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Hybrid ·Peer-reviewed·ISSN (Online): 2169-012X·ISSN (Print): 0972-0502

Monthly Journal: Publishes the methodological and theoretical role of mathematics and mathematical applications underpinning scientific research.

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Open Access Research Article

Impact of inclined magnetic field and rotation on peristaltic flow of viscoelastic fluid with variable viscosity

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pp. 729–740Vol. 28Issue 3-AApril 2025DOI: 10.47974/JIM-1968XML
Received:
08 May 2024
Published Online:
08 May 2025
Article type:
Research Article
Language:
EN
Article no.:
JIM-1968
Pages:
729–740

Abstract

This study focuses on how a slanted magnetic field and rotation affect viscoelastic fluid it moves peristaltically via porous media in a tapered asymmetric slanted channel with a variable viscosity and the mixed convection heat transfer is investigated. Under the presumption of a long wavelength and a short Reynold number, the equations of continuity, momentum, and energy have been developed. The flow is examined while moving at the wave’s velocity in a wave frame of reference. The series of analytical solutions for the temperature, velocity, and stream function can be obtained using the perturbation technique. Using the Mathematica package, the effect of several fascinating parameters on temperature, axial velocity, and stream function in a flow system has been produced and described through graphical representation.

Keywords

Subject Classifications

76X0583C50

References

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