Simulation of Thermomagnetic Convection in a Cavity Using the Lattice Boltzmann Model
Author(s) -
Mahshid Hadavand,
António C.M. Sousa
Publication year - 2011
Publication title -
journal of applied mathematics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.307
H-Index - 43
eISSN - 1687-0042
pISSN - 1110-757X
DOI - 10.1155/2011/538637
Subject(s) - thermomagnetic convection , natural convection , ferrofluid , convection , lattice boltzmann methods , forced convection , mechanics , combined forced and natural convection , rayleigh–bénard convection , magnetic field , materials science , dipole , convective heat transfer , physics , quantum mechanics
Thermomagnetic convection in a differentially heated square cavity with an infinitely long third dimension is numerically simulated using the single relaxation time lattice Boltzmann method (LBM). This problem is of considerable interest when dealing with cooling of microelectronic devices, in situations where natural convection does not meet the cooling requirements, and forced convection is not viable due to the difficulties associated with pumping a ferrofluid. Therefore, circulation is achieved by imposing a magnetic field, which is created and controlled by placing a dipole at the bottom of the enclosure. The magnitude of the magnetic force is controlled by changing the electrical current through the dipole. In this study, the effects of combined natural convection and magnetic convection, which is commonly known as “thermomagnetic convection,” are analysed in terms of the flow modes and heat transfer characteristics of a magnetic fluid
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