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Optimal Design of CNT-Nanocomposite Nonlinear Shells

Carbon nanotube/polymer nanocomposite plate- and shell-like structures will be the next generation lightweight structures in advanced applications due to the superior multifunctional properties combined with lightness. Here material optimization of carbon nanotube/polymer nanocomposite beams and she...

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Autores principales: Leonetti, Leonardo, Garcea, Giovanni, Magisano, Domenico, Liguori, Francesco, Formica, Giovanni, Lacarbonara, Walter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7764713/
https://www.ncbi.nlm.nih.gov/pubmed/33322062
http://dx.doi.org/10.3390/nano10122484
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author Leonetti, Leonardo
Garcea, Giovanni
Magisano, Domenico
Liguori, Francesco
Formica, Giovanni
Lacarbonara, Walter
author_facet Leonetti, Leonardo
Garcea, Giovanni
Magisano, Domenico
Liguori, Francesco
Formica, Giovanni
Lacarbonara, Walter
author_sort Leonetti, Leonardo
collection PubMed
description Carbon nanotube/polymer nanocomposite plate- and shell-like structures will be the next generation lightweight structures in advanced applications due to the superior multifunctional properties combined with lightness. Here material optimization of carbon nanotube/polymer nanocomposite beams and shells is tackled via ad hoc nonlinear finite element schemes so as to control the loss of stability and overall nonlinear response. Three types of optimizations are considered: variable through-the-thickness volume fraction of random carbon nanotubes (CNTs) distributions, variable volume fraction of randomly oriented CNTs within the mid-surface, aligned CNTs with variable orientation with respect to the mid-surface. The collapse load, which includes both limit points and deformation thresholds, is chosen as the objective/cost function. An efficient computation of the cost function is carried out using the Koiter reduced order model obtained starting from an isogeometric solid-shell model to accurately describe the point-wise material distribution. The sensitivity to geometrical imperfections is also investigated. The optimization is carried out making use of the Global Convergent Method of Moving Asymptotes. The extensive numerical analyses show that varying the volume fraction distribution as well as the CNTs orientation can lead to significantly enhanced performances towards the loss of elastic stability making these lightweight structures more stable. The most striking result is that for curved shells, the unstable postbuckling response of the baseline material can be turned into a globally stable response maintaining the same amount of nanostructural reinforcement but simply tailoring strategically its distribution.
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spelling pubmed-77647132020-12-27 Optimal Design of CNT-Nanocomposite Nonlinear Shells Leonetti, Leonardo Garcea, Giovanni Magisano, Domenico Liguori, Francesco Formica, Giovanni Lacarbonara, Walter Nanomaterials (Basel) Article Carbon nanotube/polymer nanocomposite plate- and shell-like structures will be the next generation lightweight structures in advanced applications due to the superior multifunctional properties combined with lightness. Here material optimization of carbon nanotube/polymer nanocomposite beams and shells is tackled via ad hoc nonlinear finite element schemes so as to control the loss of stability and overall nonlinear response. Three types of optimizations are considered: variable through-the-thickness volume fraction of random carbon nanotubes (CNTs) distributions, variable volume fraction of randomly oriented CNTs within the mid-surface, aligned CNTs with variable orientation with respect to the mid-surface. The collapse load, which includes both limit points and deformation thresholds, is chosen as the objective/cost function. An efficient computation of the cost function is carried out using the Koiter reduced order model obtained starting from an isogeometric solid-shell model to accurately describe the point-wise material distribution. The sensitivity to geometrical imperfections is also investigated. The optimization is carried out making use of the Global Convergent Method of Moving Asymptotes. The extensive numerical analyses show that varying the volume fraction distribution as well as the CNTs orientation can lead to significantly enhanced performances towards the loss of elastic stability making these lightweight structures more stable. The most striking result is that for curved shells, the unstable postbuckling response of the baseline material can be turned into a globally stable response maintaining the same amount of nanostructural reinforcement but simply tailoring strategically its distribution. MDPI 2020-12-10 /pmc/articles/PMC7764713/ /pubmed/33322062 http://dx.doi.org/10.3390/nano10122484 Text en © 2020 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
Leonetti, Leonardo
Garcea, Giovanni
Magisano, Domenico
Liguori, Francesco
Formica, Giovanni
Lacarbonara, Walter
Optimal Design of CNT-Nanocomposite Nonlinear Shells
title Optimal Design of CNT-Nanocomposite Nonlinear Shells
title_full Optimal Design of CNT-Nanocomposite Nonlinear Shells
title_fullStr Optimal Design of CNT-Nanocomposite Nonlinear Shells
title_full_unstemmed Optimal Design of CNT-Nanocomposite Nonlinear Shells
title_short Optimal Design of CNT-Nanocomposite Nonlinear Shells
title_sort optimal design of cnt-nanocomposite nonlinear shells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7764713/
https://www.ncbi.nlm.nih.gov/pubmed/33322062
http://dx.doi.org/10.3390/nano10122484
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