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G-jitter induced magnetohydrodynamics flow of nanofluid with constant convective thermal and solutal boundary conditions. | LitMetric

AI Article Synopsis

  • The study focuses on the numerical analysis of 2-D mixed convective boundary layer flow involving water-based nanofluids, considering various thermal and mass boundary conditions.
  • It uses a finite difference method with quasi-linearization to solve transformed governing equations, revealing how skin friction, heat transfer, and mass transfer rates vary with parameters like time, frequency, and buoyancy.
  • The findings are novel and could aid in optimizing thermal fluids systems for applications in space materials processing, with verified results showing good consistency with previously published data.

Article Abstract

Taking into account the effect of constant convective thermal and mass boundary conditions, we present numerical solution of the 2-D laminar g-jitter mixed convective boundary layer flow of water-based nanofluids. The governing transport equations are converted into non-similar equations using suitable transformations, before being solved numerically by an implicit finite difference method with quasi-linearization technique. The skin friction decreases with time, buoyancy ratio, and thermophoresis parameters while it increases with frequency, mixed convection and Brownian motion parameters. Heat transfer rate decreases with time, Brownian motion, thermophoresis and diffusion-convection parameters while it increases with the Reynolds number, frequency, mixed convection, buoyancy ratio and conduction-convection parameters. Mass transfer rate decreases with time, frequency, thermophoresis, conduction-convection parameters while it increases with mixed convection, buoyancy ratio, diffusion-convection and Brownian motion parameters. To the best of our knowledge, this is the first paper on this topic and hence the results are new. We believe that the results will be useful in designing and operating thermal fluids systems for space materials processing. Special cases of the results have been compared with published results and an excellent agreement is found.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4429806PMC
http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0122663PLOS

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