Literature DB >> 34024935

Efficient bi-directional coupling of 3D Computational Fluid-Particle Dynamics and 1D Multiple Path Particle Dosimetry lung models for multiscale modeling of aerosol dosimetry.

A P Kuprat1, M Jalali2, T Jan2, R A Corley1,3, B Asgharian4, O Price4, R K Singh1, S Colby1, C Darquenne2.   

Abstract

The development of predictive aerosol dosimetry models has been a major focus of environmental toxicology and pharmaceutical health research for decades. One-dimensional (1D) models successfully predict overall deposition averages but fail to accurately predict local deposition. Computational fluid-particle dynamics (CFPD) models provide site-specific predictions but at a computational cost that prohibits whole lung predictions. Thus, there is a need for developing multiscale strategies to provide a realistic subject-specific picture of the fate of inhaled aerosol in the lungs. CT-based 3D/CFPD models of the large airways were bidirectionally coupled with individualized 1D Navier-Stokes airflow and particle transport based upon the widely used Multiple Path Particle Dosimetry Model (MPPD). Distribution of airflows among lobes was adjusted by measured lobar volume changes observed in CT images between FRC and FRC + 1.5 L. As a test of the effectiveness of the coupling procedures, deposition modeling of previous 1 μm aerosol exposure studies was performed. The complete coupled model was run for 3 breaths, with the computation-intense portion being the 3D CFPD Lagrangian particle tracking calculation. The average deposition per breath was 11% in the combined multiscale model with site-specific doses available in the CFPD portion of the model and airway- or region-specific deposition available for the MPPD portion. In conclusion, the key methods developed in this study enable predictions of ventilation heterogeneities and aerosol deposition across the lungs that are not captured by 3D or 1D models alone. These methods can be used as the foundation for multi-scale modeling of the full respiratory system.

Entities:  

Keywords:  Aerosol deposition; MPPD; lung airways; subject-specific modeling

Year:  2020        PMID: 34024935      PMCID: PMC8136587          DOI: 10.1016/j.jaerosci.2020.105647

Source DB:  PubMed          Journal:  J Aerosol Sci        ISSN: 0021-8502            Impact factor:   3.433


  19 in total

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2.  Respiratory flow phenomena and gravitational deposition in a three-dimensional space-filling model of the pulmonary acinar tree.

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4.  Aerosol deposition characteristics in distal acinar airways under cyclic breathing conditions.

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Authors:  Arun V Kolanjiyil; Clement Kleinstreuer
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6.  Validating Whole-Airway CFD Predictions of DPI Aerosol Deposition at Multiple Flow Rates.

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Review 7.  In silico models of aerosol delivery to the respiratory tract - development and applications.

Authors:  P Worth Longest; Landon T Holbrook
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Review 8.  Human respiratory tract model for radiological protection. A report of a Task Group of the International Commission on Radiological Protection.

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9.  Computational fluid dynamics modeling of Bacillus anthracis spore deposition in rabbit and human respiratory airways.

Authors:  S Kabilan; S R Suffield; K P Recknagle; R E Jacob; D R Einstein; A P Kuprat; J P Carson; S M Colby; J H Saunders; S A Hines; J G Teeguarden; T M Straub; M Moe; S C Taft; R A Corley
Journal:  J Aerosol Sci       Date:  2016-04-26       Impact factor: 3.433

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Authors:  Youbing Yin; Jiwoong Choi; Eric A Hoffman; Merryn H Tawhai; Ching-Long Lin
Journal:  J Comput Phys       Date:  2013-07-01       Impact factor: 3.553

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