3D printed meta-sandwich structures: Failure mechanism, energy absorption and multi-hit capability

A new class of lightweight and 3D printable architected sandwich structures, named as meta-sandwich structures, has been introduced. These lightweight sandwich structures, which have been made of mechanical metamaterials as the core, show many advantages such as high stiffness-to-weight ratio and hi...

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Main Authors: H. Yazdani Sarvestani, A.H. Akbarzadeh, A. Mirbolghasemi, K. Hermenean
Format: Article
Language:English
Published: Elsevier 2018-12-01
Series:Materials & Design
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127518306932
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author H. Yazdani Sarvestani
A.H. Akbarzadeh
A. Mirbolghasemi
K. Hermenean
author_facet H. Yazdani Sarvestani
A.H. Akbarzadeh
A. Mirbolghasemi
K. Hermenean
author_sort H. Yazdani Sarvestani
collection DOAJ
description A new class of lightweight and 3D printable architected sandwich structures, named as meta-sandwich structures, has been introduced. These lightweight sandwich structures, which have been made of mechanical metamaterials as the core, show many advantages such as high stiffness-to-weight ratio and high energy absorption capability. In this paper, finite element simulation and experimental testing were implemented to evaluate the structural durability of 3D printed meta-sandwiches under quasi-static flexure and low-velocity impact tests. We specifically investigated the failure mechanism, energy absorption and multi-hit capability of 3D printed polymeric meta-sandwich structures made of cubic, octet and Isomax cellular cores. Three-point bending experiments on 3D printed meta-sandwich beams were conducted to evaluate their flexural stiffness and quasi-static energy absorption, followed by low-velocity impact tests to determine their dynamic energy absorption and multi-hit capabilities. Analytical formulations were also developed to capture the failure mechanism in the architected sandwich structures. It is found that the core topology and geometrical parameters have significant effects on failure mechanism and energy absorption of meta-sandwich structures. For example, Isomax meta-sandwich structures show high quasi-static and dynamic impact energy absorption capabilities. Keywords: Architected meta-sandwich structures, 3D printing, Metamaterials, Failure mechanism, Energy absorption
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spelling doaj.art-8c620af1509341e286bfc611cfa9f0442022-12-21T19:01:39ZengElsevierMaterials & Design0264-12752018-12-011601791933D printed meta-sandwich structures: Failure mechanism, energy absorption and multi-hit capabilityH. Yazdani Sarvestani0A.H. Akbarzadeh1A. Mirbolghasemi2K. Hermenean3AM3L Laboratory, Department of Bioresource Engineering, McGill University, Island of Montreal, QC H9X 3V9, CanadaAM3L Laboratory, Department of Bioresource Engineering, McGill University, Island of Montreal, QC H9X 3V9, Canada; Department of Mechanical Engineering, McGill University, Montreal, QC H3A 0C3, Canada; Corresponding author at: AM3L Laboratory, Department of Bioresource Engineering, McGill University, Island of Montreal, QC H9X 3V9, Canada.AM3L Laboratory, Department of Bioresource Engineering, McGill University, Island of Montreal, QC H9X 3V9, CanadaMACHINA Corp., Edmonton, AB T6H 2H3, CanadaA new class of lightweight and 3D printable architected sandwich structures, named as meta-sandwich structures, has been introduced. These lightweight sandwich structures, which have been made of mechanical metamaterials as the core, show many advantages such as high stiffness-to-weight ratio and high energy absorption capability. In this paper, finite element simulation and experimental testing were implemented to evaluate the structural durability of 3D printed meta-sandwiches under quasi-static flexure and low-velocity impact tests. We specifically investigated the failure mechanism, energy absorption and multi-hit capability of 3D printed polymeric meta-sandwich structures made of cubic, octet and Isomax cellular cores. Three-point bending experiments on 3D printed meta-sandwich beams were conducted to evaluate their flexural stiffness and quasi-static energy absorption, followed by low-velocity impact tests to determine their dynamic energy absorption and multi-hit capabilities. Analytical formulations were also developed to capture the failure mechanism in the architected sandwich structures. It is found that the core topology and geometrical parameters have significant effects on failure mechanism and energy absorption of meta-sandwich structures. For example, Isomax meta-sandwich structures show high quasi-static and dynamic impact energy absorption capabilities. Keywords: Architected meta-sandwich structures, 3D printing, Metamaterials, Failure mechanism, Energy absorptionhttp://www.sciencedirect.com/science/article/pii/S0264127518306932
spellingShingle H. Yazdani Sarvestani
A.H. Akbarzadeh
A. Mirbolghasemi
K. Hermenean
3D printed meta-sandwich structures: Failure mechanism, energy absorption and multi-hit capability
Materials & Design
title 3D printed meta-sandwich structures: Failure mechanism, energy absorption and multi-hit capability
title_full 3D printed meta-sandwich structures: Failure mechanism, energy absorption and multi-hit capability
title_fullStr 3D printed meta-sandwich structures: Failure mechanism, energy absorption and multi-hit capability
title_full_unstemmed 3D printed meta-sandwich structures: Failure mechanism, energy absorption and multi-hit capability
title_short 3D printed meta-sandwich structures: Failure mechanism, energy absorption and multi-hit capability
title_sort 3d printed meta sandwich structures failure mechanism energy absorption and multi hit capability
url http://www.sciencedirect.com/science/article/pii/S0264127518306932
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AT ahakbarzadeh 3dprintedmetasandwichstructuresfailuremechanismenergyabsorptionandmultihitcapability
AT amirbolghasemi 3dprintedmetasandwichstructuresfailuremechanismenergyabsorptionandmultihitcapability
AT khermenean 3dprintedmetasandwichstructuresfailuremechanismenergyabsorptionandmultihitcapability