TY - JOUR
T1 - Convective Heat Transfer in Magneto-Hydrodynamic Carreau Fluid with Temperature Dependent Viscosity and Thermal Conductivity
AU - Shah, Syed Amir Ghazi Ali
AU - Hassan, Ali
AU - Alsubaie, Najah
AU - Alhushaybari, Abdullah
AU - Alharbi, Fahad M.
AU - Galal, Ahmed M.
AU - Burduhos-Nergis, Diana Petronela
AU - Bejinariu, Costica
N1 - Publisher Copyright:
© 2022 by the authors.
PY - 2022/11
Y1 - 2022/11
N2 - This study is aimed to explore the magneto-hydrodynamic Carreau fluid flow over a stretching/shrinking surface with a convectively heated boundary. Temperature-dependent variable thermophysical properties are utilized to formulate the problem. The flow governing equations are obtained with boundary layer approximation and constitutive relation of the Carreau fluid. The shooting method is utilized to obtain graphical and numeric outcomes. Additionally, initial guesses are generated with the help of Newton’s method. The effect of Weissenberg number, Magnetization, stretching ratio, Prandtl number, suction/blowing parameter, and Lewis number is obtained on velocity, temperature and species continuity profile and analyzed. Shear stress rates and Nusselt number outcomes under body forces influences are present in tabulated data and discussed. It is observed that in absence of magnetization force, B = 0 and strong mass suction (Formula presented.) effect high rates of Nusselt number is obtained. It is concluded that under the influence of power law index and non-linearity parameter maximum heat transfer and reduced shear stress rates are obtained.
AB - This study is aimed to explore the magneto-hydrodynamic Carreau fluid flow over a stretching/shrinking surface with a convectively heated boundary. Temperature-dependent variable thermophysical properties are utilized to formulate the problem. The flow governing equations are obtained with boundary layer approximation and constitutive relation of the Carreau fluid. The shooting method is utilized to obtain graphical and numeric outcomes. Additionally, initial guesses are generated with the help of Newton’s method. The effect of Weissenberg number, Magnetization, stretching ratio, Prandtl number, suction/blowing parameter, and Lewis number is obtained on velocity, temperature and species continuity profile and analyzed. Shear stress rates and Nusselt number outcomes under body forces influences are present in tabulated data and discussed. It is observed that in absence of magnetization force, B = 0 and strong mass suction (Formula presented.) effect high rates of Nusselt number is obtained. It is concluded that under the influence of power law index and non-linearity parameter maximum heat transfer and reduced shear stress rates are obtained.
KW - carreau fluid
KW - convective boundary
KW - porous medium and variable viscosity and thermal conductivity
KW - stretching/shrinking
UR - http://www.scopus.com/inward/record.url?scp=85142411919&partnerID=8YFLogxK
U2 - 10.3390/nano12224084
DO - 10.3390/nano12224084
M3 - Article
AN - SCOPUS:85142411919
SN - 2079-4991
VL - 12
JO - Nanomaterials
JF - Nanomaterials
IS - 22
M1 - 4084
ER -