4.7 Article

MHD mixed convection of hybrid nanofluid in a wavy porous cavity employing local thermal non-equilibrium condition

Journal

SCIENTIFIC REPORTS
Volume 11, Issue 1, Pages -

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41598-021-95857-z

Keywords

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Funding

  1. Deanship of Scientific Research at King Khalid University, Abha, Saudi Arabia [RGP. 2/144/42]
  2. Deanship of Scientific Research at Princess Nourah Bint Abdulrahman University through the Fast-track Research Funding Program

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The study investigates the effects of magnetic fields on mixed convection flow within an undulating cavity filled with hybrid nanofluids and porous media. Numerical simulations show that the length and position of the heater significantly impact the movement and heat transfer of nanofluids within the wavy cavity. Changes in heat generation coefficient and thermal radiation parameter affect the isotherms of the solid phase under different parameters.
The current study treats the magnetic field impacts on the mixed convection flow within an undulating cavity filled by hybrid nanofluids and porous media. The local thermal non-equilibrium condition below the implications of heat generation and thermal radiation is conducted. The corrugated vertical walls of an involved cavity have T-c and the plane walls are adiabatic. The heated part is put in the bottom wall and the left-top walls have lid velocities. The controlling dimensionless equations are numerically solved by the finite volume method through the SIMPLE technique. The varied parameters are scaled as a partial heat length (B: 0.2 to 0.8), heat generation/absorption coefficient (Q: - 2 to 2), thermal radiation parameter (R-d: 0-5), Hartmann number (Ha: 0-50), the porosity parameter (epsilon: 0.4-0.9), inter-phase heat transfer coefficient (H*: 0-5000), the volume fraction of a hybrid nanofluid (phi: 0-0.1), modified conductivity ratio (k(r): 0.01-100), Darcy parameter (Da : 10(-1) to 10(-5)), and the position of a heat source (D: 0.3-0.7). The major findings reveal that the length and position of the heater are effective in improving the nanofluid movements and heat transfer within a wavy cavity. The isotherms of a solid part are significantly altered by the variations on Q, R-d, H* and k(r). Increasing the heat generation/absorption coefficient and thermal radiation parameter is improving the isotherms of a solid phase. Expanding in the porous parameter epsilon enhances the heat transfer of the fluid/solid phases.

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