Title of article :
Characteristics of turbulent particle transport in human airways under steady and cyclic flows
Author/Authors :
T. and Jedelsky، نويسنده , , Jan and Lizal، نويسنده , , Frantisek and Jicha، نويسنده , , Miroslav، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2012
Pages :
9
From page :
84
To page :
92
Abstract :
Motion of monodispersed aerosol particles suspended in air flow has been studied on realistic transparent model of human airways using Phase Doppler Particle Analyser (P/DPA). Time-resolved velocity data for particles in size range 1–8 μm were processed using Fuzzy Slotting Technique to estimate the power spectral density (PSD) of velocity fluctuations. The optimum processing setup for our data was found and recommendations for future experiments to improve PSD quality were suggested. Typical PSD plots at mainstream positions of the trachea and the upper bronchi are documented and differences among (1) steady-flow regimes and equivalent cyclic breathing regimes, (2) inspiration and expiration breathing phase and (3) behaviour of particles of different sizes are described in several positions of the airway model. Systematically higher level of velocity fluctuations in the upper part of the frequency range (30–500 Hz) was found for cyclic flows in comparison with corresponding steady flows. Expiratory flows in both the steady and cyclic cases produce more high-frequency fluctuations compared to inspiratory flows. Negligible differences were found for flow of particles in the inspected size range 1–8 μm at frequencies below 500 Hz. This finding was explained by Stokes number analysis. Implied match of the air and particle flows thereby indicates turbulent diffusion as important deposition mechanism and confirms the capability to use the P/DPA data as the air flow velocity estimate.
Keywords :
aerosol , Power Spectral Density , Human airway model , Velocity fluctuations , Cyclic flows , Stokes number , Steady flows , Laser Doppler Anemometry
Journal title :
International Journal of Heat and Fluid Flow
Serial Year :
2012
Journal title :
International Journal of Heat and Fluid Flow
Record number :
2382069
Link To Document :
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