DocumentCode :
2501184
Title :
Characteristic of Gas-Solid Two-Phase Flow in the Human Upper Respiratory Tract Model
Author :
Zhao, X.G. ; Xu, X.X. ; Tan, Sh L. ; Liu, Y.J. ; Gao, Zh H.
Author_Institution :
Nat. Biol. Protection Eng. Center, Inst. of Med. Equip., Tianjin, China
fYear :
2009
fDate :
11-13 June 2009
Firstpage :
1
Lastpage :
6
Abstract :
The CFD (Computational Fluid Dynamic) technology was used to investigate the air movement characteristic and aerosol deposition in the human upper respiratory tract. Steady and cyclic respiratory with the breathing intensity of Q = 30 L/min and aerosol diameter of d = 0.3, 6.5 mum were considered. Experimentally validated computational fluid-aerosol dynamics results showed the following: the phenomenon of airflow separation appears near the outer wall of the pharynx and the trachea. The high velocity zone is created near the inner wall of the trachea. The airflow splits at the divider and a new boundary layer is generated at the inner wall of the downstream from the bifurcation with the high velocity near the inner wall of the trachea. The maximum velocity appears at the exterior of the boundary layer. The secondary swirls and axial velocity distribution result in the high shear stress acting on the inner wall of the trachea and bifurcation, finally lead to the inner wall injury. The inertial impaction is the main mechanism for the micro-aerosol deposition. The turbulence dispersion, secondary airflow movement and the airflow recirculation motion influence the aerosol deposition in the human upper respiratory tract. Most aerosols deposit in the larynx due to the turbulence dispersion and inertial impaction. The aerosol deposition in the cyclic respiratory pattern is higher than in the steady respiratory patter and the aerosol deposition in the cyclic inhalation is higher than in the cyclic exhalation.
Keywords :
aerosols; bifurcation; computational fluid dynamics; haemodynamics; lung; physiological models; swirling flow; turbulence; two-phase flow; CFD; airflow recirculation motion; airflow separation; axial velocity distribution; bifurcation; breathing intensity; computational fluid-aerosol dynamics; cyclic exhalation; cyclic inhalation; gas-solid two-phase flow; human upper respiratory tract; micro-aerosol deposition; pharynx; secondary airflow movement; secondary swirls; shear stress; size 0.3 mum; size 6.5 mum; trachea; turbulence dispersion; Aerosols; Bifurcation; Computational fluid dynamics; Diseases; Humans; Injuries; Larynx; Pharynx; Solid modeling; Stress;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Bioinformatics and Biomedical Engineering , 2009. ICBBE 2009. 3rd International Conference on
Conference_Location :
Beijing
Print_ISBN :
978-1-4244-2901-1
Electronic_ISBN :
978-1-4244-2902-8
Type :
conf
DOI :
10.1109/ICBBE.2009.5162489
Filename :
5162489
Link To Document :
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