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http://dx.doi.org/10.3795/KSME-B.2002.26.2.245

Analysis on Particle Deposition on a Heated Rotating Disk  

Yu, Gyeong-Hun
Publication Information
Transactions of the Korean Society of Mechanical Engineers B / v.26, no.2, 2002 , pp. 245-252 More about this Journal
Abstract
Numerical analysis was conducted to characterize particle deposition on a horizontal rotating disk with thermophorectic effect under laminar flow field. The particle transport mechanisms considered were convection, Brownian diffusion, gravitational settling and thermophoresis. The averaged particle deposition velocities and their radial distributions for the upper surface of the disk were calculated from the particle concentration equation in a Eulerian frame of reference for rotating speeds of 0∼1000rpm and temperature differences of 0∼5K. It was observed from the numerical results that the rotation effect of disk increased the averaged deposition velocities, and enhanced the uniformity of local deposition velocities on the upper surface compared with those of the disk at rest. It was also shown that the heating of the disk with ΔT=5K decreased deposition velocity over a fairly broad range of particle sizes. Finally, an approximate deposition velocity model for the rotating disk was suggested. The comparison of the present numerical results with the results of the approximate model and the available experimental results showed relatively good agreement between them.
Keywords
Rotating Disk; Particle Deposition Velocity; Thermophoresis; Approximate Deposition Velocity Model;
Citations & Related Records
Times Cited By KSCI : 3  (Citation Analysis)
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