Cargando…

Thermal and physical impact of viscoplastic nanoparticles in a complex divergent channel due to peristalsis phenomenon: Heat generation and multiple slip effects

In the advance studies, researchers have performed productive research contributions in the field of nanofluid mechanics under various biological assumptions. These contributions are fruitful to understand the applications of nanofluids in the various fields such as hybrid-powered engine, heart-diag...

Descripción completa

Detalles Bibliográficos
Autores principales: Aich, Walid, Javid, Khurram, Tag-ElDin, El Sayed Mohamed, Ghachem, Kaouther, Ullah, Irfan, Iqbal, Muhammad Asad, Khan, Sami Ullah, Kolsi, Lioua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10368782/
https://www.ncbi.nlm.nih.gov/pubmed/37501997
http://dx.doi.org/10.1016/j.heliyon.2023.e17644
_version_ 1785077580283510784
author Aich, Walid
Javid, Khurram
Tag-ElDin, El Sayed Mohamed
Ghachem, Kaouther
Ullah, Irfan
Iqbal, Muhammad Asad
Khan, Sami Ullah
Kolsi, Lioua
author_facet Aich, Walid
Javid, Khurram
Tag-ElDin, El Sayed Mohamed
Ghachem, Kaouther
Ullah, Irfan
Iqbal, Muhammad Asad
Khan, Sami Ullah
Kolsi, Lioua
author_sort Aich, Walid
collection PubMed
description In the advance studies, researchers have performed productive research contributions in the field of nanofluid mechanics under various biological assumptions. These contributions are fruitful to understand the applications of nanofluids in the various fields such as hybrid-powered engine, heart-diagnose, to prevent numerous diseases, heat exchanger, pharmaceutical processes, etc. The current analysis explores the combined effects of heat generation and chemical reaction on the peristaltic flow of viscoplastic nanofluid through a non-uniform (divergent) channel. The physical effects of second-order velocity slip, thermal slip and mass slip parameters on the rheological characteristics are also considered. To describe non-Newtonian effects, the Casson fluid is deployed. The greater wavelength assumption and low Reynolds number theory are used to attain the rheological equations. Numerical solutions of these governing equations associated with suitable boundary conditions are obtained via Mathematica symbolic software. The velocity magnitude of Casson fluid is higher than associated with Newtonian fluid. Radiation parameter has a vigorous impact in the reduction (enhancement) of temperature (mass concentration) profile. The porous parameter has a remarkable impact in reduction of temperature and velocity profile. Thermal enhancement is perceived by intensifying the chemical reaction parameter, and opposite inclination is noticed in mass concentration. Temperature has been demonstrated to be increased by increasing the Darcy number. The magnitudes of both axial velocity and temperature distribution are smaller in the presence of second-order velocity slip parameters effect as compared with no-slip condition. The magnitudes of axial velocity and mass (or, nanoparticle) concentration are augmented by accumulating the Prandtl number. A rise in Brownian parameter is noticed to depress the mass concentration. The present study has been used in bio-mechanical processes, nanomaterial devices, heat transfer enhancement, radiators, and electronics cooling systems.
format Online
Article
Text
id pubmed-10368782
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-103687822023-07-27 Thermal and physical impact of viscoplastic nanoparticles in a complex divergent channel due to peristalsis phenomenon: Heat generation and multiple slip effects Aich, Walid Javid, Khurram Tag-ElDin, El Sayed Mohamed Ghachem, Kaouther Ullah, Irfan Iqbal, Muhammad Asad Khan, Sami Ullah Kolsi, Lioua Heliyon Research Article In the advance studies, researchers have performed productive research contributions in the field of nanofluid mechanics under various biological assumptions. These contributions are fruitful to understand the applications of nanofluids in the various fields such as hybrid-powered engine, heart-diagnose, to prevent numerous diseases, heat exchanger, pharmaceutical processes, etc. The current analysis explores the combined effects of heat generation and chemical reaction on the peristaltic flow of viscoplastic nanofluid through a non-uniform (divergent) channel. The physical effects of second-order velocity slip, thermal slip and mass slip parameters on the rheological characteristics are also considered. To describe non-Newtonian effects, the Casson fluid is deployed. The greater wavelength assumption and low Reynolds number theory are used to attain the rheological equations. Numerical solutions of these governing equations associated with suitable boundary conditions are obtained via Mathematica symbolic software. The velocity magnitude of Casson fluid is higher than associated with Newtonian fluid. Radiation parameter has a vigorous impact in the reduction (enhancement) of temperature (mass concentration) profile. The porous parameter has a remarkable impact in reduction of temperature and velocity profile. Thermal enhancement is perceived by intensifying the chemical reaction parameter, and opposite inclination is noticed in mass concentration. Temperature has been demonstrated to be increased by increasing the Darcy number. The magnitudes of both axial velocity and temperature distribution are smaller in the presence of second-order velocity slip parameters effect as compared with no-slip condition. The magnitudes of axial velocity and mass (or, nanoparticle) concentration are augmented by accumulating the Prandtl number. A rise in Brownian parameter is noticed to depress the mass concentration. The present study has been used in bio-mechanical processes, nanomaterial devices, heat transfer enhancement, radiators, and electronics cooling systems. Elsevier 2023-07-05 /pmc/articles/PMC10368782/ /pubmed/37501997 http://dx.doi.org/10.1016/j.heliyon.2023.e17644 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Aich, Walid
Javid, Khurram
Tag-ElDin, El Sayed Mohamed
Ghachem, Kaouther
Ullah, Irfan
Iqbal, Muhammad Asad
Khan, Sami Ullah
Kolsi, Lioua
Thermal and physical impact of viscoplastic nanoparticles in a complex divergent channel due to peristalsis phenomenon: Heat generation and multiple slip effects
title Thermal and physical impact of viscoplastic nanoparticles in a complex divergent channel due to peristalsis phenomenon: Heat generation and multiple slip effects
title_full Thermal and physical impact of viscoplastic nanoparticles in a complex divergent channel due to peristalsis phenomenon: Heat generation and multiple slip effects
title_fullStr Thermal and physical impact of viscoplastic nanoparticles in a complex divergent channel due to peristalsis phenomenon: Heat generation and multiple slip effects
title_full_unstemmed Thermal and physical impact of viscoplastic nanoparticles in a complex divergent channel due to peristalsis phenomenon: Heat generation and multiple slip effects
title_short Thermal and physical impact of viscoplastic nanoparticles in a complex divergent channel due to peristalsis phenomenon: Heat generation and multiple slip effects
title_sort thermal and physical impact of viscoplastic nanoparticles in a complex divergent channel due to peristalsis phenomenon: heat generation and multiple slip effects
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10368782/
https://www.ncbi.nlm.nih.gov/pubmed/37501997
http://dx.doi.org/10.1016/j.heliyon.2023.e17644
work_keys_str_mv AT aichwalid thermalandphysicalimpactofviscoplasticnanoparticlesinacomplexdivergentchannelduetoperistalsisphenomenonheatgenerationandmultipleslipeffects
AT javidkhurram thermalandphysicalimpactofviscoplasticnanoparticlesinacomplexdivergentchannelduetoperistalsisphenomenonheatgenerationandmultipleslipeffects
AT tageldinelsayedmohamed thermalandphysicalimpactofviscoplasticnanoparticlesinacomplexdivergentchannelduetoperistalsisphenomenonheatgenerationandmultipleslipeffects
AT ghachemkaouther thermalandphysicalimpactofviscoplasticnanoparticlesinacomplexdivergentchannelduetoperistalsisphenomenonheatgenerationandmultipleslipeffects
AT ullahirfan thermalandphysicalimpactofviscoplasticnanoparticlesinacomplexdivergentchannelduetoperistalsisphenomenonheatgenerationandmultipleslipeffects
AT iqbalmuhammadasad thermalandphysicalimpactofviscoplasticnanoparticlesinacomplexdivergentchannelduetoperistalsisphenomenonheatgenerationandmultipleslipeffects
AT khansamiullah thermalandphysicalimpactofviscoplasticnanoparticlesinacomplexdivergentchannelduetoperistalsisphenomenonheatgenerationandmultipleslipeffects
AT kolsilioua thermalandphysicalimpactofviscoplasticnanoparticlesinacomplexdivergentchannelduetoperistalsisphenomenonheatgenerationandmultipleslipeffects