Compressive behaviour of 3D printed thermoplastic polyurethane honeycombs with graded densities
Fused filament fabrication of thermoplastic polyurethanes (TPUs) offers a capability to manufacture tailorable, flexible honeycomb structures which can be optimised for energy absorbing applications. This work explores the effect of a range of grading methodologies on the energy absorbing and dampin...
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doaj-3adc89c0bf584df5beb31a7372a24d832020-11-25T00:11:18ZengElsevierMaterials & Design0264-12752019-01-01162130142Compressive behaviour of 3D printed thermoplastic polyurethane honeycombs with graded densitiesSimon R.G. Bates0Ian R. Farrow1Richard S. Trask2Corresponding author.; Bristol Composites Institute (ACCIS), Department of Aerospace Engineering, University of Bristol, Queen’s Building, University Walk, Bristol, BS8 1TR, UKBristol Composites Institute (ACCIS), Department of Aerospace Engineering, University of Bristol, Queen’s Building, University Walk, Bristol, BS8 1TR, UKBristol Composites Institute (ACCIS), Department of Aerospace Engineering, University of Bristol, Queen’s Building, University Walk, Bristol, BS8 1TR, UKFused filament fabrication of thermoplastic polyurethanes (TPUs) offers a capability to manufacture tailorable, flexible honeycomb structures which can be optimised for energy absorbing applications. This work explores the effect of a range of grading methodologies on the energy absorbing and damping behaviour of flexible TPU honeycomb structures. By applying density grading, the energy absorbing and damping profiles are significantly modified from the uniform density equivalent. A 3D-printing procedure was developed which allowed the manufacture of high-quality structures, which underwent cyclic loading to densification without failure. Graded honeycomb architectures had an average relative density of 0.375 ± 0.05. After quasi-static testing, arrays were subjected to sinusoidal compression over a range of amplitudes at 0.5 Hz. By grading the structural density in different ways, mechanical damping was modified. Cyclic compressive testing also showed how strain-softening of the TPU parent material could lead to reduced damping over the course of 50 cycles. Samples were subjected to impact loading at strain-rates of up to 51 s-1 and specific impact energies of up to 270 mJ/cm3. Lower peak loads were transferred for graded samples for the most severe impact cases. This behaviour reveals the potential of density grading of TPU structures to provide superior impact protection in extreme environmental conditions. Keywords: Additive manufacturing, Cellular structures, Functional grading, Thermoplastic polyurethanehttp://www.sciencedirect.com/science/article/pii/S0264127518308256 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Simon R.G. Bates Ian R. Farrow Richard S. Trask |
spellingShingle |
Simon R.G. Bates Ian R. Farrow Richard S. Trask Compressive behaviour of 3D printed thermoplastic polyurethane honeycombs with graded densities Materials & Design |
author_facet |
Simon R.G. Bates Ian R. Farrow Richard S. Trask |
author_sort |
Simon R.G. Bates |
title |
Compressive behaviour of 3D printed thermoplastic polyurethane honeycombs with graded densities |
title_short |
Compressive behaviour of 3D printed thermoplastic polyurethane honeycombs with graded densities |
title_full |
Compressive behaviour of 3D printed thermoplastic polyurethane honeycombs with graded densities |
title_fullStr |
Compressive behaviour of 3D printed thermoplastic polyurethane honeycombs with graded densities |
title_full_unstemmed |
Compressive behaviour of 3D printed thermoplastic polyurethane honeycombs with graded densities |
title_sort |
compressive behaviour of 3d printed thermoplastic polyurethane honeycombs with graded densities |
publisher |
Elsevier |
series |
Materials & Design |
issn |
0264-1275 |
publishDate |
2019-01-01 |
description |
Fused filament fabrication of thermoplastic polyurethanes (TPUs) offers a capability to manufacture tailorable, flexible honeycomb structures which can be optimised for energy absorbing applications. This work explores the effect of a range of grading methodologies on the energy absorbing and damping behaviour of flexible TPU honeycomb structures. By applying density grading, the energy absorbing and damping profiles are significantly modified from the uniform density equivalent. A 3D-printing procedure was developed which allowed the manufacture of high-quality structures, which underwent cyclic loading to densification without failure. Graded honeycomb architectures had an average relative density of 0.375 ± 0.05. After quasi-static testing, arrays were subjected to sinusoidal compression over a range of amplitudes at 0.5 Hz. By grading the structural density in different ways, mechanical damping was modified. Cyclic compressive testing also showed how strain-softening of the TPU parent material could lead to reduced damping over the course of 50 cycles. Samples were subjected to impact loading at strain-rates of up to 51 s-1 and specific impact energies of up to 270 mJ/cm3. Lower peak loads were transferred for graded samples for the most severe impact cases. This behaviour reveals the potential of density grading of TPU structures to provide superior impact protection in extreme environmental conditions. Keywords: Additive manufacturing, Cellular structures, Functional grading, Thermoplastic polyurethane |
url |
http://www.sciencedirect.com/science/article/pii/S0264127518308256 |
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