article
Published: Desalination Publications 2020
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85098483623&doi=10.5004%2fdwt.2020.26187&partnerID=40&md5=1bc16525254497b5ac9f2f0617603ede
http://eprints.utp.edu.my/23162/
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spelling my.utp.eprints.231622021-08-19T06:10:21Z Permeate flux enhancement with a helical wired concentric tube in air gap membrane distillation systems Ho, C.-D. Chen, L. Wu, K.-Y. Ni, C.-H. Chew, T.L. Temperature polarization plays an important role in determining the permeate flux of the membrane distillation in an air gap membrane distillation (AGMD) module. This study aimed to increase the pure water productivity of saline water desalination by applying helical wire on the circumference of a concentric-tube AGMD module to reduce the temperature polarization occurring on the smooth annulus tube of an AGMD module with a normal concentric-tube. Modeling equations of heat and mass transfer in the new design of the AGMD device with helical wire winding on the annulus of a concentric tube have been investigated theoretically and experimentally. The mathematical model proposed in this study was used to correlate a simplified equation for estimating the heat transfer coefficient and to predict the permeate flux accordingly. The effects of various operation parameters, including the feed saline water temperature, feed volumetric flow rate, air gap thickness, and helical wire pitch, on the pure water productivity were also delineated. The permeate flux enhancement for helical wire in the AGMD module could provide the maximum relative increment of up to 31.1. The temperature polarization coefficient found in this study is ranging from 0.5527 to 0.5451 for different hot feed temperature and flow rate, respectively. An optimal helical wire module was assessed when considering both permeate flux enhancement and energy utilization effectiveness. © 2020 Desalination Publications. All rights reserved. Desalination Publications 2020 Article NonPeerReviewed https://www.scopus.com/inward/record.uri?eid=2-s2.0-85098483623&doi=10.5004%2fdwt.2020.26187&partnerID=40&md5=1bc16525254497b5ac9f2f0617603ede Ho, C.-D. and Chen, L. and Wu, K.-Y. and Ni, C.-H. and Chew, T.L. (2020) Permeate flux enhancement with a helical wired concentric tube in air gap membrane distillation systems. Desalination and Water Treatment, 202 . pp. 150-168. http://eprints.utp.edu.my/23162/
institution Universiti Teknologi Petronas
building UTP Resource Centre
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Petronas
content_source UTP Institutional Repository
url_provider http://eprints.utp.edu.my/
description Temperature polarization plays an important role in determining the permeate flux of the membrane distillation in an air gap membrane distillation (AGMD) module. This study aimed to increase the pure water productivity of saline water desalination by applying helical wire on the circumference of a concentric-tube AGMD module to reduce the temperature polarization occurring on the smooth annulus tube of an AGMD module with a normal concentric-tube. Modeling equations of heat and mass transfer in the new design of the AGMD device with helical wire winding on the annulus of a concentric tube have been investigated theoretically and experimentally. The mathematical model proposed in this study was used to correlate a simplified equation for estimating the heat transfer coefficient and to predict the permeate flux accordingly. The effects of various operation parameters, including the feed saline water temperature, feed volumetric flow rate, air gap thickness, and helical wire pitch, on the pure water productivity were also delineated. The permeate flux enhancement for helical wire in the AGMD module could provide the maximum relative increment of up to 31.1. The temperature polarization coefficient found in this study is ranging from 0.5527 to 0.5451 for different hot feed temperature and flow rate, respectively. An optimal helical wire module was assessed when considering both permeate flux enhancement and energy utilization effectiveness. © 2020 Desalination Publications. All rights reserved.
format Article
author Ho, C.-D.
Chen, L.
Wu, K.-Y.
Ni, C.-H.
Chew, T.L.
spellingShingle Ho, C.-D.
Chen, L.
Wu, K.-Y.
Ni, C.-H.
Chew, T.L.
Permeate flux enhancement with a helical wired concentric tube in air gap membrane distillation systems
author_facet Ho, C.-D.
Chen, L.
Wu, K.-Y.
Ni, C.-H.
Chew, T.L.
author_sort Ho, C.-D.
title Permeate flux enhancement with a helical wired concentric tube in air gap membrane distillation systems
title_short Permeate flux enhancement with a helical wired concentric tube in air gap membrane distillation systems
title_full Permeate flux enhancement with a helical wired concentric tube in air gap membrane distillation systems
title_fullStr Permeate flux enhancement with a helical wired concentric tube in air gap membrane distillation systems
title_full_unstemmed Permeate flux enhancement with a helical wired concentric tube in air gap membrane distillation systems
title_sort permeate flux enhancement with a helical wired concentric tube in air gap membrane distillation systems
publisher Desalination Publications
publishDate 2020
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85098483623&doi=10.5004%2fdwt.2020.26187&partnerID=40&md5=1bc16525254497b5ac9f2f0617603ede
http://eprints.utp.edu.my/23162/
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