Volume 53, Issue 4 pp. 1689-1708
ORIGINAL ARTICLE

Effect of Dufour and chemical reaction on an unsteady magneto hydrodynamics flow past an exponentially moving plate

Ch. Mangamma

Ch. Mangamma

Department of Mathematics, Indur Institute of Engineering and Technology, Siddipet, Telangana, India

Department of Mathematics, GITAM University, Hyderabad, Telangana, India

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P. Pramod Kumar

Corresponding Author

P. Pramod Kumar

Department of Mathematics, B V Raju Institute of Technology, Narsapur, Telangana, India

Correspondence P. Pramod Kumar, Department of Mathematics, B V Raju Institute of Technology, Narsapur - 502313, Telangana, India.

Email: [email protected]

Bala Siddulu Malga, Department of Mathematics, GITAM University, Hyderabad - 502329, Telangana, India.

Email: [email protected]

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Bala Siddulu Malga

Corresponding Author

Bala Siddulu Malga

Department of Mathematics, GITAM University, Hyderabad, Telangana, India

Correspondence P. Pramod Kumar, Department of Mathematics, B V Raju Institute of Technology, Narsapur - 502313, Telangana, India.

Email: [email protected]

Bala Siddulu Malga, Department of Mathematics, GITAM University, Hyderabad - 502329, Telangana, India.

Email: [email protected]

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Lakshmi Appidi

Lakshmi Appidi

Departments of Mathematics, CMR Technical Campus Kandlakoya, Kandlakoya, Telangana, India

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Sweta Matta

Sweta Matta

Departments of Mathematics, CMR Technical Campus Kandlakoya, Kandlakoya, Telangana, India

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First published: 16 January 2024
Citations: 2

Abstract

The aim of the study is to measure the Dufour number effects on the flow patterns and heat transfer in an exponentially accelerated infinite vertical plate embedded in a porous medium in the presence of heat source and chemical reaction. Time-dependent variations in temperature, velocity, and other factors should be taken into consideration due to the flow's unsteadiness. The fluid considered is a gray, absorbing/emitting radiation but nonscattering medium. Using the finite element method, a set of nondimensionless equations is solved analytically. Results are discussed graphically for concentration, temperature, and velocity profiles. Skin friction, Sherwood number, and Nusselt number are also explained for flow parameters through graphs.

DATA AVAILABILITY STATEMENT

The data that support the findings of this study are available from the corresponding author upon reasonable request.

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