Simulations of embossing process for micro features fabrication

With the development of the micro- and nano-fabrication industry, roller to roller embossing has been proven to yield large areas of continuous, robust patterns for devices such as DNA chips, optical switches, micro reactors, ink jet printing heads and accelerometers, which implies that this process...

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Main Author: Fang, Jian Cong
Other Authors: Zhong Zhaowei
Format: Theses and Dissertations
Language:English
Published: 2013
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Online Access:http://hdl.handle.net/10356/55144
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-551442023-03-11T17:10:55Z Simulations of embossing process for micro features fabrication Fang, Jian Cong Zhong Zhaowei School of Mechanical and Aerospace Engineering DRNTU::Engineering::Mechanical engineering With the development of the micro- and nano-fabrication industry, roller to roller embossing has been proven to yield large areas of continuous, robust patterns for devices such as DNA chips, optical switches, micro reactors, ink jet printing heads and accelerometers, which implies that this process has a very high potential in manufacturing industry. Before such mass production could take place, the dimensions produced should meet the requirement, while some researchers demonstrated that the difference between the pile-up of the leading edge and the trailing edge of a micro channel running perpendicular to the rolling direction in a roller to roller embossing system configuration, the leading edge's pile-up is much higher than the trailing edge's at certain temperatures. In this research, software MATLAB® is applied to do the simulation work. Power-law equation ofpolymer rheology is applied to derivate the shear force ofmicrostructures, and the Lagrangian-Eulerian (ALE) description coupled with three conversation law '(Mass, Energy, Momentum) is utilized to describe the motion and forming of polymer melt flow. Based on these two methods above, simulation results of asymmetric pile-up are achieved. According to the results obtained in simulations, it is found that the shear force induced during roller embossing process is proportional to pressure and rheology index, while parameter of temperature seems to have no effect on it; the height and asymmetry of pile-up increase with the growing temperature and shear force but decrease beyond one certain temperature; when a synchronized top and bottom rollers driven system is applied to replace the single roller driven system, the effect of pile-up in embossed microstructures is minimized under same conditions. Master of Science (Precision Engineering) 2013-12-26T06:14:06Z 2013-12-26T06:14:06Z 2013 2013 Thesis http://hdl.handle.net/10356/55144 en 78 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
Fang, Jian Cong
Simulations of embossing process for micro features fabrication
description With the development of the micro- and nano-fabrication industry, roller to roller embossing has been proven to yield large areas of continuous, robust patterns for devices such as DNA chips, optical switches, micro reactors, ink jet printing heads and accelerometers, which implies that this process has a very high potential in manufacturing industry. Before such mass production could take place, the dimensions produced should meet the requirement, while some researchers demonstrated that the difference between the pile-up of the leading edge and the trailing edge of a micro channel running perpendicular to the rolling direction in a roller to roller embossing system configuration, the leading edge's pile-up is much higher than the trailing edge's at certain temperatures. In this research, software MATLAB® is applied to do the simulation work. Power-law equation ofpolymer rheology is applied to derivate the shear force ofmicrostructures, and the Lagrangian-Eulerian (ALE) description coupled with three conversation law '(Mass, Energy, Momentum) is utilized to describe the motion and forming of polymer melt flow. Based on these two methods above, simulation results of asymmetric pile-up are achieved. According to the results obtained in simulations, it is found that the shear force induced during roller embossing process is proportional to pressure and rheology index, while parameter of temperature seems to have no effect on it; the height and asymmetry of pile-up increase with the growing temperature and shear force but decrease beyond one certain temperature; when a synchronized top and bottom rollers driven system is applied to replace the single roller driven system, the effect of pile-up in embossed microstructures is minimized under same conditions.
author2 Zhong Zhaowei
author_facet Zhong Zhaowei
Fang, Jian Cong
format Theses and Dissertations
author Fang, Jian Cong
author_sort Fang, Jian Cong
title Simulations of embossing process for micro features fabrication
title_short Simulations of embossing process for micro features fabrication
title_full Simulations of embossing process for micro features fabrication
title_fullStr Simulations of embossing process for micro features fabrication
title_full_unstemmed Simulations of embossing process for micro features fabrication
title_sort simulations of embossing process for micro features fabrication
publishDate 2013
url http://hdl.handle.net/10356/55144
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