MODELING PARTICLE FILTRATION AND CAKING IN FIBROUS FILTER MEDIA

This study is aimed at developing modeling methodologies for simulating the flow of air and aerosol particles through fibrous filter media made up of micro- or nano-fibers. The study also deals with modeling particle deposition (due to Brownian diffusion, interception, and inertial impaction) and pa...

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Main Author: Hosseini, Seyed Alireza
Format: Others
Published: VCU Scholars Compass 2011
Subjects:
CFD
Online Access:http://scholarscompass.vcu.edu/etd/2530
http://scholarscompass.vcu.edu/cgi/viewcontent.cgi?article=3529&context=etd
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spelling ndltd-vcu.edu-oai-scholarscompass.vcu.edu-etd-35292017-03-17T08:26:19Z MODELING PARTICLE FILTRATION AND CAKING IN FIBROUS FILTER MEDIA Hosseini, Seyed Alireza This study is aimed at developing modeling methodologies for simulating the flow of air and aerosol particles through fibrous filter media made up of micro- or nano-fibers. The study also deals with modeling particle deposition (due to Brownian diffusion, interception, and inertial impaction) and particle cake formation, on or inside fibrous filters. By computing the air flow field and the trajectory of airborne particles in 3-D virtual geometries that resemble the internal microstructure of fibrous filter media, pressure drop and collection efficiency of micro- or nano-fiber filters are simulated and compared with the available experimental studies. It was demonstrated that the simulations conducted in 3-D disordered fibrous domains, unlike previously reported 2-D cell-model simulations, do not need any empirical correction factors to closely predict experimental observations. This study also reports on the importance of fibers’ cross-sectional shape for filters operating in slip (nano-fiber filters) and no-slip (micro-fiber filters) flow regimes. In particular, it was found that the more streamlined the fiber geometry, the lower the fiber drag caused by a nanofiber relative to that generated by its micron-sized counterpart. This work also presents a methodology for simulating pressure drop and collection efficiency of a filter medium during instantaneous particle loading using the Fluent CFD code, enhanced by using a series of in-house subroutines. These subroutines are developed to allow one to track particles of different sizes, and simulate the formation of 2-D and 3-D dendrite particle deposits in the presence of aerodynamic slip on the surface of the fibers. The deposition of particles on a fiber and the previously deposited particles is made possible by developing additional subroutines, which mark the cells located at the deposition sites and modify their properties to so that they resemble solid or porous particles. Our unsteady-state simulations, in qualitative agreement with the experimental observations reported in the literature, predict the rate of increase of pressure drop and collection efficiency of a filter medium as a function of the mass of the loaded particles. 2011-07-22T07:00:00Z text application/pdf http://scholarscompass.vcu.edu/etd/2530 http://scholarscompass.vcu.edu/cgi/viewcontent.cgi?article=3529&context=etd © The Author Theses and Dissertations VCU Scholars Compass CFD Filtration Nano fiber Slip boundary condition Engineering
collection NDLTD
format Others
sources NDLTD
topic CFD
Filtration
Nano fiber
Slip boundary condition
Engineering
spellingShingle CFD
Filtration
Nano fiber
Slip boundary condition
Engineering
Hosseini, Seyed Alireza
MODELING PARTICLE FILTRATION AND CAKING IN FIBROUS FILTER MEDIA
description This study is aimed at developing modeling methodologies for simulating the flow of air and aerosol particles through fibrous filter media made up of micro- or nano-fibers. The study also deals with modeling particle deposition (due to Brownian diffusion, interception, and inertial impaction) and particle cake formation, on or inside fibrous filters. By computing the air flow field and the trajectory of airborne particles in 3-D virtual geometries that resemble the internal microstructure of fibrous filter media, pressure drop and collection efficiency of micro- or nano-fiber filters are simulated and compared with the available experimental studies. It was demonstrated that the simulations conducted in 3-D disordered fibrous domains, unlike previously reported 2-D cell-model simulations, do not need any empirical correction factors to closely predict experimental observations. This study also reports on the importance of fibers’ cross-sectional shape for filters operating in slip (nano-fiber filters) and no-slip (micro-fiber filters) flow regimes. In particular, it was found that the more streamlined the fiber geometry, the lower the fiber drag caused by a nanofiber relative to that generated by its micron-sized counterpart. This work also presents a methodology for simulating pressure drop and collection efficiency of a filter medium during instantaneous particle loading using the Fluent CFD code, enhanced by using a series of in-house subroutines. These subroutines are developed to allow one to track particles of different sizes, and simulate the formation of 2-D and 3-D dendrite particle deposits in the presence of aerodynamic slip on the surface of the fibers. The deposition of particles on a fiber and the previously deposited particles is made possible by developing additional subroutines, which mark the cells located at the deposition sites and modify their properties to so that they resemble solid or porous particles. Our unsteady-state simulations, in qualitative agreement with the experimental observations reported in the literature, predict the rate of increase of pressure drop and collection efficiency of a filter medium as a function of the mass of the loaded particles.
author Hosseini, Seyed Alireza
author_facet Hosseini, Seyed Alireza
author_sort Hosseini, Seyed Alireza
title MODELING PARTICLE FILTRATION AND CAKING IN FIBROUS FILTER MEDIA
title_short MODELING PARTICLE FILTRATION AND CAKING IN FIBROUS FILTER MEDIA
title_full MODELING PARTICLE FILTRATION AND CAKING IN FIBROUS FILTER MEDIA
title_fullStr MODELING PARTICLE FILTRATION AND CAKING IN FIBROUS FILTER MEDIA
title_full_unstemmed MODELING PARTICLE FILTRATION AND CAKING IN FIBROUS FILTER MEDIA
title_sort modeling particle filtration and caking in fibrous filter media
publisher VCU Scholars Compass
publishDate 2011
url http://scholarscompass.vcu.edu/etd/2530
http://scholarscompass.vcu.edu/cgi/viewcontent.cgi?article=3529&context=etd
work_keys_str_mv AT hosseiniseyedalireza modelingparticlefiltrationandcakinginfibrousfiltermedia
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