Entropy and energy transfer analysis of a Maxwell thin‐film fluid over an inclined surface with viscous dissipation effect

Author:

Murugan Revathi Devi1,Sivakumar Narsu1ORCID,Tarakaramu Nainaru23ORCID,Alhazmi Hadil4,Abdullaev Sherzod56

Affiliation:

1. Department of Mathematics College of Engineering and Technology SRM Institute of Science and Technology Chengalpattu Tamil Nadu India

2. Department of Mathematics School of Liberal Arts and Sciences Mohan Babu University Tirupati, Andhra Pradesh India

3. Department of Mathematics School of Liberal Arts and Sciences Sree Vidyanikethan Engineering College Tirupati, Andhra Pradesh India

4. Department of Mathematical Sciences College of Science Princess Nourah bint Abdulrahman University Riyadh Saudi Arabia

5. Faculty of Chemical Engineering New Uzbekistan University Tashkent Uzbekistan

6. Scientific and Innovation Department Tashkent State Pedagogical University named after Nizami Tashkent Uzbekistan

Abstract

AbstractNon‐Newtonian fluid plays a vital role in the field of manufacturing and engineering sector, because of its immense heat transfer rate. The two‐dimensional incompressible unsteady Maxwell nanofluid thin‐film flow with MHD and viscous dissipation over an inclined surface is investigated. One of the mechanisms in the second law of thermodynamics, that is irreversibility which also analyzed. The Maxwell nanofluid thin film energy and motion equations in the additional information have been turned into a coupled differential system of the third order. The transformed ODE equations are further evaluated by using the Homotopy Analysis Method (HAM). The variations of entropy rate, velocity, Bejan number and temperature field with the various emerging parameters are analyzed. This could potentially lead to the development of solar energy systems that are both affordable and highly efficient, so enabling the more efficient use of renewable energy sources and reducing our dependence on fossil fuels.

Publisher

Wiley

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