TY - JOUR
T1 - Influence of interfacial electrokinetic on MHD radiative nanofluid flow in a permeable microchannel with Brownian motion and thermophoresis effects
AU - Khan, Abdul Samad
AU - Nie, Yufeng
AU - Shah, Zahir
AU - Khan, Ilyas
AU - Baleanu, Dumitru
AU - Nisar, Kottakkaran Sooppy
AU - Khan, Raees
N1 - Publisher Copyright:
© 2020 Abdul Samad Khan et al., published by De Gruyter.
PY - 2020/1/1
Y1 - 2020/1/1
N2 - In this study, the behavior of a microchannel flow is examined. The fluid is considered to be a nanofluid, which moves between two parallel flat plates in the presence of an electrical double layer. The Buongiorno nanofluid is considered with body force. In this study, the unphysical supposition presented in the preceding work to the discontinuity of the flow fled where the electrostatic potential in the central of the canal must be equal to zero is removed. The incorrect supposition that the pressure constant is preserved, which is considered a known form, is corrected. The currentfresh model equation is modified by using dimensionless parameters to convert partial differential equations into ordinary differential equations. The transformed nonlinear equations are solved by the homotopy analysis method. The physical parameters, magnetic parameters, Eckert number, Lewis number, Brownian motion parameters, thermophoresis parameters, and Prandtl number are analyzed. The influence of both the viscous and Joule dissipation in the presence of magnetohydrodynamic effect is examined.
AB - In this study, the behavior of a microchannel flow is examined. The fluid is considered to be a nanofluid, which moves between two parallel flat plates in the presence of an electrical double layer. The Buongiorno nanofluid is considered with body force. In this study, the unphysical supposition presented in the preceding work to the discontinuity of the flow fled where the electrostatic potential in the central of the canal must be equal to zero is removed. The incorrect supposition that the pressure constant is preserved, which is considered a known form, is corrected. The currentfresh model equation is modified by using dimensionless parameters to convert partial differential equations into ordinary differential equations. The transformed nonlinear equations are solved by the homotopy analysis method. The physical parameters, magnetic parameters, Eckert number, Lewis number, Brownian motion parameters, thermophoresis parameters, and Prandtl number are analyzed. The influence of both the viscous and Joule dissipation in the presence of magnetohydrodynamic effect is examined.
KW - electrical double layer
KW - HAM
KW - microchannel
KW - nanofluid
KW - similarity transformation
UR - http://www.scopus.com/inward/record.url?scp=85097149840&partnerID=8YFLogxK
U2 - 10.1515/phys-2020-0161
DO - 10.1515/phys-2020-0161
M3 - 文章
AN - SCOPUS:85097149840
SN - 2391-5471
VL - 18
SP - 726
EP - 737
JO - Open Physics
JF - Open Physics
IS - 1
ER -