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Triple convective flow of micropolar nanofluids in double lid-driven enclosures partially filled with LTNE porous layer under effects of an inclined magnetic field
Institution:1. Mathematics Department, Faculty of Sciences, Assiut University, Assiut, Egypt;2. Department of Mathematics, College of Science, Abha, King Khalid University, Saudi Arabia;3. Department of Mathematics, Faculty of Science, South Valley University, Qena, Egypt;4. Department of Applied Science, Faculty of Engineering & Tech Arab Academy for STMT, Aswan, Egypt;1. Manufacturing Engineering Department, The Public Authority for Applied Education and Training, Shuweikh 70654, Kuwait;2. Department of Mathematics, Aswan University, Faculty of Science, Aswan, 81528, Egypt;3. Department of Mathematics, Faculty of Science for Girls, King Khalid University, Abha, Saudi Arabia;4. Department of Mathematics, Faculty of Science, South Valley University, Qena 83523, Egypt;5. Mechanical Engineering Department, Prince Sultan Endowment for Energy and Environment, Prince Mohammad Bin Fahd University, Al-Khobar 31952, Saudi Arabia;6. RAK Research and Innovation Center, American University of Ras Al Khaimah, P.O. Box 10021, Ras Al Khaimah, United Arab Emirates;7. Department of Mathematics, Prince Sattam bin Abdulaziz University, College of Science and Humanity Studies, Al-Kharj, Saudi Arabia
Abstract:In this paper, free, forced and Marangoni convective flows within an open enclosure partially filled with a porous medium under impacts of an inclined magnetic field are investigated. The forced convection is due to the movement of the side walls, the free convection induces from the heated part in the bottom wall and the Marangoni convection is a responsible on the thermal interaction at the free surface (top wall). The flow domain is partially heated from below and partially filled by a porous medium. The local thermal non-equilibrium model (LTNEM) is used to represent the thermal field in the porous layer (bottom layer) while the two-phase model is used to simulated the micropolar nanofluid behavior. Two cases based on the direction of the movement of the side walls are considered, namely, assisting flow (downward lid motion) and opposing flow (upward lid motion). Numerical analysis based on the finite volume method is conducted and the obtained are presented in terms of the streamlines, isotherms, angular velocity, and the cup-mixing temperature θcup, the bulk-averaged temperature θave and the average Nusselt numbers. The controlling parameters, in this situation, are the Darcy number Da, the Marangoni number Ma, the Nield number H, the vortex viscosity Δ, the Biot number Bi and the Hartmann number Ha. The results revealed that the increase in the Nield number enhances the cup-mixing temperature θcupand bulk-averaged temperature θave regardless the direction of the side walls motion. Also, the average Nusselt number is boosted as the Marangoni number is grown.
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