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Effect of temperature gradient within a solid particle on the rotation and oscillation modes in solid-dispersed two-phase flows
Institution:1. Institute of Fluid Mechanics and Heat Transfer, TU Wien, Getreidemarkt 9, Tower BA/E322, Vienna 1060, Austria;2. Department of Biomedical Engineering, University of Michigan, 2123 Carl A. Gerstacker Building 2200 Bonisteel Boulevard, Ann Arbor, MI 48109-2099, USA;1. Department of Computational Science and Engineering, Yonsei University, Seoul 120-749, Republic of Korea;2. Department of Mechanical Engineering, Yonsei University, Seoul 120-749, Republic of Korea;3. School of Applied Sciences, Mongolian University of Science and Technology, Ulaanbaatar 46-520, Mongolia
Abstract:Liquid–solid two-phase flow with heat transfer is simulated, and the effect of temperature gradient within a solid particle on the particle behaviour and heat transfer is studied. The interaction between fluid and particles is considered with our original immersed solid approach on a rectangular grid system. The local heat flux at the fluid–solid interface is described with an anisotropic heat conductivity matrix, and the governing equation of temperature is time-updated with an implicit treatment for the diffusion term. The method is applied to a 2-D natural convection flow of a relatively low Rayleigh number including multiple particles. Heat transfer and particle behaviours are studied for different solid heat conductivities (ratio to the fluid conductivity ranging between 10?3 and 103) and solid volume fractions. Under a condition of relatively low heat conductivity ratio, the particles show a simple circulating flow. By increasing the heat conductivity ratio, a transition of the particulate flow is observed to oscillation mode around the domain centre due to the buoyancy force as a restitution force. The oscillation period is found to vary with the heat conductivity ratio, and it is related to the time scales for the heat transfer via fluid and solid.
Keywords:Multiphase flow  Solid-dispersion  Immersed solid object  Thermal flow  Heat conductivity
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