3D printing of asymmetric re-entrant microstructure for unidirectional liquid spreading

Numerous organisms in nature have developed extraordinary unidirectional liquid spreading capabilities, including the peristome of Nepenthes Pitcher Plant, the back of a desert beetle, spider silk, and the conical spine of a cactus. Unidirectional liquid spreading without the use of external energy...

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Main Author: Suhail Ahamed
Other Authors: Zhou Kun
Format: Final Year Project
Language:English
Published: Nanyang Technological University 2023
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Online Access:https://hdl.handle.net/10356/167184
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1671842023-05-27T16:50:06Z 3D printing of asymmetric re-entrant microstructure for unidirectional liquid spreading Suhail Ahamed Zhou Kun School of Mechanical and Aerospace Engineering kzhou@ntu.edu.sg Engineering::Bioengineering Numerous organisms in nature have developed extraordinary unidirectional liquid spreading capabilities, including the peristome of Nepenthes Pitcher Plant, the back of a desert beetle, spider silk, and the conical spine of a cactus. Unidirectional liquid spreading without the use of external energy has sparked worldwide interest due to its potential applications in fields such as microfluidics, biomedicine, and mechanical engineering. However, the structures in their work were extremely intricate, and the 3D printing machines they used were not inexpensive. Moreover, the unidirectional liquid spreading, in most cases, transports in a linear path of limited capillary rise height. To overcome these challenges, asymmetric re-entrant microstructures were designed and fabricated using Digital Light Processing (DLP) 3D Printer. The unidirectional liquid spreading on the bioinspired asymmetric re-entrant microstructure is propelled by the capillary driving force between two parallel surfaces from the roof of the microstructures to the surface of the substrate. The capillary break, which is the spacing in between horizontal microstructures, is small enough to promote the unidirectional liquid spreading in the forward direction and also to inhibit liquid spreading in the backward direction, hence promoting unidirectional liquid spreading. The performance of liquid transport on the bioinspired asymmetric re-entrant microstructures was significantly impacted by the feature sizes and spacing between adjacent microstructures, according to the project's findings. Within the scope of this project, applications of microfluidic chips and oil-water separation were realized. These findings can help future research work to investigate other potential applications on bioinspired asymmetric re-entrant microstructures for unidirectional liquid spreading. Bachelor of Engineering (Mechanical Engineering) 2023-05-24T05:27:40Z 2023-05-24T05:27:40Z 2023 Final Year Project (FYP) Suhail Ahamed (2023). 3D printing of asymmetric re-entrant microstructure for unidirectional liquid spreading. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/167184 https://hdl.handle.net/10356/167184 en B042 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::Bioengineering
spellingShingle Engineering::Bioengineering
Suhail Ahamed
3D printing of asymmetric re-entrant microstructure for unidirectional liquid spreading
description Numerous organisms in nature have developed extraordinary unidirectional liquid spreading capabilities, including the peristome of Nepenthes Pitcher Plant, the back of a desert beetle, spider silk, and the conical spine of a cactus. Unidirectional liquid spreading without the use of external energy has sparked worldwide interest due to its potential applications in fields such as microfluidics, biomedicine, and mechanical engineering. However, the structures in their work were extremely intricate, and the 3D printing machines they used were not inexpensive. Moreover, the unidirectional liquid spreading, in most cases, transports in a linear path of limited capillary rise height. To overcome these challenges, asymmetric re-entrant microstructures were designed and fabricated using Digital Light Processing (DLP) 3D Printer. The unidirectional liquid spreading on the bioinspired asymmetric re-entrant microstructure is propelled by the capillary driving force between two parallel surfaces from the roof of the microstructures to the surface of the substrate. The capillary break, which is the spacing in between horizontal microstructures, is small enough to promote the unidirectional liquid spreading in the forward direction and also to inhibit liquid spreading in the backward direction, hence promoting unidirectional liquid spreading. The performance of liquid transport on the bioinspired asymmetric re-entrant microstructures was significantly impacted by the feature sizes and spacing between adjacent microstructures, according to the project's findings. Within the scope of this project, applications of microfluidic chips and oil-water separation were realized. These findings can help future research work to investigate other potential applications on bioinspired asymmetric re-entrant microstructures for unidirectional liquid spreading.
author2 Zhou Kun
author_facet Zhou Kun
Suhail Ahamed
format Final Year Project
author Suhail Ahamed
author_sort Suhail Ahamed
title 3D printing of asymmetric re-entrant microstructure for unidirectional liquid spreading
title_short 3D printing of asymmetric re-entrant microstructure for unidirectional liquid spreading
title_full 3D printing of asymmetric re-entrant microstructure for unidirectional liquid spreading
title_fullStr 3D printing of asymmetric re-entrant microstructure for unidirectional liquid spreading
title_full_unstemmed 3D printing of asymmetric re-entrant microstructure for unidirectional liquid spreading
title_sort 3d printing of asymmetric re-entrant microstructure for unidirectional liquid spreading
publisher Nanyang Technological University
publishDate 2023
url https://hdl.handle.net/10356/167184
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