DocumentCode :
1271763
Title :
Efficient, Physiologically Realistic Lung Airflow Simulations
Author :
Walters, D.K. ; Burgreen, G.W. ; Lavallee, D.M. ; Thompson, D.S. ; Hester, Robert L.
Author_Institution :
Dept. of Mech. Eng., Mississippi State Univ., Starkville, MS, USA
Volume :
58
Issue :
10
fYear :
2011
Firstpage :
3016
Lastpage :
3019
Abstract :
One of the key challenges for computational fluid dynamics (CFD) simulations of human lung airflow is the sheer size and complexity of the complete, multiscale geometry of the bronchopulmonary tree. Since 3-D CFD simulations of the full airway tree are currently intractable, researchers have proposed reduced geometry models in which multiple airway paths are truncated downstream of the first few generations. This paper investigates a recently proposed method for closing the CFD model by application of physiologically correct boundary conditions at truncated outlets. A realistic, reduced geometry model of the lung airway based on CT data has been constructed up to generation 18, including extrathoracic, bronchi, and bronchiole regions. Results indicate that the new method yields reasonable results for pressure drop through the airway, at a small fraction of the cost of fully resolved simulations.
Keywords :
biology computing; computational fluid dynamics; lung; physiological models; pneumodynamics; CFD simulations; CT data based model; bronchi region; bronchiole region; bronchopulmonary tree multiscale geometry; computational fluid dynamics; efficient lung airflow simulation; extrathoracic region; geometry models; human lung airflow; physiologically correct boundary conditions; physiologically realistic lung airflow simulation; truncated outlets; Atmospheric modeling; Biological system modeling; Computational fluid dynamics; Computational modeling; Geometry; Humans; Lungs; Computational fluid dynamics (CFD); lung morphology; numerical methods; respiration; Bronchi; Bronchography; Computer Simulation; Humans; Image Processing, Computer-Assisted; Models, Biological; Respiratory Mechanics; Stochastic Processes; Tomography, X-Ray Computed; Trachea;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2011.2161868
Filename :
5953492
Link To Document :
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