Significance of Slippage and Electric Field in Mucociliary Transport of Biomagnetic Fluid

Shear stress at the cilia wall is considered as an imperative factor that affects the efficiency of cilia beatings as it describes the momentum transfer between the fluid and the cilia. We consider a visco-inelastic Prandtl fluid in a ciliated channel under electro-osmotic pumping and the slippage e...

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Main Author: Sufian Munawar
Format: Article
Language:English
Published: MDPI AG 2021-04-01
Series:Lubricants
Subjects:
Online Access:https://www.mdpi.com/2075-4442/9/5/48
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author Sufian Munawar
author_facet Sufian Munawar
author_sort Sufian Munawar
collection DOAJ
description Shear stress at the cilia wall is considered as an imperative factor that affects the efficiency of cilia beatings as it describes the momentum transfer between the fluid and the cilia. We consider a visco-inelastic Prandtl fluid in a ciliated channel under electro-osmotic pumping and the slippage effect at cilia surface. Cilia beating is responsible for the stimulation of the flow in the channel. Evenly distributed cilia tend to move in a coordinated rhythm to mobilize propulsive metachronal waves along the channel surface by achieving elliptic trajectory movements in the flow direction. After using lubrication approximations, the governing equations are solved by the perturbation method. The pressure rise per metachronal wavelength is obtained by numerically integrating the expression. The effects of the physical parameters of interest on various flow quantities, such as velocity, pressure gradient, pressure rise, stream function, and shear stress at the ciliated wall, are discussed through graphs. The analysis reveals that the axial velocity is enhanced by escalating the Helmholtz–Smoluchowski velocity and the electro-osmosis effects near the elastic wall. The shear stress at the ciliated boundary elevates with an increase in the cilia length and the eccentricity of the cilia structure.
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spelling doaj.art-9ff48743442e43799e801087cfa000ce2023-11-21T17:31:11ZengMDPI AGLubricants2075-44422021-04-01954810.3390/lubricants9050048Significance of Slippage and Electric Field in Mucociliary Transport of Biomagnetic FluidSufian Munawar0Department of Quantitative Methods, College of Business Administration, Imam Abdulrahman Bin Faisal University, Dammam 31441, Saudi ArabiaShear stress at the cilia wall is considered as an imperative factor that affects the efficiency of cilia beatings as it describes the momentum transfer between the fluid and the cilia. We consider a visco-inelastic Prandtl fluid in a ciliated channel under electro-osmotic pumping and the slippage effect at cilia surface. Cilia beating is responsible for the stimulation of the flow in the channel. Evenly distributed cilia tend to move in a coordinated rhythm to mobilize propulsive metachronal waves along the channel surface by achieving elliptic trajectory movements in the flow direction. After using lubrication approximations, the governing equations are solved by the perturbation method. The pressure rise per metachronal wavelength is obtained by numerically integrating the expression. The effects of the physical parameters of interest on various flow quantities, such as velocity, pressure gradient, pressure rise, stream function, and shear stress at the ciliated wall, are discussed through graphs. The analysis reveals that the axial velocity is enhanced by escalating the Helmholtz–Smoluchowski velocity and the electro-osmosis effects near the elastic wall. The shear stress at the ciliated boundary elevates with an increase in the cilia length and the eccentricity of the cilia structure.https://www.mdpi.com/2075-4442/9/5/48mucociliary transportciliated channelslip boundarymagnetic fieldPrandtl fluid
spellingShingle Sufian Munawar
Significance of Slippage and Electric Field in Mucociliary Transport of Biomagnetic Fluid
Lubricants
mucociliary transport
ciliated channel
slip boundary
magnetic field
Prandtl fluid
title Significance of Slippage and Electric Field in Mucociliary Transport of Biomagnetic Fluid
title_full Significance of Slippage and Electric Field in Mucociliary Transport of Biomagnetic Fluid
title_fullStr Significance of Slippage and Electric Field in Mucociliary Transport of Biomagnetic Fluid
title_full_unstemmed Significance of Slippage and Electric Field in Mucociliary Transport of Biomagnetic Fluid
title_short Significance of Slippage and Electric Field in Mucociliary Transport of Biomagnetic Fluid
title_sort significance of slippage and electric field in mucociliary transport of biomagnetic fluid
topic mucociliary transport
ciliated channel
slip boundary
magnetic field
Prandtl fluid
url https://www.mdpi.com/2075-4442/9/5/48
work_keys_str_mv AT sufianmunawar significanceofslippageandelectricfieldinmucociliarytransportofbiomagneticfluid