1 Ullah, I., "Unsteady MHD mixed convection slip flow of Casson fluid over nonlinearly stretching sheet embedded in a porous medium with chemical reaction, thermal radiation, heat generation/absorption and convective boundary conditions" 11 : e0165348-, 2016
2 Hayat, T., "Unsteady MHD flow over exponentially stretching sheet with slip conditions" 37 : 193-208, 2016
3 Azeem Khan, W., "Three-dimensional flow of an Oldroyd-B nanofluid towards stretching surface with heat generation/absorption" 9 : e105107-, 2014
4 Hayat, T., "Three-dimensional flow of a Jeffery fluid over a linearly stretching sheet" 17 : 699-707, 2012
5 Himanshu Upreti ; Alok Kumar Pandey ; Manoj Kumar, "Thermophoresis and suction/injection roles on free convective MHD flow of Ag–kerosene oil nanofluid" 한국CDE학회 7 (7): 386-396, 2020
6 Shafiq, A., "Thermally enhanced Darcy–Forchheimer casson-water/glycerine rotating nanofluid flow with uniform magnetic field" 12 : 605-, 2021
7 Dawar, A., "Theoretical analysis of Cu-H2O, Al2O3-H2O, and TiO2-H2O nanofluid flow past a rotating disk with velocity slip and convective conditions" 2021 : 5471813-, 2021
8 Elnaqeeb, T., "Ternary-hybrid nanofluids : significance of suction and dual-stretching on three-dimensional flow of water conveying nanoparticles with various shapes and densities" 76 : 231-243, 2021
9 Acharya, N., "Spectral quasi linearization simulation of radiative nanofluidic transport over a bended surface considering the effects of multiple convective conditions" 84 : 139-154, 2020
10 Singh, K., "Slip flow of micropolar fluid through a permeable wedge due to the effects of chemical reaction and heat source/sink with Hall and ion-slip currents : An analytic approach" 9 : 289-303, 2020
1 Ullah, I., "Unsteady MHD mixed convection slip flow of Casson fluid over nonlinearly stretching sheet embedded in a porous medium with chemical reaction, thermal radiation, heat generation/absorption and convective boundary conditions" 11 : e0165348-, 2016
2 Hayat, T., "Unsteady MHD flow over exponentially stretching sheet with slip conditions" 37 : 193-208, 2016
3 Azeem Khan, W., "Three-dimensional flow of an Oldroyd-B nanofluid towards stretching surface with heat generation/absorption" 9 : e105107-, 2014
4 Hayat, T., "Three-dimensional flow of a Jeffery fluid over a linearly stretching sheet" 17 : 699-707, 2012
5 Himanshu Upreti ; Alok Kumar Pandey ; Manoj Kumar, "Thermophoresis and suction/injection roles on free convective MHD flow of Ag–kerosene oil nanofluid" 한국CDE학회 7 (7): 386-396, 2020
6 Shafiq, A., "Thermally enhanced Darcy–Forchheimer casson-water/glycerine rotating nanofluid flow with uniform magnetic field" 12 : 605-, 2021
7 Dawar, A., "Theoretical analysis of Cu-H2O, Al2O3-H2O, and TiO2-H2O nanofluid flow past a rotating disk with velocity slip and convective conditions" 2021 : 5471813-, 2021
8 Elnaqeeb, T., "Ternary-hybrid nanofluids : significance of suction and dual-stretching on three-dimensional flow of water conveying nanoparticles with various shapes and densities" 76 : 231-243, 2021
9 Acharya, N., "Spectral quasi linearization simulation of radiative nanofluidic transport over a bended surface considering the effects of multiple convective conditions" 84 : 139-154, 2020
10 Singh, K., "Slip flow of micropolar fluid through a permeable wedge due to the effects of chemical reaction and heat source/sink with Hall and ion-slip currents : An analytic approach" 9 : 289-303, 2020
11 Malvandi, A., "Slip effects on unsteady stagnation point flow of a nanofluid over a stretching sheet" 253 : 377-384, 2014
12 Freidoonimehr, N., "Slip effects on MHD stagnation point-flow and heat transfer over a porous rotating disk" 5 : 34-50, 2015
13 Mukhopadhyay, S., "Slip effects on MHD boundary layer flow over an exponentially stretching sheet with suction/blowing and thermal radiation" 4 : 485-491, 2013
14 Hayat, T., "Simultaneous effects of melting heat and internal heat generation in stagnation point flow of Jeffrey fluid towards a nonlinear stretching surface with variable thickness" 132 : 344-354, 2018
15 Khan, S. U., "Simultaneous effects of bioconvection and velocity slip in threedimensional flow of Eyring–Powell nanofluid with Arrhenius activation energy and binary chemical reaction" 117 : 104738-, 2020
16 Waqas, M., "Simulation of magnetohydrodynamics and radiative heat transport in convectively heated stratified flow of Jeffrey nanofluid" 133 : 45-51, 2019
17 Bhattacharyya, K., "Similarity solution of mixed convective boundary layer slip flow over a vertical plate" 4 : 299-305, 2013
18 Song, Y. -Q., "Significance of haphazard motion and thermal migration of alumina and copper nanoparticles across the dynamics ofwater and ethylene glycol on a convectively heated surface" 26 : 101050-, 2021
19 Kothandapani, M., "Peristaltic transport of a Jeffrey fluid under the effect of magnetic field in an asymmetric channel" 43 : 915-924, 2008
20 Hayat, T., "Peristaltic motion of a Jeffrey fluid under the effect of a magnetic field in a tube" 13 : 1343-1352, 2008
21 Hayat, T., "Onmagnetohydrodynamic flow of nanofluid due to a rotating disk with slip effect : A numerical study" 315 : 467-477, 2017
22 Shah, S., "Numerical study of three-dimensional mixed convective Maxwell nanofluid flow over a stretching surface with non-linear thermal radiation and convective boundary conditions" 8 : 160-170, 2019
23 Aziz, A., "Numerical study for heat generation/absorption in flow of nanofluid by a rotating disk" 8 : 785-792, 2018
24 Singh, K., "Numerical solution of micropolar fluid flow via stretchable surface with chemical reaction and melting heat transfer using Keller-Box method" 10 : 194-207, 2021
25 Shafiq, A., "Numerical investigation and sensitivity analysis on bioconvective tangent hyperbolic nanofluid flow towards stretching surface by response surface methodology" 59 : 4533-4548, 2020
26 Shehzad, S. A., "Nonlinear thermal radiation in three-dimensional flow of Jeffrey nanofluid : A model for solar energy" 248 : 273-286, 2014
27 Ibrahim, W., "Nonlinear convection flow ofWilliamson nanofluid past a radially stretching surface" 9 : 85026-, 2019
28 Turkyilmazoglu, M., "Multiple solutions of heat and mass transfer of MHD slip flow for the viscoelastic fluid over a stretching sheet" 50 : 2264-2276, 2011
29 Seth, G. S., "Modeling and analysis of mixed convection stagnation point flow of nanofluid towards a stretching surface : OHAM and FEM approach" 37 : 4081-4103, 2018
30 Ibrahim, W., "Mixed convection flow of Oldroyd-B nano fluid with Cattaneo-Christov heat and mass flux model with third order slip" 9 : 125023-, 2019
31 Singh, K., "Melting and chemical reaction effects in stagnation point flow of micropolar fluid over a stretchable porous medium in the presence of nonuniform heat source/sink" 23 : 767-781, 2020
32 Ibrahim, W., "MHD boundary layer flow and heat transfer of a nanofluid past a permeable stretching sheet with velocity, thermal and solutal slip boundary conditions" 75 : 1-10, 2013
33 Dawar, A., "Joule heating in magnetohydrodynamic micropolar boundary layer flow past a stretching sheet with chemical reaction and microstructural slip" 25 : 100870-, 2021
34 Rashidi, M. M., "Investigation of entropy generation in MHD and slip flow over a rotating porous disk with variable properties" 70 : 892-917, 2014
35 Sharma, R., "Insight into the significance of Joule dissipation, thermal jump and partial slip : Dynamics of unsteady ethylene glycol conveying graphene nanoparticles through a porous medium" 10 : 16-27, 2021
36 Shah, S., "Impacts of variable thermal conductivity on stagnation point boundary layer flow past a Riga plate with variable thickness using generalized Fourier’s law" 9 : 303-312, 2018
37 Gireesha, B. J., "Impact of nonlinear thermal radiation on magnetohydrodynamic three-dimensional boundary layer flow of Jeffrey nanofluid over a nonlinearly permeable stretching sheet" 549 : 124051-, 2020
38 Sagheer, M., "Impact of non-uniform heat source/sink on magnetohydrodynamic Maxwell nanofluid flow over a convectively heated stretching surface with chemical reaction" 8 : 795-805, 2019
39 Ramzan, M., "Heat transfer analysis of the mixed convective flow of magnetohydrodynamic hybrid nanofluid past a stretching sheet with velocity and thermal slip conditions" 16 : e0260854-, 2021
40 Singh, K., "Heat and mass transfer on squeezing unsteadyMHD nanofluid flow between parallel plates with slip velocity effect" 2016 : 9708562-, 2016
41 Khan, U., "Effects of viscous dissipation and slip velocity on two-dimensional and axisymmetric squeezing flow of Cu-water and Cu-kerosene nanofluids" 4 : 40-49, 2015
42 Hayat, T., "Effects of an endoscope and magnetic field on the peristalsis involving Jeffrey fluid" 13 : 1581-1591, 2008
43 Thumma, T., "Effect of viscous dissipation and Joule heating on magnetohydrodynamic Jeffery nanofluid flow with and without multi slip boundary conditions" 7 : 516-526, 2018
44 Animasaun, I. L., "Dynamics of a ternary-hybrid nanofluid subject to magnetic flux density and heat source or sink on a convectively heated surface" 28 : 101654-, 2022
45 Tripathi, R., "Double diffusive flow of a hydromagnetic nanofluid in a rotating channel with Hall effect and viscous dissipation : Active and passive control of nanoparticles" 28 : 2630-2641, 2017
46 Alreshidi, N. A., "Brownian motion and thermophoresis effects on MHD three dimensional nanofluid flow with slip conditions and Joule dissipation due to porous rotating disk" 25 : 729-, 2020
47 Muhammad, T., "Bioconvection flow of magnetized Carreau nanofluid under the influence of slip over a wedge with motile microorganisms" 143 : 945-957, 2021
48 Dawar, A., "Analytical simulation for magnetohydrodynamic Maxwell fluid flow past an exponentially stretching surface with first-order velocity slip condition" 11 : 1009-, 2021
49 Shafiq, A., "A study of dual stratification on stagnation pointWalters’ B nanofluid flow via radiative Riga plate : A statistical approach" 136 : 1-24, 2021
50 Shafiq, A., "A sensitivity study on carbon nanotubes significance in Darcy–Forchheimer flow towards a rotating disk by response surface methodology" 11 : 1-26, 2021
51 Wakif, A., "A semi-analytical analysis of electro-thermo-hydrodynamic stability in dielectric nanofluids using Buongiorno’s mathematical model together with more realistic boundary conditions" 9 : 1438-1454, 2018