Hydromagnetic free convective flow of Walters'-B fluid over a vertical surface with time varying surface conditions

被引:31
作者
Singh, Jitendra Kumar [1 ]
Seth, Gauri Shenkar [2 ]
Begum, Ghousia [1 ]
Vishwanath, S. [1 ]
机构
[1] Vijayanagara Sri Krishnadevarya Univ, Dept Math, Bellary, India
[2] Indian Sch Mines, Dept Appl Math, Dhanbad, Bihar, India
关键词
Walters'-B fluid; Free convection; Rotation; Hall and ion-slip currents; MHD FREE-CONVECTION; MASS-TRANSFER FLOW; ROTATING POROUS DISK; BOUNDARY-LAYER-FLOW; ION-SLIP CURRENTS; HALL CURRENT; CHEMICAL-REACTION; HEAT-TRANSFER; VISCOELASTIC FLUID; THERMAL-RADIATION;
D O I
10.1108/WJE-06-2019-0163
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Purpose In the present investigation, hydromagnetic boundary layer flow of Walters'-B fluid over a vertical porous surface implanted in a porous material under the action of a strong external applied magnetic field and rotation is presented. In several industrial applications, the external applied magnetic field is strong enough to produce Hall and ion-slip currents. Thus, the influence of Hall and ion-slip currents is also considered in this analysis. The flow through configuration is generated because of time varying motion of the free-stream and buoyancy action. Design/methodology/approach Regular perturbation scheme is used to obtain the solution of the system of coupled partial differential equations representing the mathematical model of the problem. Numerical computation has been performed to notice the change in flow behavior and the numerical results for velocity field, temperature field, species concentration, skin friction, rate of heat and mass transfer are presented through graphs and tables. Findings An important fact noticed that the exponential time varying motion of the free-stream induces reverse flow in the direction perpendicular to the main flow. Rising values of the strength of the applied magnetic field give increment in the fluid velocity in the neighbourhood of the vertical surface, this may cause because of the exponential motion of the free-stream. The behaviour of the Darcian drag force is similar as magnetic field on fluid flow. Originality/value In literature, very less research works are available on Walters'-B fluid where unsteadiness in the system occurs because of time varying motion of the free-stream. In this paper, the authors have made an attempt to study the action of Hall and ion-slip currents, rotation and external applied magnetic field on hydromagnetic boundary layer flow of Walters'-B fluid over a vertical surface implanted in a porous material.
引用
收藏
页码:295 / 307
页数:13
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