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Non-isothermal dynamics of thin-film free-surface and channel flows of non-Newtonian nanofluids

Numerical modelling of the dynamic behaviour of generalized-viscoelastic-fluidbased nanofluids (GVFBNs) and viscoelastic-fluid-based nanofluids (VFBNs) has a number of industrial applications such as in new battery technologies and phasechange heat transfer devices. The computational results have sh...

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Main Author: Khan, Idrees
Other Authors: Chinyoka, Tiri
Format: Thesis
Language:English
Published: Department of Mathematics and Applied Mathematics 2022
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access_status_str Open Access
author Khan, Idrees
author2 Chinyoka, Tiri
author_browse Chinyoka, Tiri
Khan, Idrees
author_facet Chinyoka, Tiri
Khan, Idrees
author_sort Khan, Idrees
collection Thesis
description Numerical modelling of the dynamic behaviour of generalized-viscoelastic-fluidbased nanofluids (GVFBNs) and viscoelastic-fluid-based nanofluids (VFBNs) has a number of industrial applications such as in new battery technologies and phasechange heat transfer devices. The computational results have shown that for certain flow parameters values, some of the non-Newtonian fluids also known as complex fluids (e.g. worm-like micellar solutions, granular flows, polymer solutions and some polymer melts) reveal flow instabilities within the flow field, such as the emergence of regions of different shear bands due to the flow induced material non-homogeneities. It has also been observed that it is becoming increasingly clear that the thermal runway phenomenon should not be ignored in polymers or other complex fluids since it may, in some instances, be as important as the complex rheology in differentiating susceptibility order for different types of nanofluids, for instance Newtonian fluid Based Nanofluids (NFBN), Generalized Newtonian Fluid-Based Nanofluids (GNFBN), Viscoelastic-fluid based nanofluids (VFBN) and Generalized viscoelastic fluid based nanofluids (GVFBN). These computational observations laid the foundation of this thesis. We have investigated the improvement of heat transfer for GVFBN and VFBN by homogenously mixed spherical shape nanoparticles. To incorporate the nanoparticles in the governing equations we use a single phase nanofluid modelling approach. Our mathematical models are governed by a system of non-linear, highly coupled, time-dependent Partial Differential Equations (PDEs). We developed computational solutions in Matlab software for the resulting system of equations by using an efficient semi-implicit finite-difference method, combined with a Crank-Nicolson scheme. In addition, the effects of nanoparticles on fluid velocity, extra stresses, temperature, and thermal conductivity are explored. Comparisons of the numerical results for the nanofluids with those from the literature without nanoparticles show excellent agreement.
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institution University of Cape Town (South Africa)
language eng
last_indexed 2026-06-10T12:33:01.081Z
license_str Not specified — see source repository
provenance_str_mv Harvested via OAI-PMH from UCTD — University of Cape Town Open Access Repository
publishDate 2022
publishDateRange 2022
publishDateSort 2022
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source_str UCTD — University of Cape Town Open Access Repository
spelling oai:open.uct.ac.za:11427/36771 Non-isothermal dynamics of thin-film free-surface and channel flows of non-Newtonian nanofluids Khan, Idrees Chinyoka, Tiri Mathematics and Applied Mathematics Numerical modelling of the dynamic behaviour of generalized-viscoelastic-fluidbased nanofluids (GVFBNs) and viscoelastic-fluid-based nanofluids (VFBNs) has a number of industrial applications such as in new battery technologies and phasechange heat transfer devices. The computational results have shown that for certain flow parameters values, some of the non-Newtonian fluids also known as complex fluids (e.g. worm-like micellar solutions, granular flows, polymer solutions and some polymer melts) reveal flow instabilities within the flow field, such as the emergence of regions of different shear bands due to the flow induced material non-homogeneities. It has also been observed that it is becoming increasingly clear that the thermal runway phenomenon should not be ignored in polymers or other complex fluids since it may, in some instances, be as important as the complex rheology in differentiating susceptibility order for different types of nanofluids, for instance Newtonian fluid Based Nanofluids (NFBN), Generalized Newtonian Fluid-Based Nanofluids (GNFBN), Viscoelastic-fluid based nanofluids (VFBN) and Generalized viscoelastic fluid based nanofluids (GVFBN). These computational observations laid the foundation of this thesis. We have investigated the improvement of heat transfer for GVFBN and VFBN by homogenously mixed spherical shape nanoparticles. To incorporate the nanoparticles in the governing equations we use a single phase nanofluid modelling approach. Our mathematical models are governed by a system of non-linear, highly coupled, time-dependent Partial Differential Equations (PDEs). We developed computational solutions in Matlab software for the resulting system of equations by using an efficient semi-implicit finite-difference method, combined with a Crank-Nicolson scheme. In addition, the effects of nanoparticles on fluid velocity, extra stresses, temperature, and thermal conductivity are explored. Comparisons of the numerical results for the nanofluids with those from the literature without nanoparticles show excellent agreement. 2022-08-30T09:40:24Z 2022-08-30T09:40:24Z 2022 2022-08-29T11:50:46Z Doctoral Thesis Doctoral PhD http://hdl.handle.net/11427/36771 eng application/pdf Department of Mathematics and Applied Mathematics Faculty of Science
spellingShingle Mathematics and Applied Mathematics
Khan, Idrees
Non-isothermal dynamics of thin-film free-surface and channel flows of non-Newtonian nanofluids
thesis_degree_str Doctoral
title Non-isothermal dynamics of thin-film free-surface and channel flows of non-Newtonian nanofluids
title_full Non-isothermal dynamics of thin-film free-surface and channel flows of non-Newtonian nanofluids
title_fullStr Non-isothermal dynamics of thin-film free-surface and channel flows of non-Newtonian nanofluids
title_full_unstemmed Non-isothermal dynamics of thin-film free-surface and channel flows of non-Newtonian nanofluids
title_short Non-isothermal dynamics of thin-film free-surface and channel flows of non-Newtonian nanofluids
title_sort non isothermal dynamics of thin film free surface and channel flows of non newtonian nanofluids
topic Mathematics and Applied Mathematics
url http://hdl.handle.net/11427/36771
work_keys_str_mv AT khanidrees nonisothermaldynamicsofthinfilmfreesurfaceandchannelflowsofnonnewtoniannanofluids