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4D In-Situ Microscopy of Aerosol Filtration in a Wall Flow Filter

The transient nature of the internal pore structure of particulate wall flow filters, caused by the continuous deposition of particulate matter, makes studying their flow and filtration characteristics challenging. In this article we present a new methodology and first experimental demonstration of...

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Autores principales: Jones, Matthew P., Storm, Malte, York, Andrew P. E., Hyde, Timothy I., Hatton, Gareth D., Greenaway, Alex G., Haigh, Sarah J., Eastwood, David S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7763601/
https://www.ncbi.nlm.nih.gov/pubmed/33322695
http://dx.doi.org/10.3390/ma13245676
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author Jones, Matthew P.
Storm, Malte
York, Andrew P. E.
Hyde, Timothy I.
Hatton, Gareth D.
Greenaway, Alex G.
Haigh, Sarah J.
Eastwood, David S.
author_facet Jones, Matthew P.
Storm, Malte
York, Andrew P. E.
Hyde, Timothy I.
Hatton, Gareth D.
Greenaway, Alex G.
Haigh, Sarah J.
Eastwood, David S.
author_sort Jones, Matthew P.
collection PubMed
description The transient nature of the internal pore structure of particulate wall flow filters, caused by the continuous deposition of particulate matter, makes studying their flow and filtration characteristics challenging. In this article we present a new methodology and first experimental demonstration of time resolved in-situ synchrotron micro X-ray computed tomography (micro-CT) to study aerosol filtration. We directly imaged in 4D (3D plus time) pore scale deposits of TiO [Formula: see text] nanoparticles (nominal mean primary diameter of 25 nm) with a pixel resolution of 1.6 [Formula: see text] m. We obtained 3D tomograms at a rate of ∼1 per minute. The combined spatial and temporal resolution allows us to observe pore blocking and filling phenomena as they occur in the filter’s pore space. We quantified the reduction in filter porosity over time, from an initial porosity of 0.60 to a final porosity of 0.56 after 20 min. Furthermore, the penetration depth of particulate deposits and filtration rate was quantified. This novel image-based method offers valuable and statistically relevant insights into how the pore structure and function evolves during particulate filtration. Our data set will allow validation of simulations of automotive wall flow filters. Evolutions of this experimental design have potential for the study of a wide range of dry aerosol filters and could be directly applied to catalysed automotive wall flow filters.
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spelling pubmed-77636012020-12-27 4D In-Situ Microscopy of Aerosol Filtration in a Wall Flow Filter Jones, Matthew P. Storm, Malte York, Andrew P. E. Hyde, Timothy I. Hatton, Gareth D. Greenaway, Alex G. Haigh, Sarah J. Eastwood, David S. Materials (Basel) Article The transient nature of the internal pore structure of particulate wall flow filters, caused by the continuous deposition of particulate matter, makes studying their flow and filtration characteristics challenging. In this article we present a new methodology and first experimental demonstration of time resolved in-situ synchrotron micro X-ray computed tomography (micro-CT) to study aerosol filtration. We directly imaged in 4D (3D plus time) pore scale deposits of TiO [Formula: see text] nanoparticles (nominal mean primary diameter of 25 nm) with a pixel resolution of 1.6 [Formula: see text] m. We obtained 3D tomograms at a rate of ∼1 per minute. The combined spatial and temporal resolution allows us to observe pore blocking and filling phenomena as they occur in the filter’s pore space. We quantified the reduction in filter porosity over time, from an initial porosity of 0.60 to a final porosity of 0.56 after 20 min. Furthermore, the penetration depth of particulate deposits and filtration rate was quantified. This novel image-based method offers valuable and statistically relevant insights into how the pore structure and function evolves during particulate filtration. Our data set will allow validation of simulations of automotive wall flow filters. Evolutions of this experimental design have potential for the study of a wide range of dry aerosol filters and could be directly applied to catalysed automotive wall flow filters. MDPI 2020-12-12 /pmc/articles/PMC7763601/ /pubmed/33322695 http://dx.doi.org/10.3390/ma13245676 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Jones, Matthew P.
Storm, Malte
York, Andrew P. E.
Hyde, Timothy I.
Hatton, Gareth D.
Greenaway, Alex G.
Haigh, Sarah J.
Eastwood, David S.
4D In-Situ Microscopy of Aerosol Filtration in a Wall Flow Filter
title 4D In-Situ Microscopy of Aerosol Filtration in a Wall Flow Filter
title_full 4D In-Situ Microscopy of Aerosol Filtration in a Wall Flow Filter
title_fullStr 4D In-Situ Microscopy of Aerosol Filtration in a Wall Flow Filter
title_full_unstemmed 4D In-Situ Microscopy of Aerosol Filtration in a Wall Flow Filter
title_short 4D In-Situ Microscopy of Aerosol Filtration in a Wall Flow Filter
title_sort 4d in-situ microscopy of aerosol filtration in a wall flow filter
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7763601/
https://www.ncbi.nlm.nih.gov/pubmed/33322695
http://dx.doi.org/10.3390/ma13245676
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