Energy absorption and self-sensing performance of 3D printed CF/PEEK cellular composites

We report the energy absorption and piezoresistive self-sensing performance of 3D printed discontinuous carbon fiber (CF)-reinforced polyetheretherketone (PEEK) cellular composites. Experiments conducted on three different 2D lattices with hexagonal, chiral and re-entrant topologies of the same rela...

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Main Authors: J. Jefferson Andrew, Hasan Alhashmi, Andreas Schiffer, S. Kumar, Vikram S. Deshpande
Format: Article
Language:English
Published: Elsevier 2021-10-01
Series:Materials & Design
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127521004160
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spelling doaj-ebcbd114c99c40f984ccc5177820b3422021-08-12T04:32:45ZengElsevierMaterials & Design0264-12752021-10-01208109863Energy absorption and self-sensing performance of 3D printed CF/PEEK cellular compositesJ. Jefferson Andrew0Hasan Alhashmi1Andreas Schiffer2S. Kumar3Vikram S. Deshpande4Department of Mechanical Engineering, Khalifa University, P.O. Box 127788, Abu Dhabi, United Arab EmiratesDepartment of Mechanical Engineering, Khalifa University, P.O. Box 127788, Abu Dhabi, United Arab EmiratesDepartment of Mechanical Engineering, Khalifa University, P.O. Box 127788, Abu Dhabi, United Arab EmiratesJames Watt School of Engineering, University of Glasgow, Glasgow G12 8QQ, UK; Department of Mechanical Engineering, Khalifa University, P.O. Box 127788, Abu Dhabi, United Arab Emirates; Corresponding author at: James Watt School of Engineering, University of Glasgow, Glasgow G12 8QQ, UK.Department of Engineering, University of Cambridge, Trumpington Street, Cambridge CB2 1PZ, UKWe report the energy absorption and piezoresistive self-sensing performance of 3D printed discontinuous carbon fiber (CF)-reinforced polyetheretherketone (PEEK) cellular composites. Experiments conducted on three different 2D lattices with hexagonal, chiral and re-entrant topologies of the same relative density (33%) and CF loading (30 wt%) reveal that the CF/PEEK hexagonal lattice (HL), due its relatively brittle response, shows about 40% and 9% decrease in specific energy absorption (SEA) under in-plane and out-of-plane compression, respectively, compared with PEEK HL. While the collapse response of PEEK HL is nearly insensitive to the strain-rate over 43 ≤ ε̇ ≤ 106 s−1, we observe a twenty-fold increase in peak stress and a five-fold increase in SEA under in-plane impact loading over the same range of strain-rates for the CF/PEEK HL. The CF/PEEK lattices exhibit pronounced piezoresistive response under both in-plane and out-of-plane compression with maximum sensitivity of 3.1 and 5.2, respectively, for the re-entrant lattice, offering insight into the damage-state. Higher damage sensitivity indicates faster percolation of new contacts due to folds forming between the cell walls within the lattice under compression. The energy-absorbing and strain- and damage-sensing nature of 3D printed CF/PEEK lattices demonstrated here offers insight into the design of lightweight, high-performance multifunctional lattices.http://www.sciencedirect.com/science/article/pii/S02641275210041603D PrintingHoneycomb latticesLow-velocity impactPiezoresistive self-sensingCF/PEEK cellular composites
collection DOAJ
language English
format Article
sources DOAJ
author J. Jefferson Andrew
Hasan Alhashmi
Andreas Schiffer
S. Kumar
Vikram S. Deshpande
spellingShingle J. Jefferson Andrew
Hasan Alhashmi
Andreas Schiffer
S. Kumar
Vikram S. Deshpande
Energy absorption and self-sensing performance of 3D printed CF/PEEK cellular composites
Materials & Design
3D Printing
Honeycomb lattices
Low-velocity impact
Piezoresistive self-sensing
CF/PEEK cellular composites
author_facet J. Jefferson Andrew
Hasan Alhashmi
Andreas Schiffer
S. Kumar
Vikram S. Deshpande
author_sort J. Jefferson Andrew
title Energy absorption and self-sensing performance of 3D printed CF/PEEK cellular composites
title_short Energy absorption and self-sensing performance of 3D printed CF/PEEK cellular composites
title_full Energy absorption and self-sensing performance of 3D printed CF/PEEK cellular composites
title_fullStr Energy absorption and self-sensing performance of 3D printed CF/PEEK cellular composites
title_full_unstemmed Energy absorption and self-sensing performance of 3D printed CF/PEEK cellular composites
title_sort energy absorption and self-sensing performance of 3d printed cf/peek cellular composites
publisher Elsevier
series Materials & Design
issn 0264-1275
publishDate 2021-10-01
description We report the energy absorption and piezoresistive self-sensing performance of 3D printed discontinuous carbon fiber (CF)-reinforced polyetheretherketone (PEEK) cellular composites. Experiments conducted on three different 2D lattices with hexagonal, chiral and re-entrant topologies of the same relative density (33%) and CF loading (30 wt%) reveal that the CF/PEEK hexagonal lattice (HL), due its relatively brittle response, shows about 40% and 9% decrease in specific energy absorption (SEA) under in-plane and out-of-plane compression, respectively, compared with PEEK HL. While the collapse response of PEEK HL is nearly insensitive to the strain-rate over 43 ≤ ε̇ ≤ 106 s−1, we observe a twenty-fold increase in peak stress and a five-fold increase in SEA under in-plane impact loading over the same range of strain-rates for the CF/PEEK HL. The CF/PEEK lattices exhibit pronounced piezoresistive response under both in-plane and out-of-plane compression with maximum sensitivity of 3.1 and 5.2, respectively, for the re-entrant lattice, offering insight into the damage-state. Higher damage sensitivity indicates faster percolation of new contacts due to folds forming between the cell walls within the lattice under compression. The energy-absorbing and strain- and damage-sensing nature of 3D printed CF/PEEK lattices demonstrated here offers insight into the design of lightweight, high-performance multifunctional lattices.
topic 3D Printing
Honeycomb lattices
Low-velocity impact
Piezoresistive self-sensing
CF/PEEK cellular composites
url http://www.sciencedirect.com/science/article/pii/S0264127521004160
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