Melt Electrospinning of PET and Composite PET-Aerogel Fibers: An Experimental and Modeling Study

Increasingly advanced applications of polymer fibers are driving the demand for new, high-performance fiber types. One way to produce polymer fibers is by electrospinning from polymer solutions and melts. Polymer melt electrospinning produces fibers with small diameters through solvent-free processi...

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Main Authors: Lasse Christiansen, Leonid Gurevich, Deyong Wang, Peter Fojan
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/14/16/4699
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spelling doaj-f05537124bed40a093395cbe387313d02021-08-26T14:01:33ZengMDPI AGMaterials1996-19442021-08-01144699469910.3390/ma14164699Melt Electrospinning of PET and Composite PET-Aerogel Fibers: An Experimental and Modeling StudyLasse Christiansen0Leonid Gurevich1Deyong Wang2Peter Fojan3Department of Materials and Production, Aalborg University, 9220 Aalborg, DenmarkDepartment of Materials and Production, Aalborg University, 9220 Aalborg, DenmarkDepartment of Materials and Production, Aalborg University, 9220 Aalborg, DenmarkDepartment of Materials and Production, Aalborg University, 9220 Aalborg, DenmarkIncreasingly advanced applications of polymer fibers are driving the demand for new, high-performance fiber types. One way to produce polymer fibers is by electrospinning from polymer solutions and melts. Polymer melt electrospinning produces fibers with small diameters through solvent-free processing and has applications within different fields, ranging from textile and construction, to the biotech and pharmaceutical industries. Modeling of the electrospinning process has been mainly limited to simulations of geometry-dependent electric field distributions. The associated large change in viscosity upon fiber formation and elongation is a key issue governing the electrospinning process, apart from other environmental factors. This paper investigates the melt electrospinning of aerogel-containing fibers and proposes a logistic viscosity model approach with parametric ramping in a finite element method (FEM) simulation. The formation of melt electrospun fibers is studied with regard to the spinning temperature and the distance to the collector. The formation of PET-Aerogel composite fibers by pneumatic transport is demonstrated, and the critical parameter is found to be the temperature of the gas phase. The experimental results form the basis for the electrospinning model, which is shown to reproduce the trend for the fiber diameter, both for polymer as well as polymer-aerogel composites.https://www.mdpi.com/1996-1944/14/16/4699electrospinningporous materialscomposite fibersthermal insulationfinite element modelinglogistic viscosity model
collection DOAJ
language English
format Article
sources DOAJ
author Lasse Christiansen
Leonid Gurevich
Deyong Wang
Peter Fojan
spellingShingle Lasse Christiansen
Leonid Gurevich
Deyong Wang
Peter Fojan
Melt Electrospinning of PET and Composite PET-Aerogel Fibers: An Experimental and Modeling Study
Materials
electrospinning
porous materials
composite fibers
thermal insulation
finite element modeling
logistic viscosity model
author_facet Lasse Christiansen
Leonid Gurevich
Deyong Wang
Peter Fojan
author_sort Lasse Christiansen
title Melt Electrospinning of PET and Composite PET-Aerogel Fibers: An Experimental and Modeling Study
title_short Melt Electrospinning of PET and Composite PET-Aerogel Fibers: An Experimental and Modeling Study
title_full Melt Electrospinning of PET and Composite PET-Aerogel Fibers: An Experimental and Modeling Study
title_fullStr Melt Electrospinning of PET and Composite PET-Aerogel Fibers: An Experimental and Modeling Study
title_full_unstemmed Melt Electrospinning of PET and Composite PET-Aerogel Fibers: An Experimental and Modeling Study
title_sort melt electrospinning of pet and composite pet-aerogel fibers: an experimental and modeling study
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2021-08-01
description Increasingly advanced applications of polymer fibers are driving the demand for new, high-performance fiber types. One way to produce polymer fibers is by electrospinning from polymer solutions and melts. Polymer melt electrospinning produces fibers with small diameters through solvent-free processing and has applications within different fields, ranging from textile and construction, to the biotech and pharmaceutical industries. Modeling of the electrospinning process has been mainly limited to simulations of geometry-dependent electric field distributions. The associated large change in viscosity upon fiber formation and elongation is a key issue governing the electrospinning process, apart from other environmental factors. This paper investigates the melt electrospinning of aerogel-containing fibers and proposes a logistic viscosity model approach with parametric ramping in a finite element method (FEM) simulation. The formation of melt electrospun fibers is studied with regard to the spinning temperature and the distance to the collector. The formation of PET-Aerogel composite fibers by pneumatic transport is demonstrated, and the critical parameter is found to be the temperature of the gas phase. The experimental results form the basis for the electrospinning model, which is shown to reproduce the trend for the fiber diameter, both for polymer as well as polymer-aerogel composites.
topic electrospinning
porous materials
composite fibers
thermal insulation
finite element modeling
logistic viscosity model
url https://www.mdpi.com/1996-1944/14/16/4699
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AT deyongwang meltelectrospinningofpetandcompositepetaerogelfibersanexperimentalandmodelingstudy
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