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HALL AND ION SLIP EFFECTS ON FREE CONVECTION HEAT AND MASS TRANSFER OF CHEMICALLY REACTING COUPLE STRESS FLUID IN A POROUS EXPANDING OR CONTRACTING WALLS WITH SORET AND DUFOUR EFFECTS

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Department of Applied Mathematics
Defence Institute of Advanced Technology, Deemed University, Pune - 411025, India.

* Corresponding Authors: Email: email ; email

Frontiers in Heat and Mass Transfer 2014, 5, 1-12. https://doi.org/10.5098/hmt.5.22

Abstract

This article deals the Hall and ion slip currents on free convection flow, heat and mass transfer of an electrically conducting couple stress fluid through porous channels with chemical reaction, Soret and Dufour effects. Assume that there is symmetric suction or injection along the expanding or contracting walls, which are maintained at different constant temperatures and concentrations. The governing partial differential equations are reduced to nonlinear dimensionless ordinary differential equations using the similarity transformations and solved numerically by the method of quasilinearization. The effects of various parameters on non-dimensional velocity components, temperature distribution and concentration are discussed in detail and shown in the form of graphs.

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APA Style
Ojjela, O., Kumar, N.N. (2014). HALL AND ION SLIP EFFECTS ON FREE CONVECTION HEAT AND MASS TRANSFER OF CHEMICALLY REACTING COUPLE STRESS FLUID IN A POROUS EXPANDING OR CONTRACTING WALLS WITH SORET AND DUFOUR EFFECTS. Frontiers in Heat and Mass Transfer, 5(1), 1-12. https://doi.org/10.5098/hmt.5.22
Vancouver Style
Ojjela O, Kumar NN. HALL AND ION SLIP EFFECTS ON FREE CONVECTION HEAT AND MASS TRANSFER OF CHEMICALLY REACTING COUPLE STRESS FLUID IN A POROUS EXPANDING OR CONTRACTING WALLS WITH SORET AND DUFOUR EFFECTS. Front Heat Mass Transf. 2014;5(1):1-12 https://doi.org/10.5098/hmt.5.22
IEEE Style
O. Ojjela and N.N. Kumar, “HALL AND ION SLIP EFFECTS ON FREE CONVECTION HEAT AND MASS TRANSFER OF CHEMICALLY REACTING COUPLE STRESS FLUID IN A POROUS EXPANDING OR CONTRACTING WALLS WITH SORET AND DUFOUR EFFECTS,” Front. Heat Mass Transf., vol. 5, no. 1, pp. 1-12, 2014. https://doi.org/10.5098/hmt.5.22



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