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      Significance of Lorentz forces on Jeffrey nanofluid flows over a convectively heated flat surface featured by multiple velocity slips and dual stretching constraint: a homotopy analysis approach

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      https://www.riss.kr/link?id=A108501624

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      다국어 초록 (Multilingual Abstract)

      Motivated by the temporal relaxation feature of the Jeffrey model and its practical uses in the rheological modeling of several vital liquids, this study aimed to present a theoretical analysis of three-dimensional MHD Jeffrey nanofluid flows over a dual stretching surface with velocity slip conditions. By adopting the nonhomogeneous nanofluid model along with the passive control approach of nanoparticles, the current flow problem is solved semi-analytically via the homotopy analysis method for convective heating and multiple slip conditions. Dynamically, the magnetic and viscoelastic parameters have a declining effect on the velocity distributions in both directions in the existence and absence of slip effects, while the Deborah number has generally an escalating influence on the flow distributions. On the other hand, the variations of the velocity profiles in both directions are always greater in the presence of slip effect as compared to the nonslip case. Besides, the velocity stretching factor rises the velocity profiles in both directions. Furthermore, this increasing impact is dominant for the velocity distribution along the $y{\rm{-}}$direction as compared to the velocity field along the $x{\rm{-}}$direction. Thermally, the greater Biot number increases the temperature distribution. However, the bigger Schmidt number reduces the concentration distribution.
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      Motivated by the temporal relaxation feature of the Jeffrey model and its practical uses in the rheological modeling of several vital liquids, this study aimed to present a theoretical analysis of three-dimensional MHD Jeffrey nanofluid flows over a d...

      Motivated by the temporal relaxation feature of the Jeffrey model and its practical uses in the rheological modeling of several vital liquids, this study aimed to present a theoretical analysis of three-dimensional MHD Jeffrey nanofluid flows over a dual stretching surface with velocity slip conditions. By adopting the nonhomogeneous nanofluid model along with the passive control approach of nanoparticles, the current flow problem is solved semi-analytically via the homotopy analysis method for convective heating and multiple slip conditions. Dynamically, the magnetic and viscoelastic parameters have a declining effect on the velocity distributions in both directions in the existence and absence of slip effects, while the Deborah number has generally an escalating influence on the flow distributions. On the other hand, the variations of the velocity profiles in both directions are always greater in the presence of slip effect as compared to the nonslip case. Besides, the velocity stretching factor rises the velocity profiles in both directions. Furthermore, this increasing impact is dominant for the velocity distribution along the $y{\rm{-}}$direction as compared to the velocity field along the $x{\rm{-}}$direction. Thermally, the greater Biot number increases the temperature distribution. However, the bigger Schmidt number reduces the concentration distribution.

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      참고문헌 (Reference) 논문관계도

      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

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