Functional electrospun nanofibres for heat dissipation applications

With the rapid growth in electronic power density, effective heat dissipation has been the primary issue to be addressed in the continuous development of industrial electronics, which aims to minimize size while increasing performance. This has resulted in experts working hard to create innovative a...

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Main Author: Sharif, Mohd Luqman Hakim
Format: Thesis
Language:English
English
Published: 2021
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Online Access:http://eprints.utem.edu.my/id/eprint/26090/1/Functional%20electrospun%20nanofibres%20for%20heat%20dissipation%20applications.pdf
http://eprints.utem.edu.my/id/eprint/26090/2/Functional%20electrospun%20nanofibres%20for%20heat%20dissipation%20applications.pdf
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spelling my-utem-ep.260902023-01-13T15:47:30Z Functional electrospun nanofibres for heat dissipation applications 2021 Sharif, Mohd Luqman Hakim T Technology (General) TA Engineering (General). Civil engineering (General) With the rapid growth in electronic power density, effective heat dissipation has been the primary issue to be addressed in the continuous development of industrial electronics, which aims to minimize size while increasing performance. This has resulted in experts working hard to create innovative and effective ways to deal with the problem of heat dissipation at high temperatures, in order to improve the heat transfer rate between hot surfaces and the environment by increasing the heat transfer coefficients or expanding the heat transfer area. Nanofiber was discovered to be one of the potential alternative materials that could serve the purpose in heat dissipation application due to its large Surface Area to Volume Ratio (SAVR). Most of the time, the nanofiber is fabricated by means of bicomponent extrusion, phase separation, template synthesis, drawing, melt blowing, centrifugal spinning, and electrospinning. As for this study, electrospinning is utilized by using Polyacrylonitrile-Dimethylformamide (PAN-DMF) solution to produce PAN nanofibers. Two samples were prepared with different tip-to-collector distances; Sample I = 10cm and Sample II = 20cm, to establish the minimum and maximum size of PAN nanofibers that could be produced under the limitation imposed by the currently available electrospinning machine in the Advanced Materials Characterization Laboratory (AMCHAL) in UTeM, Melaka. Both of the samples were characterized on their respective morphology and fiber diameter to be used as a reference in Computational Fluid Dynamics (CFD) simulation in ANSYS Fluent. The simulations of the fibers were conducted as steady-state thermal analysis with the Turbulence Model of Realizable k-epsilon with enhanced wall treatment. The morphology of the fiber resembles a somewhat smooth cylindrical solid with a continuous, and randomly oriented pattern while the diameter of the fiber produced was 1.24μm and 717nm, respectively. From the simulation, the total Heat Flux dissipated with regard to SAVR constant volume were 104.35992 × 103 W for Nanofiber Model and 104.35989 W for Microfiber Model. Due to the value of SAVR in nanofiber was discovered to be inversely related to the diameter of the nanofiber, nanofiber with smaller diameter will dissipate heat better than nanofiber with greater diameter, particularly when heat dissipation is required in very tiny areas 2021 Thesis http://eprints.utem.edu.my/id/eprint/26090/ http://eprints.utem.edu.my/id/eprint/26090/1/Functional%20electrospun%20nanofibres%20for%20heat%20dissipation%20applications.pdf text en public http://eprints.utem.edu.my/id/eprint/26090/2/Functional%20electrospun%20nanofibres%20for%20heat%20dissipation%20applications.pdf text en validuser https://plh.utem.edu.my/cgi-bin/koha/opac-detail.pl?biblionumber=121343 mphil masters Universiti Teknikal Malaysia Melaka Faculty of Mechanical Engineering Abdul Hamid, Nurfaizey
institution Universiti Teknikal Malaysia Melaka
collection UTeM Repository
language English
English
advisor Abdul Hamid, Nurfaizey
topic T Technology (General)
T Technology (General)
spellingShingle T Technology (General)
T Technology (General)
Sharif, Mohd Luqman Hakim
Functional electrospun nanofibres for heat dissipation applications
description With the rapid growth in electronic power density, effective heat dissipation has been the primary issue to be addressed in the continuous development of industrial electronics, which aims to minimize size while increasing performance. This has resulted in experts working hard to create innovative and effective ways to deal with the problem of heat dissipation at high temperatures, in order to improve the heat transfer rate between hot surfaces and the environment by increasing the heat transfer coefficients or expanding the heat transfer area. Nanofiber was discovered to be one of the potential alternative materials that could serve the purpose in heat dissipation application due to its large Surface Area to Volume Ratio (SAVR). Most of the time, the nanofiber is fabricated by means of bicomponent extrusion, phase separation, template synthesis, drawing, melt blowing, centrifugal spinning, and electrospinning. As for this study, electrospinning is utilized by using Polyacrylonitrile-Dimethylformamide (PAN-DMF) solution to produce PAN nanofibers. Two samples were prepared with different tip-to-collector distances; Sample I = 10cm and Sample II = 20cm, to establish the minimum and maximum size of PAN nanofibers that could be produced under the limitation imposed by the currently available electrospinning machine in the Advanced Materials Characterization Laboratory (AMCHAL) in UTeM, Melaka. Both of the samples were characterized on their respective morphology and fiber diameter to be used as a reference in Computational Fluid Dynamics (CFD) simulation in ANSYS Fluent. The simulations of the fibers were conducted as steady-state thermal analysis with the Turbulence Model of Realizable k-epsilon with enhanced wall treatment. The morphology of the fiber resembles a somewhat smooth cylindrical solid with a continuous, and randomly oriented pattern while the diameter of the fiber produced was 1.24μm and 717nm, respectively. From the simulation, the total Heat Flux dissipated with regard to SAVR constant volume were 104.35992 × 103 W for Nanofiber Model and 104.35989 W for Microfiber Model. Due to the value of SAVR in nanofiber was discovered to be inversely related to the diameter of the nanofiber, nanofiber with smaller diameter will dissipate heat better than nanofiber with greater diameter, particularly when heat dissipation is required in very tiny areas
format Thesis
qualification_name Master of Philosophy (M.Phil.)
qualification_level Master's degree
author Sharif, Mohd Luqman Hakim
author_facet Sharif, Mohd Luqman Hakim
author_sort Sharif, Mohd Luqman Hakim
title Functional electrospun nanofibres for heat dissipation applications
title_short Functional electrospun nanofibres for heat dissipation applications
title_full Functional electrospun nanofibres for heat dissipation applications
title_fullStr Functional electrospun nanofibres for heat dissipation applications
title_full_unstemmed Functional electrospun nanofibres for heat dissipation applications
title_sort functional electrospun nanofibres for heat dissipation applications
granting_institution Universiti Teknikal Malaysia Melaka
granting_department Faculty of Mechanical Engineering
publishDate 2021
url http://eprints.utem.edu.my/id/eprint/26090/1/Functional%20electrospun%20nanofibres%20for%20heat%20dissipation%20applications.pdf
http://eprints.utem.edu.my/id/eprint/26090/2/Functional%20electrospun%20nanofibres%20for%20heat%20dissipation%20applications.pdf
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