4.6 Article

Impact of cavity tilt angle and magnetic field on the entropy generation of Cu/water nanofluid in a rectangular cavity in the presence of several constant-temperature obstacles

Journal

ENGINEERING ANALYSIS WITH BOUNDARY ELEMENTS
Volume 150, Issue -, Pages 127-138

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.enganabound.2023.02.011

Keywords

Magnetic field angle; Nanofluid; Convection; Cavity; Lattice Boltzmann method

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This article investigates the convection heat transfer of Cu/water nanofluid in a cavity with five high-temperature obstacles. The impact of a magnetic field on heat transfer, thermal entropy generation, and Bejan number is evaluated. The results show that changing the angle of the magnetic field has little effect on the Nusselt number, while increasing the magnetic field strength reduces the thermal entropy generation and average Nusselt number.
This article examines the convection heat transfer (CHT) of Cu/water nanofluid in a cavity with five high -temperature obstacles. The cavity has a low-temperature moving wall (top wall) and three insulated walls. There is a magnetic field (MGD) close to the cavity. The effect of MGD strength for the Hartmann number (Ha) range of 0 to 40 and the tilt angle range of 0 to 90 degrees on heat transfer (HTR) is evaluated. Also, the impact of these variables on thermal entropy generation (EGN), frictional EGN, and Bejan number (Be) is examined. A FORTRAN code has been developed for the simulations, and the Lattice Boltzmann method (LBM) is used in the numerical solution. The results of this study demonstrate that changing the angle of the MGD has little effect on the Nusselt number (Nu). Up to 8% change in the Nu is seen with the tilt angle change. The maximum and minimum values of the Nu are observed at the tilt angles of 0 and 30 degrees, respectively. As the tilt angle approaches 45 degrees, the EGN is reduced. The field angle of 60 degrees corresponds to the maximum EGN. An increment in the strength of the MGD reduces the EGN, average Nu, and Be in such a way that the enhancement in the Ha from 0 to 40 reduces the Nu, EGN, and Be by 41.9%, 21.8%, and 15.2%, respectively.

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