On Electro-Osmosis in Peristaltic Blood Flow of Magnetohydrodynamics Carreau Material With Slip and Variable Material Characteristics
No Thumbnail Available
Date
2023
Journal Title
Journal ISSN
Volume Title
Publisher
World Scientific Publ Co Pte Ltd
Open Access Color
OpenAIRE Downloads
OpenAIRE Views
Abstract
The study of electro-osmosis, peristalsis and heat transfer with numerous slips, such as velocity slip, thermal slip and concentration slip, may be used to construct biomimetic thermal pumping systems at the microscale of interest in physiological transport phenomena. A mathematical model has been developed to investigate magnetohydrodynamics non-Newtonian (Carreau fluid) flow induced by the forces to produce a pressure gradient. The walls of the microchannels erode as they expand. The Poisson and Nernst-Planck equations are used to model electro-osmotic processes. This procedure results in Boltzmann circulation of the electric potential across the electric double layer. The governing equations are simplified by approximations such as a low Reynolds number and a long wavelength. The ND Solver in Mathematica simulates and compares simplified coupled nonlinear governing equations. We investigate novel physical parameters affecting flow, heat transfer and pumping. Additionally, a fundamental peristaltic pumping phenomenon known as trapping is graphically provided and briefly discussed. The model's findings show that the velocity increases as the electric field intensifies, implying that electro-osmosis may improve peristaltic flow.
Description
Kamel Guedri/0000-0002-0902-950X; Galal, Ahmed/0000-0002-3541-9704; Vaidya, Hanumesh/0000-0001-5343-8039; Khan, Muhammad Ijaz/0000-0001-7430-4451
Keywords
Variable Viscosity, Electroosmosis, Carreau Material, Slip Effects, Variable Thermal Conductivity
Turkish CoHE Thesis Center URL
Fields of Science
Citation
Vaidya, Hanumesh;...et.al. (2023). "On electro-osmosis in peristaltic blood flow of magnetohydrodynamics carreau material with slip and variable material characteristics" International Journal of Modern Physics B, Vol.37, No.4.
WoS Q
Q2
Scopus Q
Q2

OpenCitations Citation Count
10
Source
Volume
37
Issue
4
Start Page
End Page
PlumX Metrics
Citations
Scopus : 17
Captures
Mendeley Readers : 5
Google Scholar™
