Simulation of nanofluid heat transfer in presence of magnetic field: a review M Sheikholeslami, HB Rokni International Journal of Heat and Mass Transfer 115, 1203-1233, 2017 | 358 | 2017 |
Nanofluid two phase model analysis in existence of induced magnetic field M Sheikholeslami, HB Rokni International Journal of Heat and Mass Transfer 107, 288-299, 2017 | 288 | 2017 |
Numerical simulation for impact of Coulomb force on nanofluid heat transfer in a porous enclosure in presence of thermal radiation M Sheikholeslami, HB Rokni International Journal of Heat and Mass Transfer 118, 823-831, 2018 | 268 | 2018 |
Analytical investigation of Jeffery-Hamel flow with high magnetic field and nanoparticle by Adomian decomposition method M Sheikholeslami, DD Ganji, HR Ashorynejad, HB Rokni Applied Mathematics and Mechanics 33, 25-36, 2012 | 265 | 2012 |
Magnetic nanofluid flow and convective heat transfer in a porous cavity considering Brownian motion effects M Sheikholeslami, HB Rokni Physics of Fluids 30 (1), 2018 | 170 | 2018 |
Melting heat transfer influence on nanofluid flow inside a cavity in existence of magnetic field M Sheikholeslami, HB Rokni International Journal of Heat and Mass Transfer 114, 517-526, 2017 | 165 | 2017 |
Numerical modeling of nanofluid natural convection in a semi annulus in existence of Lorentz force M Sheikholeslami, HB Rokni Computer Methods in Applied Mechanics and Engineering 317, 419-430, 2017 | 165 | 2017 |
Application of LBM in simulation of natural convection in a nanofluid filled square cavity with curve boundaries M Sheikholeslami, M Gorji-Bandpy, SM Seyyedi, DD Ganji, HB Rokni, ... Powder Technology 247, 87-94, 2013 | 162 | 2013 |
Effect of magnetic field on Cu–water nanofluid heat transfer using GMDH-type neural network M Sheikholeslami, F Bani Sheykholeslami, S Khoshhal, H Mola-Abasia, ... Neural Computing and Applications 25, 171-178, 2014 | 129 | 2014 |
Steady nanofluid flow between parallel plates considering thermophoresis and Brownian effects M Sheikholeslami, MM Rashidi, DM Al Saad, F Firouzi, HB Rokni, ... Journal of King Saud University-Science 28 (4), 380-389, 2016 | 124 | 2016 |
Effect of melting heat transfer on nanofluid flow in existence of magnetic field considering Buongiorno Model M Sheikholeslami, HB Rokni Chinese journal of physics 55 (4), 1115-1126, 2017 | 101 | 2017 |
CVFEM for effect of Lorentz forces on nanofluid flow in a porous complex shaped enclosure by means of non-equilibrium model M Sheikholeslami, HB Rokni Journal of Molecular Liquids 254, 446-462, 2018 | 98 | 2018 |
Influence of EFD viscosity on nanofluid forced convection in a cavity with sinusoidal wall M Sheikholeslami, HB Rokni Journal of Molecular Liquids 232, 390-395, 2017 | 83 | 2017 |
Entropy scaling based viscosity predictions for hydrocarbon mixtures and diesel fuels up to extreme conditions HB Rokni, JD Moore, A Gupta, MA McHugh, M Gavaises Fuel 241, 1203-1213, 2019 | 65 | 2019 |
Nanofluid flow in a semi-porous channel in the presence of uniform magnetic field M Sheikholeslami, HB Rokni, D Damiri-Ganji International Journal of Engineering 26 (6), 653-662, 2013 | 65 | 2013 |
Purely predictive method for density, compressibility, and expansivity for hydrocarbon mixtures and diesel and jet fuels up to high temperatures and pressures HB Rokni, A Gupta, JD Moore, MA McHugh, BA Bamgbade, M Gavaises Fuel 236, 1377-1390, 2019 | 60 | 2019 |
Approximate traveling wave solutions for coupled Whitham–Broer–Kaup shallow water DD Ganji, HB Rokni, MG Sfahani, SS Ganji Advances in Engineering Software 41 (7-8), 956-961, 2010 | 54 | 2010 |
Influence of melting surface on MHD nanofluid flow by means of two phase model M Sheikholeslami, HB Rokni Chinese Journal of Physics 55 (4), 1352-1360, 2017 | 51 | 2017 |
Approximate traveling wave solution for shallow water wave equation AA Imani, DD Ganji, HB Rokni, H Latifizadeh, E Hesameddini, MH Rafiee Applied Mathematical Modelling 36 (4), 1550-1557, 2012 | 51 | 2012 |
Electrohydrodynamic nanofluid flow and heat transfer between two plates HB Rokni, DM Alsaad, P Valipour Journal of Molecular Liquids 216, 583-589, 2016 | 49 | 2016 |