Thermophysical properties measurements and numerical modeling of nanofluids

Thesis (M.S.) University of Alaska Fairbanks, 2007 This thesis covers measurements of the thermo physical properties of various nanofluids containing copper oxide (CuO), silicon dioxide (SiO₂) and aluminum oxide (Al₂O₃) nanoparticles and numerical investigation on the fluid dynamic and heat transfer...

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Main Author: Namburu, Praveen Krishna
Format: Thesis
Language:English
Published: 2007
Subjects:
Online Access:http://hdl.handle.net/11122/5849
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spelling ftunivalaska:oai:scholarworks.alaska.edu:11122/5849 2023-05-15T15:00:55+02:00 Thermophysical properties measurements and numerical modeling of nanofluids Namburu, Praveen Krishna 2007-08 http://hdl.handle.net/11122/5849 en_US eng http://hdl.handle.net/11122/5849 Department of Mechanical Engineering Thesis ms 2007 ftunivalaska 2023-02-23T21:36:31Z Thesis (M.S.) University of Alaska Fairbanks, 2007 This thesis covers measurements of the thermo physical properties of various nanofluids containing copper oxide (CuO), silicon dioxide (SiO₂) and aluminum oxide (Al₂O₃) nanoparticles and numerical investigation on the fluid dynamic and heat transfer characteristics of nanofluids. Nanofluids are dispersions of nanometer-sized particles (<100 nm) in heat transfer liquids such as water, ethylene glycol or propylene glycol. An ethylene glycol and water (60:40 by mass) mixture was used as a base fluid in which various volume concentrations of nanofluids were dispersed. These nanofluids will be useful in the sub-arctic and arctic environments. Experiments were performed to investigate the rheological properties of CuO, SiO₂ and Al₂O₃ nanofluids. New viscosity correlations for different nanofluids as a function of volume concentration and temperature were developed. Using these correlations heat transfer performance of nanofluids as compared to the base fluid was numerically analyzed for laminar as well as for turbulent flows. Developing laminar flows in a parallel plate duct were computed for Reynolds number ranging from 100 to 2000 for various concentrations of CuO nanofluids. Turbulent convective heat transfer in circular tube geometry under a prescribed heat flux was numerically analyzed for Reynolds numbers ranging from 10⁴ to 10⁵. Heat transfer enhancement of various nanofluids over the base fluid was evaluated. The numerical results show enhanced heat transfer with increase in the volume concentration of nanoparticles. 1. Introduction -- 2. Viscosity of copper oxide nanoparticles dispersed in ethylene glycol and water mixture -- 3. Experimental investigation of viscosity and specific heat of silicon dioxide nanofluids -- 4. Numerical study of heat transfer and fluid flow od CuO nanofluids in a parallel plate duct under laminar regime -- 5. Numerical study of turbulent flow and heat transfer characteristics of nanofluids considering variable properties -- ... Thesis Arctic Alaska University of Alaska: ScholarWorks@UA Arctic Fairbanks
institution Open Polar
collection University of Alaska: ScholarWorks@UA
op_collection_id ftunivalaska
language English
description Thesis (M.S.) University of Alaska Fairbanks, 2007 This thesis covers measurements of the thermo physical properties of various nanofluids containing copper oxide (CuO), silicon dioxide (SiO₂) and aluminum oxide (Al₂O₃) nanoparticles and numerical investigation on the fluid dynamic and heat transfer characteristics of nanofluids. Nanofluids are dispersions of nanometer-sized particles (<100 nm) in heat transfer liquids such as water, ethylene glycol or propylene glycol. An ethylene glycol and water (60:40 by mass) mixture was used as a base fluid in which various volume concentrations of nanofluids were dispersed. These nanofluids will be useful in the sub-arctic and arctic environments. Experiments were performed to investigate the rheological properties of CuO, SiO₂ and Al₂O₃ nanofluids. New viscosity correlations for different nanofluids as a function of volume concentration and temperature were developed. Using these correlations heat transfer performance of nanofluids as compared to the base fluid was numerically analyzed for laminar as well as for turbulent flows. Developing laminar flows in a parallel plate duct were computed for Reynolds number ranging from 100 to 2000 for various concentrations of CuO nanofluids. Turbulent convective heat transfer in circular tube geometry under a prescribed heat flux was numerically analyzed for Reynolds numbers ranging from 10⁴ to 10⁵. Heat transfer enhancement of various nanofluids over the base fluid was evaluated. The numerical results show enhanced heat transfer with increase in the volume concentration of nanoparticles. 1. Introduction -- 2. Viscosity of copper oxide nanoparticles dispersed in ethylene glycol and water mixture -- 3. Experimental investigation of viscosity and specific heat of silicon dioxide nanofluids -- 4. Numerical study of heat transfer and fluid flow od CuO nanofluids in a parallel plate duct under laminar regime -- 5. Numerical study of turbulent flow and heat transfer characteristics of nanofluids considering variable properties -- ...
format Thesis
author Namburu, Praveen Krishna
spellingShingle Namburu, Praveen Krishna
Thermophysical properties measurements and numerical modeling of nanofluids
author_facet Namburu, Praveen Krishna
author_sort Namburu, Praveen Krishna
title Thermophysical properties measurements and numerical modeling of nanofluids
title_short Thermophysical properties measurements and numerical modeling of nanofluids
title_full Thermophysical properties measurements and numerical modeling of nanofluids
title_fullStr Thermophysical properties measurements and numerical modeling of nanofluids
title_full_unstemmed Thermophysical properties measurements and numerical modeling of nanofluids
title_sort thermophysical properties measurements and numerical modeling of nanofluids
publishDate 2007
url http://hdl.handle.net/11122/5849
geographic Arctic
Fairbanks
geographic_facet Arctic
Fairbanks
genre Arctic
Alaska
genre_facet Arctic
Alaska
op_relation http://hdl.handle.net/11122/5849
Department of Mechanical Engineering
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