Arrhenius kinetics driven nonlinear mixed convection flow of Casson liquid over a stretching surface in a Darcian porous medium
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作者:
Ganesh, N. Vishnu
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Ramakrishna Mission Vivekananda Coll, PG & Res Dept Math, Chennai 600004, Tamil Nadu, IndiaRamakrishna Mission Vivekananda Coll, PG & Res Dept Math, Chennai 600004, Tamil Nadu, India
Ganesh, N. Vishnu
[1
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Al-Mdallal, Qasem M.
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United Arab Emirates Univ, Dept Math Sci, POB 15551, Abu Dhabi, U Arab EmiratesRamakrishna Mission Vivekananda Coll, PG & Res Dept Math, Chennai 600004, Tamil Nadu, India
Al-Mdallal, Qasem M.
[2
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Kalaivanan, R.
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Vivekananda Coll, Dept Math, Madurai 625234, Tamil Nadu, IndiaRamakrishna Mission Vivekananda Coll, PG & Res Dept Math, Chennai 600004, Tamil Nadu, India
Kalaivanan, R.
[3
]
Reena, K.
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Nehru Arts & Sci Coll, Dept Math, Coimbatore 641105, Tamil Nadu, IndiaRamakrishna Mission Vivekananda Coll, PG & Res Dept Math, Chennai 600004, Tamil Nadu, India
Reena, K.
[4
]
机构:
[1] Ramakrishna Mission Vivekananda Coll, PG & Res Dept Math, Chennai 600004, Tamil Nadu, India
[2] United Arab Emirates Univ, Dept Math Sci, POB 15551, Abu Dhabi, U Arab Emirates
[3] Vivekananda Coll, Dept Math, Madurai 625234, Tamil Nadu, India
[4] Nehru Arts & Sci Coll, Dept Math, Coimbatore 641105, Tamil Nadu, India
The non-linear mixed convective heat and mass transfer features of a non-Newtonian Casson liquid flow over a stretching surface are investigated numerically. The stretching surface is embedded in a Darcian porous medium with heat generation/absorption impacts. The fluid flow is assumed to be driven by both buoyancy and Arrhenius kinetics. The governing equations are modelled with the help of Boussinesq and Rosseland approximations. The similarity solutions of the non-dimensional equations are obtained using two numerical approaches, namely fourth fifth Runge -Kutta Fehlberg method and the shooting approach. The velocity, temperature and con-centration profiles are discussed for important physical parameters through various graphical illustrations. The skin friction, the non-dimensional wall temperature, and the concentration expressions were derived and analysed. The results indicate that the increasing values of linear and nonlinear convection due to temperature, nonlinear convection due to concentration, and heat of reaction increase the dimensionless wall temperature. The dimensionless wall concen-tration rises with the increasing values of heat of reaction, linear and nonlinear convection due to temperature, and nonlinear convection due to concentration parameters.