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Mechanical Properties of Additively Manufactured Thick Honeycombs

Honeycombs resemble the structure of a number of natural and biological materials such as cancellous bone, wood, and cork. Thick honeycomb could be also used for energy absorption applications. Moreover, studying the mechanical behavior of honeycombs under in-plane loading could help understanding t...

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Autores principales: Hedayati, Reza, Sadighi, Mojtaba, Mohammadi Aghdam, Mohammad, Zadpoor, Amir Abbas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5509007/
https://www.ncbi.nlm.nih.gov/pubmed/28773735
http://dx.doi.org/10.3390/ma9080613
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author Hedayati, Reza
Sadighi, Mojtaba
Mohammadi Aghdam, Mohammad
Zadpoor, Amir Abbas
author_facet Hedayati, Reza
Sadighi, Mojtaba
Mohammadi Aghdam, Mohammad
Zadpoor, Amir Abbas
author_sort Hedayati, Reza
collection PubMed
description Honeycombs resemble the structure of a number of natural and biological materials such as cancellous bone, wood, and cork. Thick honeycomb could be also used for energy absorption applications. Moreover, studying the mechanical behavior of honeycombs under in-plane loading could help understanding the mechanical behavior of more complex 3D tessellated structures such as porous biomaterials. In this paper, we study the mechanical behavior of thick honeycombs made using additive manufacturing techniques that allow for fabrication of honeycombs with arbitrary and precisely controlled thickness. Thick honeycombs with different wall thicknesses were produced from polylactic acid (PLA) using fused deposition modelling, i.e., an additive manufacturing technique. The samples were mechanically tested in-plane under compression to determine their mechanical properties. We also obtained exact analytical solutions for the stiffness matrix of thick hexagonal honeycombs using both Euler-Bernoulli and Timoshenko beam theories. The stiffness matrix was then used to derive analytical relationships that describe the elastic modulus, yield stress, and Poisson’s ratio of thick honeycombs. Finite element models were also built for computational analysis of the mechanical behavior of thick honeycombs under compression. The mechanical properties obtained using our analytical relationships were compared with experimental observations and computational results as well as with analytical solutions available in the literature. It was found that the analytical solutions presented here are in good agreement with experimental and computational results even for very thick honeycombs, whereas the analytical solutions available in the literature show a large deviation from experimental observation, computational results, and our analytical solutions.
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spelling pubmed-55090072017-07-28 Mechanical Properties of Additively Manufactured Thick Honeycombs Hedayati, Reza Sadighi, Mojtaba Mohammadi Aghdam, Mohammad Zadpoor, Amir Abbas Materials (Basel) Article Honeycombs resemble the structure of a number of natural and biological materials such as cancellous bone, wood, and cork. Thick honeycomb could be also used for energy absorption applications. Moreover, studying the mechanical behavior of honeycombs under in-plane loading could help understanding the mechanical behavior of more complex 3D tessellated structures such as porous biomaterials. In this paper, we study the mechanical behavior of thick honeycombs made using additive manufacturing techniques that allow for fabrication of honeycombs with arbitrary and precisely controlled thickness. Thick honeycombs with different wall thicknesses were produced from polylactic acid (PLA) using fused deposition modelling, i.e., an additive manufacturing technique. The samples were mechanically tested in-plane under compression to determine their mechanical properties. We also obtained exact analytical solutions for the stiffness matrix of thick hexagonal honeycombs using both Euler-Bernoulli and Timoshenko beam theories. The stiffness matrix was then used to derive analytical relationships that describe the elastic modulus, yield stress, and Poisson’s ratio of thick honeycombs. Finite element models were also built for computational analysis of the mechanical behavior of thick honeycombs under compression. The mechanical properties obtained using our analytical relationships were compared with experimental observations and computational results as well as with analytical solutions available in the literature. It was found that the analytical solutions presented here are in good agreement with experimental and computational results even for very thick honeycombs, whereas the analytical solutions available in the literature show a large deviation from experimental observation, computational results, and our analytical solutions. MDPI 2016-07-23 /pmc/articles/PMC5509007/ /pubmed/28773735 http://dx.doi.org/10.3390/ma9080613 Text en © 2016 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hedayati, Reza
Sadighi, Mojtaba
Mohammadi Aghdam, Mohammad
Zadpoor, Amir Abbas
Mechanical Properties of Additively Manufactured Thick Honeycombs
title Mechanical Properties of Additively Manufactured Thick Honeycombs
title_full Mechanical Properties of Additively Manufactured Thick Honeycombs
title_fullStr Mechanical Properties of Additively Manufactured Thick Honeycombs
title_full_unstemmed Mechanical Properties of Additively Manufactured Thick Honeycombs
title_short Mechanical Properties of Additively Manufactured Thick Honeycombs
title_sort mechanical properties of additively manufactured thick honeycombs
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5509007/
https://www.ncbi.nlm.nih.gov/pubmed/28773735
http://dx.doi.org/10.3390/ma9080613
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