Abstract

Due to the significance of irreversibility, the entropy production of the natural and forced convection heat transfer of a nanofluid in a two-dimensional closed compartment is examined in the present paper. The side walls of the enclosed compartment are insulated, while the top and bottom walls of the compartment are cold and hot, respectively. The moving top wall causes forced convection in the closed compartment. Five rectangular heat sources are placed in the middle of the closed compartment to create free convection in the closed compartment. A horizontal magnetic field is applied to the closed compartment. The Bejan number (Be), the tilt angle of the closed compartment, the entropy generation, and the Richardson number (Ri) are all assessed as a function of the magnetic field's intensity. The Lattice Boltzmann method (LBM) is used for the numerical simulations. The results reveal that the entropy production is reduced with the closed compartment tilt angle up to 60°. Larger angles lead to an increment in entropy production. Angles of 0° and 60° are connected to the maximum and lowest amounts of entropy production, respectively. The Hartmann number (Ha) enhancement for strong forced convection (Ri = 0.1 and 1) intensifies entropy production. For weak forced convection (Ri = 10 and 100), an increment in the Ha reduces the amount of entropy production. Ri increase decreases the amount of entropy production.

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