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基于图像的气道模型中颗粒的区域沉积:大涡模拟与左右肺通气不对称性

Regional deposition of particles in an image-based airway model: large-eddy simulation and left-right lung ventilation asymmetry.

作者信息

Lambert Andrew R, O'Shaughnessy Patrick, Tawhai Merryn H, Hoffman Eric A, Lin Ching-Long

机构信息

Department of Mechanical and Industrial Engineering, The University of Iowa, Iowa City, Iowa 52242.

出版信息

Aerosol Sci Technol. 2011 Jan;45(1):11-25. doi: 10.1080/02786826.2010.517578.

Abstract

Regional deposition and ventilation of particles by generation, lobe and lung during steady inhalation in a computed tomography (CT) based human airway model are investigated numerically. The airway model consists of a seven-generation human airway tree, with oral cavity, pharynx and larynx. The turbulent flow in the upper respiratory tract is simulated by large-eddy simulation. The flow boundary conditions at the peripheral airways are derived from CT images at two lung volumes to produce physiologically-realistic regional ventilation. Particles with diameter equal to or greater than 2.5 microns are selected for study because smaller particles tend to penetrate to the more distal parts of the lung. The current generational particle deposition efficiencies agree well with existing measurement data. Generational deposition efficiencies exhibit similar dependence on particle Stokes number regardless of generation, whereas deposition and ventilation efficiencies vary by lobe and lung, depending on airway morphology and airflow ventilation. In particular, regardless of particle size, the left lung receives a greater proportion of the particle bolus as compared to the right lung in spite of greater flow ventilation to the right lung. This observation is supported by the left-right lung asymmetry of particle ventilation observed in medical imaging. It is found that the particle-laden turbulent laryngeal jet flow, coupled with the unique geometrical features of the airway, causes a disproportionate amount of particles to enter the left lung.

摘要

在基于计算机断层扫描(CT)的人体气道模型中,对稳定吸气过程中按世代、肺叶和肺划分的颗粒区域沉积和通气情况进行了数值研究。气道模型由一个包含口腔、咽和喉的七代人体气道树组成。上呼吸道中的湍流通过大涡模拟进行模拟。外周气道的流动边界条件源自两个肺容积下的CT图像,以产生生理上逼真的区域通气。选择直径等于或大于2.5微米的颗粒进行研究,因为较小的颗粒往往会穿透到肺的更远端部分。当前的世代颗粒沉积效率与现有测量数据吻合良好。世代沉积效率对颗粒斯托克斯数的依赖性相似,与世代无关,而沉积和通气效率因肺叶和肺而异,这取决于气道形态和气流通气情况。特别是,无论颗粒大小如何,尽管右肺的气流通气量更大,但与右肺相比,左肺接收的颗粒团比例更大。这一观察结果得到了医学成像中观察到的颗粒通气左右肺不对称现象的支持。研究发现,携带颗粒的湍流喉喷射流,加上气道独特的几何特征,导致进入左肺的颗粒数量不成比例。

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本文引用的文献

1
The lung physiome: merging imaging-based measures with predictive computational models.
Wiley Interdiscip Rev Syst Biol Med. 2009 Jul-Aug;1(1):61-72. doi: 10.1002/wsbm.17.
2
Numerical study of high-frequency oscillatory air flow and convective mixing in a CT-based human airway model.
Ann Biomed Eng. 2010 Dec;38(12):3550-71. doi: 10.1007/s10439-010-0110-7. Epub 2010 Jul 8.
3
Simulation of pulmonary air flow with a subject-specific boundary condition.
J Biomech. 2010 Aug 10;43(11):2159-63. doi: 10.1016/j.jbiomech.2010.03.048. Epub 2010 May 18.
4
On intra- and intersubject variabilities of airflow in the human lungs.
Phys Fluids (1994). 2009 Oct;21(10):101901. doi: 10.1063/1.3247170. Epub 2009 Oct 13.
5
Mass preserving nonrigid registration of CT lung images using cubic B-spline.
Med Phys. 2009 Sep;36(9):4213-22. doi: 10.1118/1.3193526.
6
CFD simulation of contaminant decay for high reynolds flow in a controlled environment.
Ann Occup Hyg. 2010 Jan;54(1):88-99. doi: 10.1093/annhyg/mep057. Epub 2009 Aug 11.
7
Left-to-right asymmetry of aerosol deposition after shallow bolus inhalation depends on lung ventilation.
J Aerosol Med Pulm Drug Deliv. 2009 Dec;22(4):333-9. doi: 10.1089/jamp.2009.0749.
8
The effects of geometry on airflow in the acinar region of the human lung.
J Biomech. 2009 Aug 7;42(11):1635-42. doi: 10.1016/j.jbiomech.2009.04.046. Epub 2009 May 31.
9
CFD simulation of aerosol deposition in an anatomically based human large-medium airway model.
Ann Biomed Eng. 2009 Feb;37(2):271-85. doi: 10.1007/s10439-008-9620-y. Epub 2008 Dec 12.
10
Evaluation of a drift flux model for simulating submicrometer aerosol dynamics in human upper tracheobronchial airways.
Ann Biomed Eng. 2008 Oct;36(10):1714-34. doi: 10.1007/s10439-008-9552-6. Epub 2008 Aug 20.

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