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Dynamic Compressive and Flexural Behaviour of Re-Entrant Auxetics: A Numerical Study

Re-entrant auxetics offer the potential to address lightweight challenges while exhibiting superior impact resistance, energy absorption capacity, and a synclastic curvature deformation mechanism for a wide range of engineering applications. This paper presents a systematic numerical study on the co...

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Autores principales: Gao, Dianwei, Zhang, Jianhua, Zhang, Chunwei, You, Yun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10419535/
https://www.ncbi.nlm.nih.gov/pubmed/37569923
http://dx.doi.org/10.3390/ma16155219
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author Gao, Dianwei
Zhang, Jianhua
Zhang, Chunwei
You, Yun
author_facet Gao, Dianwei
Zhang, Jianhua
Zhang, Chunwei
You, Yun
author_sort Gao, Dianwei
collection PubMed
description Re-entrant auxetics offer the potential to address lightweight challenges while exhibiting superior impact resistance, energy absorption capacity, and a synclastic curvature deformation mechanism for a wide range of engineering applications. This paper presents a systematic numerical study on the compressive and flexural behaviour of re-entrant honeycomb and 3D re-entrant lattice using the finite element method implemented with ABAQUS/Explicit, in comparison with that of regular hexagonal honeycomb. The finite element model was validated with experimental data obtained from the literature, followed by a mesh size sensitivity analysis performed to determine the optimal element size. A series of simulations was then conducted to investigate the failure mechanisms and effects of different factors including strain rate, relative density, unit cell number, and material property on the dynamic response of re-entrant auxetics subjected to axial and flexural loading. The simulation results indicate that 3D re-entrant lattice is superior to hexagonal honeycomb and re-entrant honeycomb in energy dissipation, which is insensitive to unit cell number. Replacing re-entrant honeycomb with 3D re-entrant lattice leads to an 884% increase in plastic energy dissipation and a 694% rise in initial peak stress. Under flexural loading, the re-entrant honeycomb shows a small flexural modulus, but maintains the elastic deformation regime over a large range of strain. In all cases, the compressive and flexural dynamic response of re-entrant auxetics exhibits a strong dependence on strain rate, relative density, and material property. This study provides intuitive insight into the compressive and flexural performance of re-entrant auxetics, which can facilitate the optimal design of auxetic composites.
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spelling pubmed-104195352023-08-12 Dynamic Compressive and Flexural Behaviour of Re-Entrant Auxetics: A Numerical Study Gao, Dianwei Zhang, Jianhua Zhang, Chunwei You, Yun Materials (Basel) Article Re-entrant auxetics offer the potential to address lightweight challenges while exhibiting superior impact resistance, energy absorption capacity, and a synclastic curvature deformation mechanism for a wide range of engineering applications. This paper presents a systematic numerical study on the compressive and flexural behaviour of re-entrant honeycomb and 3D re-entrant lattice using the finite element method implemented with ABAQUS/Explicit, in comparison with that of regular hexagonal honeycomb. The finite element model was validated with experimental data obtained from the literature, followed by a mesh size sensitivity analysis performed to determine the optimal element size. A series of simulations was then conducted to investigate the failure mechanisms and effects of different factors including strain rate, relative density, unit cell number, and material property on the dynamic response of re-entrant auxetics subjected to axial and flexural loading. The simulation results indicate that 3D re-entrant lattice is superior to hexagonal honeycomb and re-entrant honeycomb in energy dissipation, which is insensitive to unit cell number. Replacing re-entrant honeycomb with 3D re-entrant lattice leads to an 884% increase in plastic energy dissipation and a 694% rise in initial peak stress. Under flexural loading, the re-entrant honeycomb shows a small flexural modulus, but maintains the elastic deformation regime over a large range of strain. In all cases, the compressive and flexural dynamic response of re-entrant auxetics exhibits a strong dependence on strain rate, relative density, and material property. This study provides intuitive insight into the compressive and flexural performance of re-entrant auxetics, which can facilitate the optimal design of auxetic composites. MDPI 2023-07-25 /pmc/articles/PMC10419535/ /pubmed/37569923 http://dx.doi.org/10.3390/ma16155219 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Gao, Dianwei
Zhang, Jianhua
Zhang, Chunwei
You, Yun
Dynamic Compressive and Flexural Behaviour of Re-Entrant Auxetics: A Numerical Study
title Dynamic Compressive and Flexural Behaviour of Re-Entrant Auxetics: A Numerical Study
title_full Dynamic Compressive and Flexural Behaviour of Re-Entrant Auxetics: A Numerical Study
title_fullStr Dynamic Compressive and Flexural Behaviour of Re-Entrant Auxetics: A Numerical Study
title_full_unstemmed Dynamic Compressive and Flexural Behaviour of Re-Entrant Auxetics: A Numerical Study
title_short Dynamic Compressive and Flexural Behaviour of Re-Entrant Auxetics: A Numerical Study
title_sort dynamic compressive and flexural behaviour of re-entrant auxetics: a numerical study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10419535/
https://www.ncbi.nlm.nih.gov/pubmed/37569923
http://dx.doi.org/10.3390/ma16155219
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