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Particle and Aerosol Research Vol. 13, No. 4, December 2017, Pages 173-182 |
ISSN : 1738-8716 (Print) ISSN : 2287-8130 (Online) |
Numerical study of particle dispersion from a power plant chimney
Jeongbo Shim1), Donghyun You1) *
1)Department of Mechanical Engineering, POSTECH
*Corresponding author. Tel.: Tel£º+82-54-279-2191, E-mail: £ºdhyou@postech.ac.kr
Received 17 November 2017, Revised 05 December 2017, Accepted 08 December 2017, Available online 03 January 2018
http://dx.doi.org/10.11629/jpaar.2017.12.30.173
Abstracts
An Eulerian-Lagrangin approach is used to compute particle dispersion from a power plant chimney. For air flow,
three-dimensional incompressible filtered Navier-Stokes equations are solved with a subgrid-scale model by integrating
the Newton\'s equation, while the dispersed phase is solved in a Lagrangian framework. The velocity ratios between
crossflow and a jet of 0.455 and 0.727 are considered. Flow fields and particle distribution of both cases are evaluated
and compared. When the velocity ratio is 0.455, it demonstrates a Kelvin-Helmholtz vortex structure above the
chimney caused by the interaction between crossflow and a jet, whereas the other case shows flow structures at the
top of the chimney collapsed by fast crossflow. Also, complex wake structures cause different particle distributions
behind the chimney. The case with the velocity ratio of 0.727 demonstrates strong particle concentration at the vortical
region, whereas the case with the velocity ratio of 0.455 shows more dispersive particle distribution. The simulation
result shows similar tendency to the experimental result.
Keywords
particle-laden flow, power plant chimney, Eulerian-Lagrangian method, large-eddy simulation
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