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S. Noreen

Bio: S. Noreen is an academic researcher. The author has contributed to research in topics: Biot number & Nusselt number. The author has an hindex of 1, co-authored 1 publications receiving 9 citations.

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TL;DR: In this article, the peristaltic flow of viscous fluid in an asymmetric inclined channel with heat transfer and inclined magnetic field is examined and the convective boundary conditions have been handled.
Abstract: Peristaltic flow of viscous fluid in an asymmetric inclined channel with heat transfer and inclined magnetic field is examined. The convective boundary conditions have been handled. Complexity of emerging equations is simplified by utilizing long wavelength and low Reynolds number approximation. Variation of emerging parameters embedded in flow system are discussed. It is observed that an increase in Brikman number increases the temperature profile. Further, it is seen that temperature distribution is an increasing function of Biot number at lower wall.

10 citations


Cited by
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TL;DR: In this article, the peristaltic transport of silver-water nanofluid in the presence of constant applied magnetic field was examined and the effects of various parameters on the quantities of interest were studied through graphs.

86 citations

Journal ArticleDOI
TL;DR: In this paper, the simultaneous effects of heat and mass transfer in the mixed convection peristaltic flow of viscous fluid in an asymmetric channel were investigated and the results indicated that the concentration and temperature of the fluid increase whereas the mass transfer rate at the wall decreases with an increase of the heat transfer Biot number.
Abstract: The present investigation addresses the simultaneous effects of heat and mass transfer in the mixed convection peristaltic flow of viscous fluid in an asymmetric channel. The channel walls exhibit the convective boundary conditions. In addition, the effects due to Soret and Dufour are taken into consideration. Resulting problems are solved for the series solutions. Numerical values of heat and mass transfer rates are displayed and studied. Results indicate that the concentration and temperature of the fluid increase whereas the mass transfer rate at the wall decreases with increase of the mass transfer Biot number. Furthermore, it is observed that the temperature decreases with the increase of the heat transfer Biot number.

17 citations

Journal ArticleDOI
TL;DR: In this paper, the peristaltic flow of Eyring-Powell nanofluid in an asymmetric channel is studied and the effects of various parameters of interest on the velocity, pressure rise, concentration and temperature are discussed and illustrated graphically.
Abstract: Abstract This research is devoted to the peristaltic flow of Eyring-Powell nanofluid in an asymmetric channel. Robins-type (convective) boundary conditions are employed in the presence of mixed convection and magnetic field. The basic equations of Eyring-Powell nanofluid are modeled in wave frame of reference. Long wavelength and low Reynolds number approach is utilized. Numerical solution of the governing problem is computed and analyzed. The effects of various parameters of interest on the velocity, pressure rise, concentration and temperature are discussed and illustrated graphically. Brownian motion parameter and thermophoresis parameter facilitates the increase in temperature of fluid. Biot numbers serve to reduce the temperature at channel walls.

16 citations

Journal ArticleDOI
01 Oct 2019-Entropy
TL;DR: The magnitude of total entropy generation increased as the thermophoresis parameter and Brownian motion parameter increased, and Soret and the Dufour parameter had a strong tendency to control the temperature profile and Bejan number.
Abstract: A theoretical study is presented to examine entropy generation in double-diffusive convection in an Electro-osmotic flow (EOF) of nanofluids via a peristaltic microchannel. Buoyancy effects due to change in temperature, solute concentration and nanoparticle volume fraction are also considered. This study was performed under lubrication and Debye-Huckel linearization approximation. The governing equations are solved exactly. The effect of dominant hydrodynamic parameters (thermophoresis, Brownian motion, Soret and Dufour), Grashof numbers (thermal, concentration and nanoparticle) and electro-osmotic parameters on double-diffusive convective flow are discussed. Moreover, trapping, pumping, entropy generation number, Bejan number and heat transfer rate were also examined under the influence of pertinent parameters such as the thermophoresis parameter, the Brownian motion parameter, the Soret parameter, the Dufour parameter, the thermal Grashof number, the solutal Grashof number, the nanoparticle Grashof number, the electro-osmotic parameter and Helmholtz–Smoluchowski velocity. The electro-osmotic parameter powerfully affected the velocity profile. The magnitude of total entropy generation increased as the thermophoresis parameter and Brownian motion parameter increased. Soret and the Dufour parameter had a strong tendency to control the temperature profile and Bejan number. The findings of the present analysis can be used in clinical purposes such as cell therapy, drug delivery systems, pharmaco-dynamic pumps and particles filtration.

10 citations