TY - JOUR
T1 - EMHD creeping rheology of nanofluid through a micro-channel via ciliated propulsion under porosity and thermal effects
AU - Javid, Khurram
AU - Ellahi, Mazhar
AU - Al-Khaled, Kamel
AU - Raza, Mohsin
AU - Khan, Sami Ullah
AU - Khan, M. Ijaz
AU - El-Zahar, Essam Roshdy
AU - Gouadria, Soumaya
AU - Afzaal, Muhammad
AU - Khan, M. Imran
N1 - Funding Information:
The authors extend their appreciation to the Deanship of Scientific Research at King Khalid University, Abha 61413, Saudi Arabia for funding this work through research groups programs under number R.G.P-1-88-42. Princess Nourah bint Abdulrahman University Researchers Supporting Project number (PNURSP2022R184), Princess Nourah bint Abdulrahman University, Riyadh, Saudi Arabia.
Funding Information:
The authors extend their appreciation to the Deanship of Scientific Research at King Khalid University , Abha 61413, Saudi Arabia for funding this work through research groups programs under number R.G.P-1-88-42 .
Publisher Copyright:
© 2021
PY - 2022/2
Y1 - 2022/2
N2 - The mathematical study is modeled to examine the physical impacts of porosity and thermal slip on flow features of nanofluid through an asymmetric micro-channel. Additionally, the effects of electro-osmosis and magnetic field are also under consideration. Convective boundary conditions are used in the current study by neglecting thermal and buoyancy forces. The obtained rheological equations are transformed into non-dimensional flow systems by using scaling variables. These rheological equations are elucidated by using the creeping approximation and low zeta potential (the Debye–Hückel linearization). The exact solutions of rheological equations are evaluated via Mathematica software 11.0. The dynamic impacts of embedded parameters such as Hartmann number, electro-osmosis parameter, Darcy's number, Brinkman number, Helmholtz–Smoluchowski velocity, slip parameter, thermal radiation, cilia length parameter and Prandtl number on the rheological features are presented graphically via Mathematica software 11.0. The whole analysis is based upon train waves of metachronal propulsion. Three-dimensional graphs are plotted in the current investigation to get more obvious behavior of embedded on the flow features. The cilia length parameter has a remarkable character in enhancing the magnitude of velocity profiles, while, and opposite actions is perceived in the graph of pressure gradient. The thermal slip parameters have an energetic impact in reducing the temperature profile magnitude. The outcomes revealed a good understanding into biomimetic energy frameworks taking advantage of electroosmosis, magnetism and nanotechnology, and, besides, they outfit a valuable benchmark for numerical and experimental multi-physics recreations.
AB - The mathematical study is modeled to examine the physical impacts of porosity and thermal slip on flow features of nanofluid through an asymmetric micro-channel. Additionally, the effects of electro-osmosis and magnetic field are also under consideration. Convective boundary conditions are used in the current study by neglecting thermal and buoyancy forces. The obtained rheological equations are transformed into non-dimensional flow systems by using scaling variables. These rheological equations are elucidated by using the creeping approximation and low zeta potential (the Debye–Hückel linearization). The exact solutions of rheological equations are evaluated via Mathematica software 11.0. The dynamic impacts of embedded parameters such as Hartmann number, electro-osmosis parameter, Darcy's number, Brinkman number, Helmholtz–Smoluchowski velocity, slip parameter, thermal radiation, cilia length parameter and Prandtl number on the rheological features are presented graphically via Mathematica software 11.0. The whole analysis is based upon train waves of metachronal propulsion. Three-dimensional graphs are plotted in the current investigation to get more obvious behavior of embedded on the flow features. The cilia length parameter has a remarkable character in enhancing the magnitude of velocity profiles, while, and opposite actions is perceived in the graph of pressure gradient. The thermal slip parameters have an energetic impact in reducing the temperature profile magnitude. The outcomes revealed a good understanding into biomimetic energy frameworks taking advantage of electroosmosis, magnetism and nanotechnology, and, besides, they outfit a valuable benchmark for numerical and experimental multi-physics recreations.
KW - Ciliated propulsion
KW - Debye–Hückel linearization
KW - Electroosmosis phenomenon
KW - Metachronal waves
KW - Nanoparticles
KW - Thermal slip
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U2 - 10.1016/j.csite.2021.101746
DO - 10.1016/j.csite.2021.101746
M3 - Article
AN - SCOPUS:85122239790
SN - 2214-157X
VL - 30
JO - Case Studies in Thermal Engineering
JF - Case Studies in Thermal Engineering
M1 - 101746
ER -