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PMID: 27704716 Published · ppublish English Journal Article

A quasi-3D wire approach to model pulmonary airflow in human airways.

Kannan R, Chen ZJ, Singh N, Przekwas A, Delvadia R, Tian G, Walenga R

Abstract

The models used for modeling the airflow in the human airways are either 0-dimensional compartmental or full 3-dimensional (3D) computational fluid dynamics (CFD) models. In the former, airways are treated as compartments, and the computations are performed with several assumptions, thereby generating a low-fidelity solution. The CFD method displays extremely high fidelity since the solution is obtained by solving the conservation equations in a physiologically consistent geometry. However, CFD models (1) require millions of degrees of freedom to accurately describe the geometry and to reduce the discretization errors, (2) have convergence problems, and (3) require several days to simulate a few breathing cycles. In this paper, we present a novel, fast-running, and robust quasi-3D wire model for modeling the airflow in the human lung airway. The wire mesh is obtained by contracting the high-fidelity lung airway surface mesh to a system of connected wires, with well-defined radii. The conservation equations are then solved in each wire. These wire meshes have around O(1000) degrees of freedom and hence are 3000 to 25 000 times faster than their CFD counterparts. The 3D spatial nature is also preserved since these wires are contracted out of the actual lung STL surface. The pressure readings between the 2 approaches showed minor difference (maximum error = 15%). In general, this formulation is fast and robust, allows geometric changes, and delivers high-fidelity solutions. Hence, this approach has great potential for more complicated problems including modeling of constricted/diseased lung sections and for calibrating the lung flow resistances through parameter inversion.

Keywords
CFD lung airway quasi-3D wire model
MeSH 主题词
Computer Simulation Humans Hydrodynamics Lung/anatomy & histology,physiology Models, Biological Respiration
作者与单位
共 7 位作者,点击展开单位 / ORCID
Kannan Ravishekar
CFD Research Corporation, 701 McMillian Way NW, Suite D, Huntsville, AL, 35806, USA.
Chen Z J
CFD Research Corporation, 701 McMillian Way NW, Suite D, Huntsville, AL, 35806, USA.
Singh Narender
CFD Research Corporation, 701 McMillian Way NW, Suite D, Huntsville, AL, 35806, USA.
Przekwas Andrzej
CFD Research Corporation, 701 McMillian Way NW, Suite D, Huntsville, AL, 35806, USA.
Delvadia Renishkumar
Center for Drug Evaluation Research, United States Food and Drug Administration, Silver Spring, MD, USA.
Tian Geng
Center for Drug Evaluation Research, United States Food and Drug Administration, Silver Spring, MD, USA.
Walenga Ross
Center for Drug Evaluation Research, United States Food and Drug Administration, Silver Spring, MD, USA.
Article Info
Journal
International journal for numerical methods in biomedical engineering
Abbr.
Int J Numer Method Biomed Eng
ISSN
2040-7947
Published
2017-00-00
电子出版
2016-00-04
Language
English
Country/Region
England
NLM ID
101530293
基金资助
NIGMS NIH HHS · R44 GM108380 · United States
FDA HHS · U01 FD005214 · United States
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