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DOI | 10.1016/j.jaerosci.2016.01.011 |
Computational fluid dynamics modeling of Bacillus anthracis spore deposition in rabbit and human respiratory airways | |
Kabilan, S.1; Suffield, S. R.1; Recknagle, K. P.1; Jacob, R. E.1; Einstein, D. R.1; Kuprat, A. P.1; Carson, J. P.2; Colby, S. M.1; Saunders, J. H.3; Hines, S. A.3; Teeguarden, J. G.1; Straub, T. M.1; Moe, M.4; Taft, S. C.5; Corley, R. A.1 | |
发表日期 | 2016-09-01 |
ISSN | 0021-8502 |
卷号 | 99页码:64-77 |
英文摘要 | Three-dimensional computational fluid dynamics and Lagrangian particle deposition models were developed to compare the deposition of aerosolized Bacillus anthracis spores in the respiratory airways of a human with that of the rabbit, a species commonly used in the study of anthrax disease. The respiratory airway geometries for each species were derived respectively from computed tomography (CT) and mu CT images. Both models encompassed airways that extended from the external nose to the lung with a total of 272 outlets in the human model and 2878 outlets in the rabbit model. All simulations of spore deposition were conducted under transient, inhalation-exhalation breathing conditions using average species-specific minute volumes. Two different exposure scenarios were modeled in the rabbit based upon experimental inhalation studies. For comparison, human simulations were conducted at the highest exposure concentration used during the rabbit experimental exposures. Results demonstrated that regional spore deposition patterns were sensitive to airway geometry and ventilation profiles. Due to the complex airway geometries in the rabbit nose, higher spore deposition efficiency was predicted in the nasal sinus compared to the human at the same air concentration of anthrax spores. In contrast, higher spore deposition was predicted in the lower conducting airways of the human compared to the rabbit lung due to differences in airway branching pattern. This information can be used to refine published and ongoing biokinetic models of inhalation anthrax spore exposures, which currently estimate deposited spore concentrations based solely upon exposure concentrations and inhaled doses that do not factor in species specific anatomy and physiology for deposition. (C) 2016 Elsevier Ltd. All rights reserved. |
英文关键词 | Three-dimensional computational fluid dynamics;Particle deposition;New Zealand white rabbit;Human Bacillus anthracis;Lung |
语种 | 英语 |
WOS记录号 | WOS:000381589700010 |
来源期刊 | JOURNAL OF AEROSOL SCIENCE |
来源机构 | 美国环保署 |
文献类型 | 期刊论文 |
条目标识符 | http://gcip.llas.ac.cn/handle/2XKMVOVA/60636 |
作者单位 | 1.Pacific Northwest Natl Lab, 902 Battelle Blvd,POB 999,MSIN J4-16, Richland, WA 99352 USA; 2.Texas Adv Comp Ctr, Austin, TX 78758 USA; 3.Battelle Mem Inst, 505 King Ave, Columbus, OH 43201 USA; 4.Dept Homeland Secur, Sci & Technol Directorate, Washington, DC 20528 USA; 5.US EPA, Natl Homeland Secur Res Ctr, Threat & Consequence Assessment Div, Cincinnati, OH 45268 USA |
推荐引用方式 GB/T 7714 | Kabilan, S.,Suffield, S. R.,Recknagle, K. P.,et al. Computational fluid dynamics modeling of Bacillus anthracis spore deposition in rabbit and human respiratory airways[J]. 美国环保署,2016,99:64-77. |
APA | Kabilan, S..,Suffield, S. R..,Recknagle, K. P..,Jacob, R. E..,Einstein, D. R..,...&Corley, R. A..(2016).Computational fluid dynamics modeling of Bacillus anthracis spore deposition in rabbit and human respiratory airways.JOURNAL OF AEROSOL SCIENCE,99,64-77. |
MLA | Kabilan, S.,et al."Computational fluid dynamics modeling of Bacillus anthracis spore deposition in rabbit and human respiratory airways".JOURNAL OF AEROSOL SCIENCE 99(2016):64-77. |
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