Exact solutions of an unsteady thermal conductive pressure driven peristaltic transport with temperature-dependent nanofluid viscosity

Keeping in view the impact of temperature-dependent nanofluid viscosity on peristaltic transport, the present study is an analytical analysis to scrutinize an unsteady flow saturated with carbon nanotubes (CNT) in an irregular channel of finite measure. The ultimate goal is to obtain an exact soluti...

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Main Authors: Akbar, Noreen Sher, Maraj, E. N., Noor, N. F. M., Habib, Muhammad Bilal
Format: Article
Published: Elsevier 2022
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Online Access:http://eprints.um.edu.my/42170/
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spelling my.um.eprints.421702023-10-13T08:01:31Z http://eprints.um.edu.my/42170/ Exact solutions of an unsteady thermal conductive pressure driven peristaltic transport with temperature-dependent nanofluid viscosity Akbar, Noreen Sher Maraj, E. N. Noor, N. F. M. Habib, Muhammad Bilal QA Mathematics Keeping in view the impact of temperature-dependent nanofluid viscosity on peristaltic transport, the present study is an analytical analysis to scrutinize an unsteady flow saturated with carbon nanotubes (CNT) in an irregular channel of finite measure. The ultimate goal is to obtain an exact solution for the stream function of the pressure-driven peristaltic flow of nanofluid with temperature-dependent nanofluid viscosity. Influences of CNT on temperature, axial and transverse velocities, effective thermal conductivity and on pressure gradient are studied analytically and displayed graphically by varying various flow constraints using a Mathematica software. The key findings of the analysis revealed that SWCNT nanofluids have lower pressure gradient, hence higher axial velocity than that of MWCNT whereas the trapped boluses are growing in size with increasing heat generation and decreasing thermal Grashof number. Since the transverse velocity for MWCNT nanofluid can be improved with higher viscosity, this study outlines details of a micro push in the movement of nanofluids as a supplement to medical applications especially for drugs delivery systems in peristaltic pumping and pharmacological engineering. Elsevier 2022-07 Article PeerReviewed Akbar, Noreen Sher and Maraj, E. N. and Noor, N. F. M. and Habib, Muhammad Bilal (2022) Exact solutions of an unsteady thermal conductive pressure driven peristaltic transport with temperature-dependent nanofluid viscosity. Case Studies in Thermal Engineering, 35. ISSN 2214-157X, DOI https://doi.org/10.1016/j.csite.2022.102124 <https://doi.org/10.1016/j.csite.2022.102124>. 10.1016/j.csite.2022.102124
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic QA Mathematics
spellingShingle QA Mathematics
Akbar, Noreen Sher
Maraj, E. N.
Noor, N. F. M.
Habib, Muhammad Bilal
Exact solutions of an unsteady thermal conductive pressure driven peristaltic transport with temperature-dependent nanofluid viscosity
description Keeping in view the impact of temperature-dependent nanofluid viscosity on peristaltic transport, the present study is an analytical analysis to scrutinize an unsteady flow saturated with carbon nanotubes (CNT) in an irregular channel of finite measure. The ultimate goal is to obtain an exact solution for the stream function of the pressure-driven peristaltic flow of nanofluid with temperature-dependent nanofluid viscosity. Influences of CNT on temperature, axial and transverse velocities, effective thermal conductivity and on pressure gradient are studied analytically and displayed graphically by varying various flow constraints using a Mathematica software. The key findings of the analysis revealed that SWCNT nanofluids have lower pressure gradient, hence higher axial velocity than that of MWCNT whereas the trapped boluses are growing in size with increasing heat generation and decreasing thermal Grashof number. Since the transverse velocity for MWCNT nanofluid can be improved with higher viscosity, this study outlines details of a micro push in the movement of nanofluids as a supplement to medical applications especially for drugs delivery systems in peristaltic pumping and pharmacological engineering.
format Article
author Akbar, Noreen Sher
Maraj, E. N.
Noor, N. F. M.
Habib, Muhammad Bilal
author_facet Akbar, Noreen Sher
Maraj, E. N.
Noor, N. F. M.
Habib, Muhammad Bilal
author_sort Akbar, Noreen Sher
title Exact solutions of an unsteady thermal conductive pressure driven peristaltic transport with temperature-dependent nanofluid viscosity
title_short Exact solutions of an unsteady thermal conductive pressure driven peristaltic transport with temperature-dependent nanofluid viscosity
title_full Exact solutions of an unsteady thermal conductive pressure driven peristaltic transport with temperature-dependent nanofluid viscosity
title_fullStr Exact solutions of an unsteady thermal conductive pressure driven peristaltic transport with temperature-dependent nanofluid viscosity
title_full_unstemmed Exact solutions of an unsteady thermal conductive pressure driven peristaltic transport with temperature-dependent nanofluid viscosity
title_sort exact solutions of an unsteady thermal conductive pressure driven peristaltic transport with temperature-dependent nanofluid viscosity
publisher Elsevier
publishDate 2022
url http://eprints.um.edu.my/42170/
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