4.7 Article

Galerkin scheme on entropy generation in complex fluid involving gyrotactic microorganisms on cylinder/surface via solar thermal radiations

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ELSEVIER
DOI: 10.1016/j.csite.2023.102995

关键词

Double diffusion; Hyperbolic tangent liquid; Heat sink; Dufour effect; Thermal radiation; Gyrotactic microorganisms; Soret effect; Cylinder; surface

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In this study, numerical analysis is conducted on double diffusion and gyrotactic microorganisms in complex fluid on stretching cylinders and surfaces, taking into account Dufour and Soret influences, as well as mechanisms like thermal radiation, heat sink, viscous dissipation, chemical reactions, and Joule heating. Applications of this study include thermal insulation, biomedical engineering, chemical processing, food preservation, cooling systems, and power generation.
In the current analysis, numerical investigation for double diffusion and gyrotactic microorgan-isms in complex fluid involving Dufour and Soret influences over stretching cylinder, and stretching surface is investigated new research in recent developments and analysis of such problems are not observed yet in the open literature. Mechanisms of thermal radiation, heat sink, viscous dissipation, chemical reaction and Joule heating are incorporated. Solar water heating, solar cooking, solar power generation and solar desalination are a few examples of practical uses for solar thermal processes. Applications of the current analysis include thermal insulation, biomedical engineering, chemical processing, food preservation, cooling systems and power generation. Moreover, the utilization of a uniform magnetic field is incorporated along the z-direction under consideration of magnetic Reynolds number (low). Such development has been utilized in several industrial and technological applications. This modern physical development is transformed in mathematical modeling regarding highly coupled non-linear PDEs. A set of PDEs (non-linear) is transformed into dimensionless form regarding non-linear ODEs utilizing relevant variables and a numerical solution is achieved using finite element methodology. In this devel-opment, essential simulations have been obtained, for example, surface drag force, Nusselt number, mass diffusion rate and microorganism concentration.

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