TY - JOUR
T1 - Thermal radiation and some physical combined effects on an asymmetric peristaltically vertical channel of nanofluid flow
AU - Awaad, Amira S.
AU - Gharsseldien, Zakaria M.
N1 - Publisher Copyright:
Copyright © 2024 Techno-Press, Ltd.
PY - 2024
Y1 - 2024
N2 - This study explained the effects of radiation, magnetic field, and nanoparticle shape on the peristaltic flow of an Upper-Convected Maxwell nanofluid through a porous medium in an asymmetric channel for a better understanding of cooling and heating mechanisms in the presence of magnetic fields. These phenomena are modeled mathematically as a system of nonlinear differential equations, that are solved under long-wavelength approximation and low Reynolds number conditions using the perturbation method. The results for nanofluid and temperature described the behavior of the pumping characteristics during their interaction with (the vertical position, thermal radiation, the shape of the nanoparticle, and the magnetic field) analytically and explained graphically. Also, the combined effects of thermal radiation parameters and some physical parameters on pressure rise, pressure gradient, velocity, and heat distribution are pointed out. Qualitatively, a reverse velocity appears with combined high radiation and Grashof number or combined high radiation and low volume flow rate. At high radiation, the spherical nanoparticle shape has the greatest effect on heat distribution.
AB - This study explained the effects of radiation, magnetic field, and nanoparticle shape on the peristaltic flow of an Upper-Convected Maxwell nanofluid through a porous medium in an asymmetric channel for a better understanding of cooling and heating mechanisms in the presence of magnetic fields. These phenomena are modeled mathematically as a system of nonlinear differential equations, that are solved under long-wavelength approximation and low Reynolds number conditions using the perturbation method. The results for nanofluid and temperature described the behavior of the pumping characteristics during their interaction with (the vertical position, thermal radiation, the shape of the nanoparticle, and the magnetic field) analytically and explained graphically. Also, the combined effects of thermal radiation parameters and some physical parameters on pressure rise, pressure gradient, velocity, and heat distribution are pointed out. Qualitatively, a reverse velocity appears with combined high radiation and Grashof number or combined high radiation and low volume flow rate. At high radiation, the spherical nanoparticle shape has the greatest effect on heat distribution.
KW - maxwell nanofluid
KW - nanoparticle shape
KW - peristaltic flow
KW - thermal radiation
UR - http://www.scopus.com/inward/record.url?scp=105003037814&partnerID=8YFLogxK
U2 - 10.12989/anr.2024.16.6.579
DO - 10.12989/anr.2024.16.6.579
M3 - Article
AN - SCOPUS:105003037814
SN - 2287-237X
VL - 16
SP - 579
EP - 591
JO - Advances in Nano Research
JF - Advances in Nano Research
IS - 6
ER -