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Hydromagnetic peristaltic flow of convective Casson nanofluid through a vertical porous channel under the influence of Ohmic heating and viscous dissipation effects

Jagadesh Vardagala (Department of Mathematics, Sri Venkateswara University, Tirupati, India)
Sreenadh Sreedharamalle (Department of Mathematics, Sri Venkateswara University, Tirupati, India)
Ajithkumar Moorthi (Department of Mathematics, School of Advanced Sciences, Vellore Institute of Technology, Vellore, India)
Sucharitha Gorintla (Department of Mathematics, School of Advanced Sciences, Vellore Institute of Technology, Vellore, India)
Lakshminarayana Pallavarapu (Department of Mathematics, School of Advanced Sciences, Vellore Institute of Technology, Vellore, India)

World Journal of Engineering

ISSN: 1708-5284

Article publication date: 2 February 2024

28

Abstract

Purpose

Ohmic heating generates temperature with the help of electrical current and resists the flow of electricity. Also, it generates heat rapidly and uniformly in the liquid matrix. Electrically conducting biofluid flows with Ohmic heating have many biomedical and industrial applications. The purpose of this study is to provide the significance of the effects of Ohmic heating and viscous dissipation on electrically conducting Casson nanofluid flow driven by peristaltic pumping through a vertical porous channel.

Design/methodology/approach

In this analysis, the non-Newtonian properties of fluid will be characterized by the Casson fluid model. The long wavelength approach reduces the complexity of the governing system of coupled partial differential equations with non-linear components. Using a regular perturbation approach, the solutions for the flow quantities are established. The fascinating and essential characteristics of flow parameters such as the thermal Grashof number, nanoparticle Grashof number, magnetic parameter, Brinkmann number, permeability parameter, Reynolds number, Casson fluid parameter, thermophoresis parameter and Brownian movement parameter on the convective peristaltic pumping are presented and thoroughly addressed. Furthermore, the phenomenon of trapping is illustrated visually.

Findings

The findings indicate that intensifying the permeability and Casson fluid parameters boosts the temperature distribution. It is observed that the velocity profile is elevated by enhancing the thermal Grashof number and perturbation parameter, whereas it reduces as a function of the magnetic parameter and Reynolds number. Moreover, trapped bolus size upsurges for greater values of nanoparticle Grashof number and magnetic parameter.

Originality/value

There are some interesting studies in the literature to explain the nature of the peristaltic flow of non-Newtonian nanofluids under various assumptions. It is observed that there is no study in the literature as investigated in this paper.

Keywords

Acknowledgements

Corrigendum: It has come to the attention of the publisher that the article Vardagala, J., Sreedharamalle, S., Moorthi, A., Gorintla, S. and Pallavarapu, L. (2024), “Hydromagnetic peristaltic flow of convective Casson nanofluid through a vertical porous channel under the influence of Ohmic heating and viscous dissipation effects”, World Journal of Engineering, Vol. ahead-of-print No. ahead-of-print. https://doi.org/10.1108/WJE-10-2023-0455 contained an affiliation error. This error was introduced during the submission process. Department of Mathematics, Vellore Institute of Technology, Chennai, India has been changed to Department of Mathematics, Vellore Institute of Technology, Vellore, India. The authors sincerely apologise for this error and for any misunderstanding.

Citation

Vardagala, J., Sreedharamalle, S., Moorthi, A., Gorintla, S. and Pallavarapu, L. (2024), "Hydromagnetic peristaltic flow of convective Casson nanofluid through a vertical porous channel under the influence of Ohmic heating and viscous dissipation effects", World Journal of Engineering, Vol. ahead-of-print No. ahead-of-print. https://doi.org/10.1108/WJE-10-2023-0455

Publisher

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Emerald Publishing Limited

Copyright © 2024, Emerald Publishing Limited

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