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Magnetohydrodynamic flow around an elongated cylinder in non-Darcian porous regime with higher order chemical reaction and Soret/Dufour effects

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Here, we consider magnetohydrodynamic flow of an incompressible, time independent fluid past an elongated cylinder surrounded in a non-Darcian porous regime with magnetic flux supplied at an acute angle. The Soret/Dufour effects and the higher order chemical reactions are also included in the present study. The subsequent governing equations are resolved using the MATLAB-bvp4c method. The flow velocity appears to decrease with the growth of the Reynolds number, inertia parameter, magnetic field and angle of inclination of the magnetic flux, but improves with the Darcy number. The inertia parameter enhances the fluid temperature and skin friction. Further order of chemical reaction, Soret/ Dufour number plays a significant role in the system.
Rocznik
Strony
11--22
Opis fizyczny
Bibliogr. 28 poz., tab., wykr.
Twórcy
  • Department of Mathematics, Gauhati University, Assam, Guwahati-781014, INDIA
autor
  • Department of Mathematics, Gauhati University, Assam, Guwahati-781014, INDIA
Bibliografia
  • [1] Nield D.A and Bejan A.(2013): Convection in Porous Media.– Springer New York.
  • [2] Rees D.A.S. and Pop I. (1995): Non-Darcy natural convection from a vertical wavy surface in a porous medium.– Transport in Porous Media, vol.20, No.3, pp.223-234.
  • [3] Cheng C.Y.(2006): Non-Darcy natural convection heat and mass transfer from a vertical wavy surface in saturated porous media.– Applied Mathematics and Computation, vol.182, No.2, pp.1488-1500.
  • [4] Sheikhi E, Hashemi A and Kaffash A. (2015): Effect of non-Darcy flow coefficient variation due to water vaporization on well productivity of gas condensate reservoir.– Brazilian Journal of Chemical Engineering, vol.32, No.1, pp.237-245.
  • [5] Mishra S.R, Baag S., Dash G.C. and Acharya M.R. (2019): Numerical approach to MHD flow of power-law fluid on a stretching sheet with non-uniform heat source.– Nonlinear Engineering, vol.9, No.1, pp.81-93.
  • [6] Vedavathi N., Dharmaiah G., Kothuru V. and Gaffar S.A. (2021): Numerical study of radiative non-Darcy nanofluid flow over a stretching sheet with a convective Nield conditions and energy activation.– Nonlinear Engineering, vol.10, pp.159-176.
  • [7] Cortell R. (2007): MHD flow and mass transfer of an electrically conducting fluid of second grade in a porous medium over a stretching sheet with chemically reactive species.– Chemical Engineering and Processing: Process Intensification, vol.46, No.8 pp.721-728.
  • [8] Hayat T., Waqas M., Khan M.I. and Alsaedi A. (2017): Impact of constructive and destructive chemical reaction in magnetohydrodynamics (MHD) flow of Jeffery liquid due to nonlinear radially stretched surface.– Journal of Molecular Liquids, vol.225, pp.302-310.
  • [9] Das U.J. (2017): Free convection heat and mass transfer flow for magnetohydrodynamic chemically reacting and radiating elastico-viscous fluid past a vertical permeable plate with gravity modulation.– International Journal of Applied and Computational Mathematics, vol.3, No.3, pp.2021-2037.
  • [10] Ramzan M., Gul H., Kadry S., Lim C., Nam Y. and Howari F. (2019): Impact of nonlinear chemical reaction and melting heat transfer on an MHD nanofluid flow over a thin needle in porous media.– Applied Sciences, vol.9, No.24, pp.5492.
  • [11] Sarojamma G., Sreelakshmi K., Krishna Jyothi P. and Satya Narayana P.V. (2020): Influence of homogeneous and heterogeneous chemical reactions and variable thermal conductivity on the MHD Maxwell fluid flow due to a surface of variable thickness.– Defect and Diffusion Forum, vol.401, pp.148-163.
  • [12] Yu-Pei L., Shaheen N., Ramzan M., Mursaleen M., Sooppy Nisar K. and Malik M.Y. (2021): Chemical reaction and thermal radiation impact on a nanofluid flow in a rotating channel with Hall current.– Scientific Reports, vol.11, pp.19747.
  • [13] Shafique A., Un Nisa Z., Imran Asjad M., Nazar M. and Jarad F. (2022): Effect of diffusion-thermo on MHD flow of a jeffrey fluid past an exponentially accelerated vertical plate with chemical reaction and heat generation.– Mathematical Problems in Engineering, vol.2022, pp.6279498.
  • [14] Sharma B.R. and Borgohain D. (2014): Influence of the order of chemical reaction and Soret effect on mass transfer of a binary fluid mixture in porous media.– International Journal of Innovative Research in Science, Engineering and Technology, vol.3, No.7. pp.73-78.
  • [15] Mythili D. and Sivaraj R. (2016): Influence of higher order chemical reaction and non-uniform heat source/sink on Casson fluid flow over a vertical cone and flat plate.– Journal of Molecular Liquids, vol.216, pp.466-475.
  • [16] Hosseinzadeh Kh., Gholinia M., Jafari B. and Geravi A.G. (2018): Nonlinear thermal radiation and chemical reaction effects on Maxwell fluid flow with convectively heated plate in a porous medium.– Heat Transfer-Asian Research, vol.48, No.2, pp.744-759.
  • [17] Muthtamilselvan M., Ramya E. and Doh D. (2019): Inclined Lorentz force effects on 3D micropolar fluid flow due to stretchable rotating disks with higher order chemical reaction.– Journal of Mechanical Engineering Science, vol.233, No.1, pp.323-335.
  • [18] Ramzan M., Gul H., Kadry S., Lim C., Nam Y. and Howari F. (2019): Impact of nonlinear chemical reaction and melting heat transfer on an MHD nanofluid flow over a thin needle in porous media.– Applied Sciences, vol.9, No.24, pp.5492.
  • [19] Abd El-Aziz M. (2008): Thermal-diffusion and diffusion-thermo effects on combined heat and mass transfer by hydromagnetic three-dimensional free convection over a permeable stretching surface with radiation.– Physics Letters A, vol.372, No.3 pp.263-272.
  • [20] Cheng C.Y.(2009): Soret and Dufour effects on natural convection heat and mass transfer from a vertical cone in a porous medium.– International Communications in Heat and Mass Transfer, vol.36, No.10, pp.1020-1024.
  • [21] EL-Kabeir S. M. M. (2011):Soret and Dufour effects on heat and mass transfer due to a stretching cylinder saturated porous medium with chemically-reactive species.– Latin American Applied Research, vol.41, No.4, pp.331-337.
  • [22] Makinde O.D., Zimba K. and Anwar Beg O. (2012): Numerical study of chemically-reacting hydromagnetic boundary layer flow with Soret/Dufour effects and a convective surface boundary condition.– International Journal of Thermal & Environmental Engineering, vol.4, No.1, pp.89-98.
  • [23] Hasan M.M and Hossain T. (2019): Soret and Dufour effects on the boundary layer magneto-fluid flow past an infinite vertical porous plate.– Modelling Measurement and Control B, vol.88, pp.125-133.
  • [24] Das U.J. and Dorjee S. (2020): Unsteady MHD oscillatory visco-elastic fluid flow through an inclined channel in presence of chemical reaction with Soret and Dufour effect.– Indian Journal of Pure and Applied Physics., vol.58, No.9, pp.691-697.
  • [25] Kumara M.A., Reddy Y.D., Goud B.S. and Rao V.S. (2021): Effects of Soret, Dufour, Hall current and rotation on MHD natural convective heat and mass transfer flow past an accelerated vertical plate through a porous medium.– International Journal of Thermofluids, vol.9, pp.100061.
  • [26] Das U.J. (2021):MHD Poiseuille flow with Soret and Dufour effects under slip boundary conditions.– Latin American Applied Research, vol.51, No.3, pp.159-163.
  • [27] Balla C.S., Ramesh A., Kishan N. and Rashad A.M. (2021): Impact of Soret and Dufour on bioconvective flow of nanofluid in porous square cavity.– Heat Transfer, vol.50, No.1.
  • [28] Kodi R. and Mopuri O. (2022):Unsteady MHD oscillatory Casson fluid flow past an inclined vertical porous plate in the presence of chemical reaction with heat absorption and Soret effects.– Heat Transfer, vol.51, No.1, pp.733-752.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-d5626cfa-c07e-4d9f-8342-d7d166a4238f
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