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Mechanical Properties and Energy Absorption Characteristics of Additively Manufactured Lightweight Novel Re-Entrant Plate-Based Lattice Structures

In this work, three novel re-entrant plate lattice structures (LSs) have been designed by transforming conventional truss-based lattices into hybrid-plate based lattices, namely, flat-plate modified auxetic (FPMA), vintile (FPV), and tesseract (FPT). Additive manufacturing based on stereolithography...

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Autores principales: Al Hassanieh, Sultan, Alhantoobi, Ahmed, Khan, Kamran A., Khan, Muhammad A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8624896/
https://www.ncbi.nlm.nih.gov/pubmed/34833180
http://dx.doi.org/10.3390/polym13223882
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author Al Hassanieh, Sultan
Alhantoobi, Ahmed
Khan, Kamran A.
Khan, Muhammad A.
author_facet Al Hassanieh, Sultan
Alhantoobi, Ahmed
Khan, Kamran A.
Khan, Muhammad A.
author_sort Al Hassanieh, Sultan
collection PubMed
description In this work, three novel re-entrant plate lattice structures (LSs) have been designed by transforming conventional truss-based lattices into hybrid-plate based lattices, namely, flat-plate modified auxetic (FPMA), vintile (FPV), and tesseract (FPT). Additive manufacturing based on stereolithography (SLA) technology was utilized to fabricate the tensile, compressive, and LS specimens with different relative densities (ρ). The base material’s mechanical properties obtained through mechanical testing were used in a finite element-based numerical homogenization analysis to study the elastic anisotropy of the LSs. Both the FPV and FPMA showed anisotropic behavior; however, the FPT showed cubic symmetry. The universal anisotropic index was found highest for FPV and lowest for FPMA, and it followed the power-law dependence of ρ. The quasi-static compressive response of the LSs was investigated. The Gibson–Ashby power law (≈ρ(n)) analysis revealed that the FPMA’s Young’s modulus was the highest with a mixed bending–stretching behavior (≈ρ(1.30)), the FPV showed a bending-dominated behavior (≈ρ(3.59)), and the FPT showed a stretching-dominated behavior (≈ρ(1.15)). Excellent mechanical properties along with superior energy absorption capabilities were observed, with the FPT showing a specific energy absorption of 4.5 J/g, surpassing most reported lattices while having a far lower density.
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spelling pubmed-86248962021-11-27 Mechanical Properties and Energy Absorption Characteristics of Additively Manufactured Lightweight Novel Re-Entrant Plate-Based Lattice Structures Al Hassanieh, Sultan Alhantoobi, Ahmed Khan, Kamran A. Khan, Muhammad A. Polymers (Basel) Article In this work, three novel re-entrant plate lattice structures (LSs) have been designed by transforming conventional truss-based lattices into hybrid-plate based lattices, namely, flat-plate modified auxetic (FPMA), vintile (FPV), and tesseract (FPT). Additive manufacturing based on stereolithography (SLA) technology was utilized to fabricate the tensile, compressive, and LS specimens with different relative densities (ρ). The base material’s mechanical properties obtained through mechanical testing were used in a finite element-based numerical homogenization analysis to study the elastic anisotropy of the LSs. Both the FPV and FPMA showed anisotropic behavior; however, the FPT showed cubic symmetry. The universal anisotropic index was found highest for FPV and lowest for FPMA, and it followed the power-law dependence of ρ. The quasi-static compressive response of the LSs was investigated. The Gibson–Ashby power law (≈ρ(n)) analysis revealed that the FPMA’s Young’s modulus was the highest with a mixed bending–stretching behavior (≈ρ(1.30)), the FPV showed a bending-dominated behavior (≈ρ(3.59)), and the FPT showed a stretching-dominated behavior (≈ρ(1.15)). Excellent mechanical properties along with superior energy absorption capabilities were observed, with the FPT showing a specific energy absorption of 4.5 J/g, surpassing most reported lattices while having a far lower density. MDPI 2021-11-10 /pmc/articles/PMC8624896/ /pubmed/34833180 http://dx.doi.org/10.3390/polym13223882 Text en © 2021 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
Al Hassanieh, Sultan
Alhantoobi, Ahmed
Khan, Kamran A.
Khan, Muhammad A.
Mechanical Properties and Energy Absorption Characteristics of Additively Manufactured Lightweight Novel Re-Entrant Plate-Based Lattice Structures
title Mechanical Properties and Energy Absorption Characteristics of Additively Manufactured Lightweight Novel Re-Entrant Plate-Based Lattice Structures
title_full Mechanical Properties and Energy Absorption Characteristics of Additively Manufactured Lightweight Novel Re-Entrant Plate-Based Lattice Structures
title_fullStr Mechanical Properties and Energy Absorption Characteristics of Additively Manufactured Lightweight Novel Re-Entrant Plate-Based Lattice Structures
title_full_unstemmed Mechanical Properties and Energy Absorption Characteristics of Additively Manufactured Lightweight Novel Re-Entrant Plate-Based Lattice Structures
title_short Mechanical Properties and Energy Absorption Characteristics of Additively Manufactured Lightweight Novel Re-Entrant Plate-Based Lattice Structures
title_sort mechanical properties and energy absorption characteristics of additively manufactured lightweight novel re-entrant plate-based lattice structures
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8624896/
https://www.ncbi.nlm.nih.gov/pubmed/34833180
http://dx.doi.org/10.3390/polym13223882
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