Observation of membrane fouling with 3D-printed spacers using 3D optical coherence tomography

Fouling is a common issue in membrane filtration and it greatly affects the efficiency of the separation process. A better understanding of the underlying fouling mechanisms from the observation of a filtration process is critical to investigate membrane fouling and mitigate the potential problems....

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Main Author: Koo, Jing Wee
Other Authors: Chong Tzyy Haur
Format: Final Year Project
Language:English
Published: 2017
Subjects:
Online Access:http://hdl.handle.net/10356/70877
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-708772023-03-03T17:13:43Z Observation of membrane fouling with 3D-printed spacers using 3D optical coherence tomography Koo, Jing Wee Chong Tzyy Haur School of Civil and Environmental Engineering Singapore Membrane Technology Centre DRNTU::Engineering::Environmental engineering::Water treatment Fouling is a common issue in membrane filtration and it greatly affects the efficiency of the separation process. A better understanding of the underlying fouling mechanisms from the observation of a filtration process is critical to investigate membrane fouling and mitigate the potential problems. This study focused on using optical coherence tomography (OCT) to investigate the effects of 3D-printed spacers (especially the 3D-printed sinusoidal spacers) on the fouling process. A series of OCT scans of a representative unit cell in a spacer was taken as a function of time to generate 3D-images illustrating the morphology of a foulant layer. With the help of some quantitative analysing methods, the formation and evolution of a foulant layer was obtained. It revealed the underlying fouling mechanisms during a fouling process. Besides the membrane flux, surface coverage and average cake thickness were adopted to compare the performance of varied spacer design under different operating conditions. The experimental results clearly indicated that the spacer designs and crossflow velocities can significantly impact the hydrodynamic conditions within the unit cells of a spacer. As a result, cake layers with different structures were formed. This study proved that OCT is a powerful tool in analyzing membrane fouling processes and evaluating different spacer designs. Bachelor of Engineering (Environmental Engineering) 2017-05-12T02:06:39Z 2017-05-12T02:06:39Z 2017 Final Year Project (FYP) http://hdl.handle.net/10356/70877 en Nanyang Technological University 64 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Environmental engineering::Water treatment
spellingShingle DRNTU::Engineering::Environmental engineering::Water treatment
Koo, Jing Wee
Observation of membrane fouling with 3D-printed spacers using 3D optical coherence tomography
description Fouling is a common issue in membrane filtration and it greatly affects the efficiency of the separation process. A better understanding of the underlying fouling mechanisms from the observation of a filtration process is critical to investigate membrane fouling and mitigate the potential problems. This study focused on using optical coherence tomography (OCT) to investigate the effects of 3D-printed spacers (especially the 3D-printed sinusoidal spacers) on the fouling process. A series of OCT scans of a representative unit cell in a spacer was taken as a function of time to generate 3D-images illustrating the morphology of a foulant layer. With the help of some quantitative analysing methods, the formation and evolution of a foulant layer was obtained. It revealed the underlying fouling mechanisms during a fouling process. Besides the membrane flux, surface coverage and average cake thickness were adopted to compare the performance of varied spacer design under different operating conditions. The experimental results clearly indicated that the spacer designs and crossflow velocities can significantly impact the hydrodynamic conditions within the unit cells of a spacer. As a result, cake layers with different structures were formed. This study proved that OCT is a powerful tool in analyzing membrane fouling processes and evaluating different spacer designs.
author2 Chong Tzyy Haur
author_facet Chong Tzyy Haur
Koo, Jing Wee
format Final Year Project
author Koo, Jing Wee
author_sort Koo, Jing Wee
title Observation of membrane fouling with 3D-printed spacers using 3D optical coherence tomography
title_short Observation of membrane fouling with 3D-printed spacers using 3D optical coherence tomography
title_full Observation of membrane fouling with 3D-printed spacers using 3D optical coherence tomography
title_fullStr Observation of membrane fouling with 3D-printed spacers using 3D optical coherence tomography
title_full_unstemmed Observation of membrane fouling with 3D-printed spacers using 3D optical coherence tomography
title_sort observation of membrane fouling with 3d-printed spacers using 3d optical coherence tomography
publishDate 2017
url http://hdl.handle.net/10356/70877
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