DRFM hybrid model to optimize energy performance of pre-treatment depth filters in desalination facilities
Rapid depth filtration is the dominant pre-treatment technology in seawater desalination industry today. Optimizing the pre-treatment filter’s energy performance provides economies of scale in the total energy usage of desalination facilities on a broader sense. However, this objective remains diffi...
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sg-ntu-dr.10356-886652020-09-26T21:57:48Z DRFM hybrid model to optimize energy performance of pre-treatment depth filters in desalination facilities Chew, Alvin Wei Ze Law, Adrian Wing-Keung School of Civil and Environmental Engineering Environmental Process Modelling Centre (EPMC) Nanyang Environment and Water Research Institute Energy Performance Granular Pre-treatment Rapid Filtration DRNTU::Engineering::Civil engineering Rapid depth filtration is the dominant pre-treatment technology in seawater desalination industry today. Optimizing the pre-treatment filter’s energy performance provides economies of scale in the total energy usage of desalination facilities on a broader sense. However, this objective remains difficult to achieve by far. In this study, we develop a numerical algorithm, termed as Dynamical Rapid Filtration Model (DRFM), to simulate the effective clogging dynamics occurring inside a depth filter which depends on a multitude of controlled and non-controlled operating parameters. DRFM quantifies the filtration kinetics with a modified Yao’s model to represent the particle removal mechanisms occurring within the simulated filter. A unique length scale is also introduced to account for the particle size effect on the filter’s energy loss rate incurred, i.e. its energy performance, during its effective filtration stage. Concurrently, we performed an experimental study with a lab-scale depth filter to develop a model equation for measuring its total contaminant mass removal rate due to effective clogging conditions. For a predicted transient profile, good agreement is obtained between the experimental results and predicted values from DRFM. We then extensively discuss on a novel DRFM hybrid model to optimize the filter’s energy performance which subsequently affects the filter’s optimized backwashing timing for achieving economies of scale. The simulation results from the hybrid model demonstrates on how various filter configurations can result in lower energy cost to effectively pre-treat each unit volume of intake seawater as compared to the current industrial average of . Finally, we include a cost analysis to demonstrate on how the obtained economies of scale alleviates a portion of the total energy cost for each unit volume of desalinated water. Accepted version 2019-05-23T02:27:00Z 2019-12-06T17:08:22Z 2019-05-23T02:27:00Z 2019-12-06T17:08:22Z 2018 Journal Article Chew, A. W. Z., & Law, A. W.-K. (2018). DRFM hybrid model to optimize energy performance of pre-treatment depth filters in desalination facilities. Applied Energy, 220, 576-597. doi:10.1016/j.apenergy.2018.03.028 0306-2619 https://hdl.handle.net/10356/88665 http://hdl.handle.net/10220/48331 10.1016/j.apenergy.2018.03.028 en Applied Energy © 2018 Elsevier Ltd. All rights reserved. This paper was published in Applied Energy and is made available with permission of Elsevier Ltd. 75 p. application/pdf |
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Energy Performance Granular Pre-treatment Rapid Filtration DRNTU::Engineering::Civil engineering Chew, Alvin Wei Ze Law, Adrian Wing-Keung DRFM hybrid model to optimize energy performance of pre-treatment depth filters in desalination facilities |
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Rapid depth filtration is the dominant pre-treatment technology in seawater desalination industry today. Optimizing the pre-treatment filter’s energy performance provides economies of scale in the total energy usage of desalination facilities on a broader sense. However, this objective remains difficult to achieve by far. In this study, we develop a numerical algorithm, termed as Dynamical Rapid Filtration Model (DRFM), to simulate the effective clogging dynamics occurring inside a depth filter which depends on a multitude of controlled and non-controlled operating parameters. DRFM quantifies the filtration kinetics with a modified Yao’s model to represent the particle removal mechanisms occurring within the simulated filter. A unique length scale is also introduced to account for the particle size effect on the filter’s energy loss rate incurred, i.e. its energy performance, during its effective filtration stage. Concurrently, we performed an experimental study with a lab-scale depth filter to develop a model equation for measuring its total contaminant mass removal rate due to effective clogging conditions. For a predicted transient profile, good agreement is obtained between the experimental results and predicted values from DRFM. We then extensively discuss on a novel DRFM hybrid model to optimize the filter’s energy performance which subsequently affects the filter’s optimized backwashing timing for achieving economies of scale. The simulation results from the hybrid model demonstrates on how various filter configurations can result in lower energy cost to effectively pre-treat each unit volume of intake seawater as compared to the current industrial average of . Finally, we include a cost analysis to demonstrate on how the obtained economies of scale alleviates a portion of the total energy cost for each unit volume of desalinated water. |
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School of Civil and Environmental Engineering |
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School of Civil and Environmental Engineering Chew, Alvin Wei Ze Law, Adrian Wing-Keung |
format |
Article |
author |
Chew, Alvin Wei Ze Law, Adrian Wing-Keung |
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Chew, Alvin Wei Ze |
title |
DRFM hybrid model to optimize energy performance of pre-treatment depth filters in desalination facilities |
title_short |
DRFM hybrid model to optimize energy performance of pre-treatment depth filters in desalination facilities |
title_full |
DRFM hybrid model to optimize energy performance of pre-treatment depth filters in desalination facilities |
title_fullStr |
DRFM hybrid model to optimize energy performance of pre-treatment depth filters in desalination facilities |
title_full_unstemmed |
DRFM hybrid model to optimize energy performance of pre-treatment depth filters in desalination facilities |
title_sort |
drfm hybrid model to optimize energy performance of pre-treatment depth filters in desalination facilities |
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2019 |
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https://hdl.handle.net/10356/88665 http://hdl.handle.net/10220/48331 |
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1681056319185879040 |