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THERMOPHORESIS OF PARTICLES IN GAS-PARTICLE TWO-PHASE FLOW WITH RADIATION EFFECT

The radiation effect on the thermophoresis of particles is analyzed for a gas-particle twophase laminar flow. Two-phase radiation by both gas and particles is considered; in addition, the thermal nonequilibrium between gas and particle is taken into account. It is concluded that the particle diffusi...

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Published in:Numerical heat transfer. Part A, Applications Applications, 2002, Vol.41 (2), p.165-181
Main Authors: Sohn, Young Min, Baek, Seung Wook, Kim, Deok Yeon
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cited_by cdi_FETCH-LOGICAL-c441t-d371b70daeef69853e28a6d8b1c03d0a999476dce349a95b6d3a698aea3240453
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container_title Numerical heat transfer. Part A, Applications
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creator Sohn, Young Min
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description The radiation effect on the thermophoresis of particles is analyzed for a gas-particle twophase laminar flow. Two-phase radiation by both gas and particles is considered; in addition, the thermal nonequilibrium between gas and particle is taken into account. It is concluded that the particle diffusion velocity as well as particle concentration depends strongly on the optical radius of gas or particle. In general, the radiation was found to decrease the particle diffusion. In case that gas as well as particle radiation exists, the deposition of particle is mainly influenced by the gas. The effects of parameters such as the optical radius, conduction to radiation parameter, thermal loading ratio, and wall emissivity on the cumulative collection efficiency E ( x ) are also considered. As the optical radius and tube wall emissivity increase, E ( x ) decreases. The increase in conduction to radiation parameter N and thermal loading ratio CL leads to an increase in E ( x ).
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source Taylor and Francis Science and Technology Collection
subjects Chemistry
Colloidal state and disperse state
Exact sciences and technology
General and physical chemistry
Heat conduction
Laminar flow
Particles (particulate matter)
Physical and chemical studies. Granulometry. Electrokinetic phenomena
Thermal load
Two phase flow
Velocity
title THERMOPHORESIS OF PARTICLES IN GAS-PARTICLE TWO-PHASE FLOW WITH RADIATION EFFECT
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