Mechanical Properties of Octet Truss and Pyramidal Lattice Cells

Metal cellular lattice structure is a new class of material that combines useful mechanical properties of metals with customized geometry to provide greater stiffness, strength-to-weight ratio and better energy absorption property. Metal cellular lattice structures are usually made by connecting str...

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Main Author: Lee, En Hao
Other Authors: Chen Songlin
Format: Final Year Project
Language:English
Published: 2016
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Online Access:http://hdl.handle.net/10356/68612
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-686122023-03-04T19:33:05Z Mechanical Properties of Octet Truss and Pyramidal Lattice Cells Lee, En Hao Chen Songlin School of Mechanical and Aerospace Engineering DRNTU::Engineering Metal cellular lattice structure is a new class of material that combines useful mechanical properties of metals with customized geometry to provide greater stiffness, strength-to-weight ratio and better energy absorption property. Metal cellular lattice structures are usually made by connecting struts in configurations which determines the kind of deformation they undergo when loaded. Stretch-dominated structures possess higher load bearing capability but lower energy absorption capability than bending-dominated structures. The chosen stretch-dominated structures, pyramidal and octet truss, were designed with varying lattice unit-cell size and relative density in this paper. Unit-cell size and relative density were both varied over three levels – 2 mm, 3 mm and 4 mm, and 20%, 30% and 40% respectively. Total of 4 replicates were created for each combination of design parameters. Physical and mechanical characteristics of the specimens were documented through the use of experiments. Results were then analysed statistically to determine the effects of design parameters have on load bearing capability of specimens. Modulus and yield strength were used as indicators of load bearing capability. This study concludes that topology and relative density influence a specimen’s modulus and yield strength significantly. There is a positive relation between relative density and modulus and yield strength of a specimen. Pyramidal topology offers better load bearing capability than octet truss of the same relative density and cell size. Bachelor of Engineering (Aerospace Engineering) 2016-05-30T02:35:03Z 2016-05-30T02:35:03Z 2016 Final Year Project (FYP) http://hdl.handle.net/10356/68612 en Nanyang Technological University 61. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering
spellingShingle DRNTU::Engineering
Lee, En Hao
Mechanical Properties of Octet Truss and Pyramidal Lattice Cells
description Metal cellular lattice structure is a new class of material that combines useful mechanical properties of metals with customized geometry to provide greater stiffness, strength-to-weight ratio and better energy absorption property. Metal cellular lattice structures are usually made by connecting struts in configurations which determines the kind of deformation they undergo when loaded. Stretch-dominated structures possess higher load bearing capability but lower energy absorption capability than bending-dominated structures. The chosen stretch-dominated structures, pyramidal and octet truss, were designed with varying lattice unit-cell size and relative density in this paper. Unit-cell size and relative density were both varied over three levels – 2 mm, 3 mm and 4 mm, and 20%, 30% and 40% respectively. Total of 4 replicates were created for each combination of design parameters. Physical and mechanical characteristics of the specimens were documented through the use of experiments. Results were then analysed statistically to determine the effects of design parameters have on load bearing capability of specimens. Modulus and yield strength were used as indicators of load bearing capability. This study concludes that topology and relative density influence a specimen’s modulus and yield strength significantly. There is a positive relation between relative density and modulus and yield strength of a specimen. Pyramidal topology offers better load bearing capability than octet truss of the same relative density and cell size.
author2 Chen Songlin
author_facet Chen Songlin
Lee, En Hao
format Final Year Project
author Lee, En Hao
author_sort Lee, En Hao
title Mechanical Properties of Octet Truss and Pyramidal Lattice Cells
title_short Mechanical Properties of Octet Truss and Pyramidal Lattice Cells
title_full Mechanical Properties of Octet Truss and Pyramidal Lattice Cells
title_fullStr Mechanical Properties of Octet Truss and Pyramidal Lattice Cells
title_full_unstemmed Mechanical Properties of Octet Truss and Pyramidal Lattice Cells
title_sort mechanical properties of octet truss and pyramidal lattice cells
publishDate 2016
url http://hdl.handle.net/10356/68612
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