Numerical study of 3D-printed metallic metamaterial for high energy absorption

This project presents a numerical study of a 3D-printed metallic metamaterial for high energy absorption. Inspired by auxetic designs, the metamaterial is designed by incorporating the missing rib structure into its lattice construction. Its mechanical properties are optimised using Finite Element (...

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Main Author: Au Yong, Marcel Chong Gin
Other Authors: Zhou Kun
Format: Final Year Project
Language:English
Published: Nanyang Technological University 2023
Subjects:
Online Access:https://hdl.handle.net/10356/167992
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1679922023-06-10T16:50:50Z Numerical study of 3D-printed metallic metamaterial for high energy absorption Au Yong, Marcel Chong Gin Zhou Kun School of Mechanical and Aerospace Engineering kzhou@ntu.edu.sg Engineering::Mathematics and analysis::Simulations Engineering::Materials::Material testing and characterization Engineering::Mechanical engineering This project presents a numerical study of a 3D-printed metallic metamaterial for high energy absorption. Inspired by auxetic designs, the metamaterial is designed by incorporating the missing rib structure into its lattice construction. Its mechanical properties are optimised using Finite Element (FE) simulations and experimental validation. The goal of this study is to derive the optimal lattice structure with the highest energy absorption capacity by investigating the impact of its geometric parameters. The simulations are carried out using FE software and the properties of the metamaterial are analysed under different quasistatic loading conditions, namely compressional and tensile. The effects of the geometric parameters such as the plate thickness, plate curvature, and hollow diameter, on the mechanical properties of the metamaterial are investigated. The findings demonstrate that the plate thickness and hollow diameter significantly affect the energy absorption capacity of the metamaterial while the plate curvature has an impact on the metamaterial’s isotropy. Moreover, the optimised metamaterial is 3D-printed using Selective Laser Melting (SLM) method, and its mechanical properties are characterized experimentally. The experimental data are found to be in good agreement with the simulation results, confirming the validity of the numerical model. The study offers a thorough understanding of the mechanical characteristics and energy absorption capability of 3D-printed metallic metamaterials, which can be helpful in developing new metamaterials for high energy absorption applications. Bachelor of Engineering (Mechanical Engineering) 2023-06-06T06:02:14Z 2023-06-06T06:02:14Z 2023 Final Year Project (FYP) Au Yong, M. C. G. (2023). Numerical study of 3D-printed metallic metamaterial for high energy absorption. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/167992 https://hdl.handle.net/10356/167992 en A172 application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Mathematics and analysis::Simulations
Engineering::Materials::Material testing and characterization
Engineering::Mechanical engineering
spellingShingle Engineering::Mathematics and analysis::Simulations
Engineering::Materials::Material testing and characterization
Engineering::Mechanical engineering
Au Yong, Marcel Chong Gin
Numerical study of 3D-printed metallic metamaterial for high energy absorption
description This project presents a numerical study of a 3D-printed metallic metamaterial for high energy absorption. Inspired by auxetic designs, the metamaterial is designed by incorporating the missing rib structure into its lattice construction. Its mechanical properties are optimised using Finite Element (FE) simulations and experimental validation. The goal of this study is to derive the optimal lattice structure with the highest energy absorption capacity by investigating the impact of its geometric parameters. The simulations are carried out using FE software and the properties of the metamaterial are analysed under different quasistatic loading conditions, namely compressional and tensile. The effects of the geometric parameters such as the plate thickness, plate curvature, and hollow diameter, on the mechanical properties of the metamaterial are investigated. The findings demonstrate that the plate thickness and hollow diameter significantly affect the energy absorption capacity of the metamaterial while the plate curvature has an impact on the metamaterial’s isotropy. Moreover, the optimised metamaterial is 3D-printed using Selective Laser Melting (SLM) method, and its mechanical properties are characterized experimentally. The experimental data are found to be in good agreement with the simulation results, confirming the validity of the numerical model. The study offers a thorough understanding of the mechanical characteristics and energy absorption capability of 3D-printed metallic metamaterials, which can be helpful in developing new metamaterials for high energy absorption applications.
author2 Zhou Kun
author_facet Zhou Kun
Au Yong, Marcel Chong Gin
format Final Year Project
author Au Yong, Marcel Chong Gin
author_sort Au Yong, Marcel Chong Gin
title Numerical study of 3D-printed metallic metamaterial for high energy absorption
title_short Numerical study of 3D-printed metallic metamaterial for high energy absorption
title_full Numerical study of 3D-printed metallic metamaterial for high energy absorption
title_fullStr Numerical study of 3D-printed metallic metamaterial for high energy absorption
title_full_unstemmed Numerical study of 3D-printed metallic metamaterial for high energy absorption
title_sort numerical study of 3d-printed metallic metamaterial for high energy absorption
publisher Nanyang Technological University
publishDate 2023
url https://hdl.handle.net/10356/167992
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