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Airflow and Particle Deposition in Acinar Models with Interalveolar Septal Walls and Different Alveolar Numbers

Unique features exist in acinar units such as multiple alveoli, interalveolar septal walls, and pores of Kohn. However, the effects of such features on airflow and particle deposition remain not well quantified due to their structural complexity. This study aims to numerically investigate particle d...

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Autores principales: Xi, Jinxiang, Talaat, Mohamed, Tanbour, Hesham, Talaat, Khaled
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6176334/
https://www.ncbi.nlm.nih.gov/pubmed/30356402
http://dx.doi.org/10.1155/2018/3649391
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author Xi, Jinxiang
Talaat, Mohamed
Tanbour, Hesham
Talaat, Khaled
author_facet Xi, Jinxiang
Talaat, Mohamed
Tanbour, Hesham
Talaat, Khaled
author_sort Xi, Jinxiang
collection PubMed
description Unique features exist in acinar units such as multiple alveoli, interalveolar septal walls, and pores of Kohn. However, the effects of such features on airflow and particle deposition remain not well quantified due to their structural complexity. This study aims to numerically investigate particle dynamics in acinar models with interalveolar septal walls and pores of Kohn. A simplified 4-alveoli model with well-defined geometries and a physiologically realistic 45-alveoli model was developed. A well-validated Lagrangian tracking model was used to simulate particle trajectories in the acinar models with rhythmically expanding and contracting wall motions. Both spatial and temporal dosimetries in the acinar models were analyzed. Results show that collateral ventilation exists among alveoli due to pressure imbalance. The size of interalveolar septal aperture significantly alters the spatial deposition pattern, while it has an insignificant effect on the total deposition rate. Surprisingly, the deposition rate in the 45-alveoli model is lower than that in the 4-alveoli model, indicating a stronger particle dispersion in more complex models. The gravity orientation angle has a decreasing effect on acinar deposition rates with an increasing number of alveoli retained in the model; such an effect is nearly negligible in the 45-alveoli model. Breath-holding increased particle deposition in the acinar region, which was most significant in the alveoli proximal to the duct. Increasing inhalation depth only slightly increases the fraction of deposited particles over particles entering the alveolar model but has a large influence on dispensing particles to the peripheral alveoli. Results of this study indicate that an empirical correlation for acinar deposition can be developed based on alveolar models with reduced complexity; however, what level of geometry complexity would be sufficient is yet to be determined.
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spelling pubmed-61763342018-10-23 Airflow and Particle Deposition in Acinar Models with Interalveolar Septal Walls and Different Alveolar Numbers Xi, Jinxiang Talaat, Mohamed Tanbour, Hesham Talaat, Khaled Comput Math Methods Med Research Article Unique features exist in acinar units such as multiple alveoli, interalveolar septal walls, and pores of Kohn. However, the effects of such features on airflow and particle deposition remain not well quantified due to their structural complexity. This study aims to numerically investigate particle dynamics in acinar models with interalveolar septal walls and pores of Kohn. A simplified 4-alveoli model with well-defined geometries and a physiologically realistic 45-alveoli model was developed. A well-validated Lagrangian tracking model was used to simulate particle trajectories in the acinar models with rhythmically expanding and contracting wall motions. Both spatial and temporal dosimetries in the acinar models were analyzed. Results show that collateral ventilation exists among alveoli due to pressure imbalance. The size of interalveolar septal aperture significantly alters the spatial deposition pattern, while it has an insignificant effect on the total deposition rate. Surprisingly, the deposition rate in the 45-alveoli model is lower than that in the 4-alveoli model, indicating a stronger particle dispersion in more complex models. The gravity orientation angle has a decreasing effect on acinar deposition rates with an increasing number of alveoli retained in the model; such an effect is nearly negligible in the 45-alveoli model. Breath-holding increased particle deposition in the acinar region, which was most significant in the alveoli proximal to the duct. Increasing inhalation depth only slightly increases the fraction of deposited particles over particles entering the alveolar model but has a large influence on dispensing particles to the peripheral alveoli. Results of this study indicate that an empirical correlation for acinar deposition can be developed based on alveolar models with reduced complexity; however, what level of geometry complexity would be sufficient is yet to be determined. Hindawi 2018-09-25 /pmc/articles/PMC6176334/ /pubmed/30356402 http://dx.doi.org/10.1155/2018/3649391 Text en Copyright © 2018 Jinxiang Xi et al. http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Xi, Jinxiang
Talaat, Mohamed
Tanbour, Hesham
Talaat, Khaled
Airflow and Particle Deposition in Acinar Models with Interalveolar Septal Walls and Different Alveolar Numbers
title Airflow and Particle Deposition in Acinar Models with Interalveolar Septal Walls and Different Alveolar Numbers
title_full Airflow and Particle Deposition in Acinar Models with Interalveolar Septal Walls and Different Alveolar Numbers
title_fullStr Airflow and Particle Deposition in Acinar Models with Interalveolar Septal Walls and Different Alveolar Numbers
title_full_unstemmed Airflow and Particle Deposition in Acinar Models with Interalveolar Septal Walls and Different Alveolar Numbers
title_short Airflow and Particle Deposition in Acinar Models with Interalveolar Septal Walls and Different Alveolar Numbers
title_sort airflow and particle deposition in acinar models with interalveolar septal walls and different alveolar numbers
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6176334/
https://www.ncbi.nlm.nih.gov/pubmed/30356402
http://dx.doi.org/10.1155/2018/3649391
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