Dynamic Tensile Testing of Needle-Punched Nonwoven Fabrics

The tensile testing of a needle-punched nonwoven fabric is presented. A high-sensitivity Split-Hopkinson Tensile Bar device was specifically designed for this purpose. The strain gauge measurements were combined with high-speed photography and Digital Image Correlation to analyse the deformation mic...

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Published in:Applied Sciences
Main Authors: Francisca Martínez-Hergueta, Antonio Pellegrino, Álvaro Ridruejo, Nik Petrinic, Carlos González, Javier LLorca
Format: Article
Language:English
Published: MDPI AG 2020-07-01
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Online Access:https://www.mdpi.com/2076-3417/10/15/5081
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author Francisca Martínez-Hergueta
Antonio Pellegrino
Álvaro Ridruejo
Nik Petrinic
Carlos González
Javier LLorca
author_facet Francisca Martínez-Hergueta
Antonio Pellegrino
Álvaro Ridruejo
Nik Petrinic
Carlos González
Javier LLorca
author_sort Francisca Martínez-Hergueta
collection DOAJ
container_title Applied Sciences
description The tensile testing of a needle-punched nonwoven fabric is presented. A high-sensitivity Split-Hopkinson Tensile Bar device was specifically designed for this purpose. The strain gauge measurements were combined with high-speed photography and Digital Image Correlation to analyse the deformation micromechanisms at high strain rates. The experimental set-up allowed to determine the wave propagation velocity of the as-received nonwove fabric, the evolution of the strain field with deformation and the wave interaction inside the fabric. The deformation was accommodated by the same micromechanisms observed during quasi-static tensile testing and ballistic impact, which comprised fibre straightening, rotation and sliding. Heterogeneous strain fields were developed in the nonwoven fabric as a result of the non-linear pseudoplastic response of the fabric and the internal dissipation due to the frictional deformation micromechanisms, preventing the propagation of high magnitude strain waves into the specimen. Additionally, the output forces were analysed to determine the influence of high-strain rates in the mechanical response of the nonwoven fabric, finding an increment of the stiffness for low applied strains under dynamic loading. These findings provide the basis to develop strain-rate dependent constitutive models to predict wave propagation in needle-punched nonwoven fabrics when subjected to impact loads.
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spelling doaj-art-e28df415c00646c7946d04dedeec047e2025-08-19T22:47:54ZengMDPI AGApplied Sciences2076-34172020-07-011015508110.3390/app10155081Dynamic Tensile Testing of Needle-Punched Nonwoven FabricsFrancisca Martínez-Hergueta0Antonio Pellegrino1Álvaro Ridruejo2Nik Petrinic3Carlos González4Javier LLorca5Institute for Infrastructure and Environment, School of Engineering, The University of Edinburgh, William Rankine Building, Edinburgh EH9 3FG, UKDepartment of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, UKDepartment of Materials Science, Universidad Politécnica de Madrid, E. T. S. de Ingenieros de Caminos, 28040 Madrid, SpainDepartment of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, UKDepartment of Materials Science, Universidad Politécnica de Madrid, E. T. S. de Ingenieros de Caminos, 28040 Madrid, SpainDepartment of Materials Science, Universidad Politécnica de Madrid, E. T. S. de Ingenieros de Caminos, 28040 Madrid, SpainThe tensile testing of a needle-punched nonwoven fabric is presented. A high-sensitivity Split-Hopkinson Tensile Bar device was specifically designed for this purpose. The strain gauge measurements were combined with high-speed photography and Digital Image Correlation to analyse the deformation micromechanisms at high strain rates. The experimental set-up allowed to determine the wave propagation velocity of the as-received nonwove fabric, the evolution of the strain field with deformation and the wave interaction inside the fabric. The deformation was accommodated by the same micromechanisms observed during quasi-static tensile testing and ballistic impact, which comprised fibre straightening, rotation and sliding. Heterogeneous strain fields were developed in the nonwoven fabric as a result of the non-linear pseudoplastic response of the fabric and the internal dissipation due to the frictional deformation micromechanisms, preventing the propagation of high magnitude strain waves into the specimen. Additionally, the output forces were analysed to determine the influence of high-strain rates in the mechanical response of the nonwoven fabric, finding an increment of the stiffness for low applied strains under dynamic loading. These findings provide the basis to develop strain-rate dependent constitutive models to predict wave propagation in needle-punched nonwoven fabrics when subjected to impact loads.https://www.mdpi.com/2076-3417/10/15/5081split Hopkinson barnonwoven fabricsexperimental mechanicswave propagationlow impedance
spellingShingle Francisca Martínez-Hergueta
Antonio Pellegrino
Álvaro Ridruejo
Nik Petrinic
Carlos González
Javier LLorca
Dynamic Tensile Testing of Needle-Punched Nonwoven Fabrics
split Hopkinson bar
nonwoven fabrics
experimental mechanics
wave propagation
low impedance
title Dynamic Tensile Testing of Needle-Punched Nonwoven Fabrics
title_full Dynamic Tensile Testing of Needle-Punched Nonwoven Fabrics
title_fullStr Dynamic Tensile Testing of Needle-Punched Nonwoven Fabrics
title_full_unstemmed Dynamic Tensile Testing of Needle-Punched Nonwoven Fabrics
title_short Dynamic Tensile Testing of Needle-Punched Nonwoven Fabrics
title_sort dynamic tensile testing of needle punched nonwoven fabrics
topic split Hopkinson bar
nonwoven fabrics
experimental mechanics
wave propagation
low impedance
url https://www.mdpi.com/2076-3417/10/15/5081
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