Characterization by Mercury Porosimetry of Nonwoven Fiber Media with Deformation

The porosity and pore diameter distribution are important characteristics of nonwoven fiber media. With the advent of electrospinning, the production of mats of nonwoven fibrous materials with fiber diameters in the 0.1-10 μm range has become more prevalent. The large compliance of these mats makes...

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Main Authors: Joseph L. Lowery, Gregory C. Rutledge, Chia-Ling Pai
Format: Article
Language:English
Published: SAGE Publishing 2009-09-01
Series:Journal of Engineered Fibers and Fabrics
Online Access:http://www.jeffjournal.org/papers/Volume4/4.3Rutledge1-13.pdf
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spelling doaj-2c99f6fa90f04d059450f3aae878444d2020-11-25T03:24:07ZengSAGE PublishingJournal of Engineered Fibers and Fabrics1558-92502009-09-0143114Characterization by Mercury Porosimetry of Nonwoven Fiber Media with DeformationJoseph L. LoweryGregory C. RutledgeChia-Ling PaiThe porosity and pore diameter distribution are important characteristics of nonwoven fiber media. With the advent of electrospinning, the production of mats of nonwoven fibrous materials with fiber diameters in the 0.1-10 μm range has become more prevalent. The large compliance of these mats makes them susceptible to mechanical deformation under the pressures attained in a typical mercury porosimetry experiment. We report a theoretical analysis of the liquid volume measured during liquid intrusion porosimetry in the presence of deformation of such mats by one of two modes: buckling of the pores or elastic compression of the mat. For electrospun mats of poly(ε-caprolactone) with average fiber diameters ranging from 2.49 to 18.0 μm, we find that buckling is the more relevant mode of deformation, and that it can alter significantly the determination of pore diameter distributions measured by mercury porosimetry.http://www.jeffjournal.org/papers/Volume4/4.3Rutledge1-13.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Joseph L. Lowery
Gregory C. Rutledge
Chia-Ling Pai
spellingShingle Joseph L. Lowery
Gregory C. Rutledge
Chia-Ling Pai
Characterization by Mercury Porosimetry of Nonwoven Fiber Media with Deformation
Journal of Engineered Fibers and Fabrics
author_facet Joseph L. Lowery
Gregory C. Rutledge
Chia-Ling Pai
author_sort Joseph L. Lowery
title Characterization by Mercury Porosimetry of Nonwoven Fiber Media with Deformation
title_short Characterization by Mercury Porosimetry of Nonwoven Fiber Media with Deformation
title_full Characterization by Mercury Porosimetry of Nonwoven Fiber Media with Deformation
title_fullStr Characterization by Mercury Porosimetry of Nonwoven Fiber Media with Deformation
title_full_unstemmed Characterization by Mercury Porosimetry of Nonwoven Fiber Media with Deformation
title_sort characterization by mercury porosimetry of nonwoven fiber media with deformation
publisher SAGE Publishing
series Journal of Engineered Fibers and Fabrics
issn 1558-9250
publishDate 2009-09-01
description The porosity and pore diameter distribution are important characteristics of nonwoven fiber media. With the advent of electrospinning, the production of mats of nonwoven fibrous materials with fiber diameters in the 0.1-10 μm range has become more prevalent. The large compliance of these mats makes them susceptible to mechanical deformation under the pressures attained in a typical mercury porosimetry experiment. We report a theoretical analysis of the liquid volume measured during liquid intrusion porosimetry in the presence of deformation of such mats by one of two modes: buckling of the pores or elastic compression of the mat. For electrospun mats of poly(ε-caprolactone) with average fiber diameters ranging from 2.49 to 18.0 μm, we find that buckling is the more relevant mode of deformation, and that it can alter significantly the determination of pore diameter distributions measured by mercury porosimetry.
url http://www.jeffjournal.org/papers/Volume4/4.3Rutledge1-13.pdf
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AT chialingpai characterizationbymercuryporosimetryofnonwovenfibermediawithdeformation
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