DocumentCode :
896056
Title :
Computational fluid dynamics
Author :
Lin, Ching-Long ; Tawhai, Merryn H. ; McLennan, Geoffrey ; Hoffman, Eric A.
Volume :
28
Issue :
3
fYear :
2009
Firstpage :
25
Lastpage :
33
Abstract :
In this article, we have described a computational framework for multiscale simulation of gas flow in subject-specific airway models of the human lung. The framework consists of five major components: accurate extraction of airway geometry from MDCT image data sets, geometrical modeling of airway trees, novel 3-D and 1-D coupled mesh generation, 3-D high-fidelity CFD techniques for turbulent and transitional flow, and CT-derived subject-specific physiological boundary conditions. This work demonstrates the importance of multi-scale simulation of pulmonary gas flow for accurate prediction of flow characteristics at large and small airways and their interactions. The multiscale simulation presented here can be further applied to other healthy and diseased human subjects for intra- and intersubject analyses to better understand the lung flow-structure relationship, the progression of lung diseases, and the correlation between inhaled pharmaceutical drug aerosols or air pollutants with airway structure.
Keywords :
Weibull distribution; computational fluid dynamics; computerised tomography; diagnostic radiography; diseases; drugs; image resolution; image segmentation; lung; medical image processing; mesh generation; paediatrics; physiological models; pneumodynamics; Weibel airway model; X-ray computed tomography; age 10 yr to 18 yr; airborne pollutant vulnerability; airway geometry; breathing lung; children lung development; chronic environmental pollutant; computational fluid dynamics; computational power; fixed mesh generation; image segmentation; imaging resolution; pathologic development; perfusion; pulmonary air flow; subject-specific model; ventilation imaging; xenon gas; Boundary conditions; Computational fluid dynamics; Computational modeling; Data mining; Fluid flow; Geometry; Humans; Lungs; Mesh generation; Solid modeling; Biomedical Engineering; Computer Simulation; Humans; Hydrodynamics; Imaging, Three-Dimensional; Lung; Models, Anatomic; Models, Biological; Pulmonary Alveoli; Respiratory Mechanics; Respiratory Physiological Phenomena; Tomography, X-Ray Computed;
fLanguage :
English
Journal_Title :
Engineering in Medicine and Biology Magazine, IEEE
Publisher :
ieee
ISSN :
0739-5175
Type :
jour
DOI :
10.1109/MEMB.2009.932480
Filename :
4939186
Link To Document :
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