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吸入颗粒沉积的建模技术:现状

Modeling techniques for inhaled particle deposition: the state of the art.

作者信息

Hofmann W

机构信息

Institute of Physics and Biophysics, University of Salzburg, Austria.

出版信息

J Aerosol Med. 1996;9(3):369-88. doi: 10.1089/jam.1996.9.369.

Abstract

Mathematical modeling of aerosol deposition in the human lung is based on idealized assumptions regarding the morphometry of the lung, the fluid dynamics behavior of the inspired air under defined breathing conditions, the transport of particles through the branching airway system, the physical mechanisms acting upon inhaled particles, and the deposition of particles within airways, airway bifurcations, and alveoli. Current models of particle deposition in the human lung, ranging from experimentally based semi empirical to rather sophisticated stochastic and numerical mathematical models, permit the prediction of particle deposition at different levels of complexity, ranging from total deposition in the whole lung to localized deposition patterns within single airway bifurcations. In this paper, the present state of the art in aerosol deposition modeling will be reviewed, focusing on the discussion of different conceptual ideas rather than on a complete listing of all published modeling efforts. The selection of specific contributions by various authors relevant to our present understanding of particle deposition in the human lung reflects the subjective view of the author. In addition, illustrations of salient features of different modeling approaches are based primarily on the author's own research.

摘要

人体肺部气溶胶沉积的数学模型基于以下理想化假设

肺部的形态测量、特定呼吸条件下吸入空气的流体动力学行为、颗粒在分支气道系统中的传输、作用于吸入颗粒的物理机制以及颗粒在气道、气道分支和肺泡内的沉积。目前人体肺部颗粒沉积模型,从基于实验的半经验模型到相当复杂的随机和数值数学模型,能够在不同复杂程度下预测颗粒沉积情况,范围从整个肺部的总沉积到单个气道分支内的局部沉积模式。本文将综述气溶胶沉积建模的当前技术水平,重点讨论不同的概念性观点,而非完整列举所有已发表的建模工作。各位作者与我们目前对人体肺部颗粒沉积理解相关的具体贡献的选择反映了作者的主观观点。此外,不同建模方法显著特征的例证主要基于作者自己的研究。

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