4.7 Article

Wall properties and convective conditions in MHD radiative peristalsis flow of Eyring-Powell nanofluid

Journal

JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY
Volume 144, Issue 4, Pages 1199-1208

Publisher

SPRINGER
DOI: 10.1007/s10973-020-09576-0

Keywords

Peristalsis; Eyring-Powell nanofluid; Compliant walls; Thermal radiation; Convective conditions

Funding

  1. Higher Education Commission (HEC) of Pakistan [20-3088/NRPU/R D/HEC/13]

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The study investigates the impact of wall flexibility on the MHD peristaltic flow of Eyring-Powell nanofluid with convective conditions. Various factors such as Joule heating, radiation, and viscous dissipation effects are analyzed. The numerical technique is used to examine the influence of pertinent variables on quantities of interest.
Present study examines the impacts of wall flexibility on MHD peristaltic flow of Eyring-Powell nanofluid with convective conditions. No slip conditions are imposed on channel walls. Analysis is made in presence of Joule heating and radiation aspects. Viscous dissipation effects are also analyzed. Nanofluid model is considered by taking the impacts of thermophoresis and Brownian motion. Lubrication approach (large wavelength and low Reynolds number) is taken into account for the simplicity of problem. Numerical technique is utilized for the solution. Influence of pertinent variables on quantities of interest (axial velocity, temperature, concentration and coefficient of heat transfer) is inspected graphically. The larger magnetic field corresponds to a decay in velocity while Eyring-Powell fluid parameters for velocity and temperature show the opposite impact. Brownian motion and thermophoresis impacts yield an increment in temperature and heat transfer coefficient. Reverse behavior is observed for radiation on temperature and concentration.

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