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An influence of temperature jump and Navier’s slip-on hybrid nano fluid flow over a permeable stretching/shrinking sheet with heat transfer and inclined MHD

Sachhin, S. M. ; Mahabaleshwar, U. S. ; Huang, H. N. ; Sunden, B. LU and Zeidan, Dia (2024) In Nanotechnology 35(11).
Abstract

This research article, explores the influence of an inclined magnetic field on the fluid flow over a permeable stretching/shrinking surface with heat transfer. The study use water as a conventional base fluid, with graphene oxide (GO) and Aluminum oxide (Al2O3) nanoparticles submerged to create a nanofluid, the system of governing nonlinear partial differential equations converted into ordinary differential equations via suitable similarity conversions. This allow for the unique solution for stretching sheet/shrinking sheets to be obtained, along with the corresponding temperature solution in terms of the hypergeometric function, several parameters are included in the investigation and their contribution is... (More)

This research article, explores the influence of an inclined magnetic field on the fluid flow over a permeable stretching/shrinking surface with heat transfer. The study use water as a conventional base fluid, with graphene oxide (GO) and Aluminum oxide (Al2O3) nanoparticles submerged to create a nanofluid, the system of governing nonlinear partial differential equations converted into ordinary differential equations via suitable similarity conversions. This allow for the unique solution for stretching sheet/shrinking sheets to be obtained, along with the corresponding temperature solution in terms of the hypergeometric function, several parameters are included in the investigation and their contribution is graphically explained to examine physical characteristics such as radiation, inclined magnetic field, solution domain, volume fraction parameter, and temperature jump. Increasing the volume fraction and thermal radiation increases the thermal boundary layer, increasing the magnetic field parameter and inverse Darcy number increases the temperature and decays the velocity profile. The present work has many useful applications in engineering, biological and physical sciences, as well as in cleaning engine lubricants and thrust-bearing technologies.

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author
; ; ; and
organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
hybrid nanofluid, MHD, radiation, stretching/shrinking sheet, temperature jump
in
Nanotechnology
volume
35
issue
11
article number
115401
publisher
IOP Publishing
external identifiers
  • pmid:38064739
  • scopus:85181176940
ISSN
0957-4484
DOI
10.1088/1361-6528/ad13be
language
English
LU publication?
yes
id
b8a436bd-5989-469b-a1b4-b9c81b12956e
date added to LUP
2024-02-12 11:25:14
date last changed
2024-04-29 03:41:43
@article{b8a436bd-5989-469b-a1b4-b9c81b12956e,
  abstract     = {{<p>This research article, explores the influence of an inclined magnetic field on the fluid flow over a permeable stretching/shrinking surface with heat transfer. The study use water as a conventional base fluid, with graphene oxide (GO) and Aluminum oxide (Al<sub>2</sub>O<sub>3</sub>) nanoparticles submerged to create a nanofluid, the system of governing nonlinear partial differential equations converted into ordinary differential equations via suitable similarity conversions. This allow for the unique solution for stretching sheet/shrinking sheets to be obtained, along with the corresponding temperature solution in terms of the hypergeometric function, several parameters are included in the investigation and their contribution is graphically explained to examine physical characteristics such as radiation, inclined magnetic field, solution domain, volume fraction parameter, and temperature jump. Increasing the volume fraction and thermal radiation increases the thermal boundary layer, increasing the magnetic field parameter and inverse Darcy number increases the temperature and decays the velocity profile. The present work has many useful applications in engineering, biological and physical sciences, as well as in cleaning engine lubricants and thrust-bearing technologies.</p>}},
  author       = {{Sachhin, S. M. and Mahabaleshwar, U. S. and Huang, H. N. and Sunden, B. and Zeidan, Dia}},
  issn         = {{0957-4484}},
  keywords     = {{hybrid nanofluid; MHD; radiation; stretching/shrinking sheet; temperature jump}},
  language     = {{eng}},
  number       = {{11}},
  publisher    = {{IOP Publishing}},
  series       = {{Nanotechnology}},
  title        = {{An influence of temperature jump and Navier’s slip-on hybrid nano fluid flow over a permeable stretching/shrinking sheet with heat transfer and inclined MHD}},
  url          = {{http://dx.doi.org/10.1088/1361-6528/ad13be}},
  doi          = {{10.1088/1361-6528/ad13be}},
  volume       = {{35}},
  year         = {{2024}},
}