Optimization of 3D printable cellular array structures for cushioning

Cushions are energy absorbing structures or materials used in various applications including packaging, footwear and protective gears. They often come in the form of polymeric cellular structures such as foams. The cushion selection process conventionally involves testing of available foams and sele...

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Main Author: Shukri Abdul Jalil
Other Authors: Chou Siaw Meng
Format: Theses and Dissertations
Language:English
Published: 2019
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Online Access:https://hdl.handle.net/10356/82596
http://hdl.handle.net/10220/48171
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-825962023-03-11T17:35:32Z Optimization of 3D printable cellular array structures for cushioning Shukri Abdul Jalil Chou Siaw Meng Tai Kang School of Mechanical and Aerospace Engineering Singapore Centre for 3D Printing DRNTU::Engineering::Mechanical engineering Cushions are energy absorbing structures or materials used in various applications including packaging, footwear and protective gears. They often come in the form of polymeric cellular structures such as foams. The cushion selection process conventionally involves testing of available foams and selecting the foam which is best suited for the target application. Optimized cushions would greatly improve the selection process and its effectiveness for a targeted task. Instead of selecting a cellular solid best suited for a particular application, the foam or the cellular structure itself is designed and optimized based on the requirements of the application. This requires understanding and control of the cellular structure’s design parameters and additive manufacturing (AM) or three-dimensional (3D) printing offers great design freedom for the fabrication of complex porous parts. Polyjet printing is a 3D printing process that is capable of producing complex polymer parts for various purposes (prototypes to functional parts). Polyjet printing is also capable of producing digital polymers which are polymers composing of up to three different polymer resins hence offering a range of physical and mechanical properties. This research aims to develop an optimized 3D printed cellular structure for cushioning purposes. The effect of cellular microstructure and density on the cushioning properties of the final structure will first be investigated. This is followed by the formulation of an optimization problem to optimize the design parameters of a cellular structure for cushioning purposes. To achieve the above, methods of evaluating cushioning properties were reviewed and a new cellular structure model was designed with the unit cells arranged in a regular array. The design allows the tuning of the structure’s stiffness and strength without affecting its weight i.e. maintaining its relative density. Theoretically, this new method of designing cellular structures allows for an exponential increase in stiffness by decreasing the cellular size. A mathematical model was then developed to accurately predict (R2 > 0.6) the mechanical response of the honeycomb during compressive deformation. A method which predicts the dynamic response of cellular structures using its static compressive data and the mathematical model were used to optimize the structure to meet various cushioning requirement. The optimized cushions were compared to conventional cushions for various applications. The optimized cushions are always lighter (50% ~ 90%) when compared to conventional cushions with similar thickness. Doctor of Philosophy 2019-05-13T05:17:46Z 2019-12-06T14:58:41Z 2019-05-13T05:17:46Z 2019-12-06T14:58:41Z 2019 Thesis Shukri Abdul Jalil. (2019). Optimization of 3D printable cellular array structures for cushioning. Doctoral thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/82596 http://hdl.handle.net/10220/48171 10.32657/10220/48171 en 196 p. 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::Mechanical engineering
spellingShingle DRNTU::Engineering::Mechanical engineering
Shukri Abdul Jalil
Optimization of 3D printable cellular array structures for cushioning
description Cushions are energy absorbing structures or materials used in various applications including packaging, footwear and protective gears. They often come in the form of polymeric cellular structures such as foams. The cushion selection process conventionally involves testing of available foams and selecting the foam which is best suited for the target application. Optimized cushions would greatly improve the selection process and its effectiveness for a targeted task. Instead of selecting a cellular solid best suited for a particular application, the foam or the cellular structure itself is designed and optimized based on the requirements of the application. This requires understanding and control of the cellular structure’s design parameters and additive manufacturing (AM) or three-dimensional (3D) printing offers great design freedom for the fabrication of complex porous parts. Polyjet printing is a 3D printing process that is capable of producing complex polymer parts for various purposes (prototypes to functional parts). Polyjet printing is also capable of producing digital polymers which are polymers composing of up to three different polymer resins hence offering a range of physical and mechanical properties. This research aims to develop an optimized 3D printed cellular structure for cushioning purposes. The effect of cellular microstructure and density on the cushioning properties of the final structure will first be investigated. This is followed by the formulation of an optimization problem to optimize the design parameters of a cellular structure for cushioning purposes. To achieve the above, methods of evaluating cushioning properties were reviewed and a new cellular structure model was designed with the unit cells arranged in a regular array. The design allows the tuning of the structure’s stiffness and strength without affecting its weight i.e. maintaining its relative density. Theoretically, this new method of designing cellular structures allows for an exponential increase in stiffness by decreasing the cellular size. A mathematical model was then developed to accurately predict (R2 > 0.6) the mechanical response of the honeycomb during compressive deformation. A method which predicts the dynamic response of cellular structures using its static compressive data and the mathematical model were used to optimize the structure to meet various cushioning requirement. The optimized cushions were compared to conventional cushions for various applications. The optimized cushions are always lighter (50% ~ 90%) when compared to conventional cushions with similar thickness.
author2 Chou Siaw Meng
author_facet Chou Siaw Meng
Shukri Abdul Jalil
format Theses and Dissertations
author Shukri Abdul Jalil
author_sort Shukri Abdul Jalil
title Optimization of 3D printable cellular array structures for cushioning
title_short Optimization of 3D printable cellular array structures for cushioning
title_full Optimization of 3D printable cellular array structures for cushioning
title_fullStr Optimization of 3D printable cellular array structures for cushioning
title_full_unstemmed Optimization of 3D printable cellular array structures for cushioning
title_sort optimization of 3d printable cellular array structures for cushioning
publishDate 2019
url https://hdl.handle.net/10356/82596
http://hdl.handle.net/10220/48171
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