Investigation of Electroosmosis Flow of Copper Nanoparticles With Heat Transfer Due To Metachronal Rhythm
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Date
2021
Journal Title
Journal ISSN
Volume Title
Publisher
Vinca inst Nuclear Sci
Open Access Color
GOLD
Green Open Access
No
OpenAIRE Downloads
OpenAIRE Views
Publicly Funded
No
Abstract
A mathematical model is explored to establish the electroosmotic flow for Cu -water nanoliquids within a ciliated symmetric micro-channel, the flow is established with aid of ciliary motion and axial pressure gradient. Nanofluid comprise of Cu as a nanofluid particles and water as base fluid. Maxwell-Garnelt model is exploited for viscosity and thermal conductivity of nanoliquid. Magnetic field is applied in the transverse direction and external electric field is enforced in the axial direction. Equations of motion are simplified for nanofluid flow in the micro channel by employing low Reynolds number and long wavelength approximation theory. Crucial exact analytical expression are gathered for electric potential, temperature profile, axial velocity, volume flux, pressure gradient, stream function, and result for pressure rise per wavelength explored numerically. The influence of crucial flow parameters on, flow behaviour, pumping phenomena, and temperature profile are thoroughly investigated.
Description
Zeb, Dr. Muhammad/0009-0009-2154-5361
ORCID
Keywords
Ciliated Micro-Channel, Electric Field, Magnetic Field, Cu-Water Nanofluids
Fields of Science
0301 basic medicine, 0303 health sciences, 03 medical and health sciences
Citation
Imran, Ali;...et.al. (2021). "Investigation Of Electroosmosis Flow Of Copper Nanoparticles With Heat Transfer Due To Metachronal Rhythm", Thermal Science, Vol.25, No.SI2, 193-198.
WoS Q
Q4
Scopus Q
Q3

OpenCitations Citation Count
10
Source
Thermal Science
Volume
25
Issue
Start Page
S193
End Page
S198
PlumX Metrics
Citations
CrossRef : 4
Scopus : 10
Captures
Mendeley Readers : 2
SCOPUS™ Citations
10
checked on Feb 25, 2026
Web of Science™ Citations
11
checked on Feb 25, 2026
Page Views
1
checked on Feb 25, 2026
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