Measurement of Cyclic Flows in Trachea Using PIV and Numerical simulation

Inhalation of pharmaceutical aerosols is a convenient way to treat lung or even systemic diseases. For effective treatment it is very important to understand air flow characteristics within respiratory airways and determine deposition hot spots. In this paper the air flow in trachea was investigated...

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Main Authors: Bělka Miloslav, Elcner Jakub, Jedelský Jan, Boiron Olivier, Knapp Yannick, Bailly Lucie
Format: Article
Language:English
Published: EDP Sciences 2015-01-01
Series:EPJ Web of Conferences
Online Access:http://dx.doi.org/10.1051/epjconf/20159202006
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spelling doaj-95561fdfd0eb4354a79ef8f9a13dee072021-08-02T03:37:23ZengEDP SciencesEPJ Web of Conferences2100-014X2015-01-01920200610.1051/epjconf/20159202006epjconf_efm2014_02006Measurement of Cyclic Flows in Trachea Using PIV and Numerical simulationBělka Miloslav0Elcner Jakub1Jedelský Jan2Boiron Olivier3Knapp Yannick4Bailly Lucie5Brno University of TechnologyBrno University of TechnologyBrno University of TechnologyAix Marseille Université, CNRS, Centrale MarseilleAix Marseille Université, CNRS, Centrale MarseilleAvignon UniversityInhalation of pharmaceutical aerosols is a convenient way to treat lung or even systemic diseases. For effective treatment it is very important to understand air flow characteristics within respiratory airways and determine deposition hot spots. In this paper the air flow in trachea was investigated by numerical simulations. To validate these results we carried out particle image velocimetry experiments and compared resulting velocity fields. Simplified geometry of respiratory airways from oral cavity to 4th generation of branching was employed. Air flow characteristics were analysed during sinusoidal breathing pattern for light activity conditions (period 4 s and tidal volume 1 l). The observed flow fields indicated that the flow in trachea is turbulent during the sinusoidal flow except phases of flow turnarounds. The flow was skewed to front side of the trachea during inspiration and had twin-peak profile during expiration because of the mixing from daughter branches. The methods were compared and good agreement was found. This validation of CFD simulation can result into its further usage in respiratory airflow studies.http://dx.doi.org/10.1051/epjconf/20159202006
collection DOAJ
language English
format Article
sources DOAJ
author Bělka Miloslav
Elcner Jakub
Jedelský Jan
Boiron Olivier
Knapp Yannick
Bailly Lucie
spellingShingle Bělka Miloslav
Elcner Jakub
Jedelský Jan
Boiron Olivier
Knapp Yannick
Bailly Lucie
Measurement of Cyclic Flows in Trachea Using PIV and Numerical simulation
EPJ Web of Conferences
author_facet Bělka Miloslav
Elcner Jakub
Jedelský Jan
Boiron Olivier
Knapp Yannick
Bailly Lucie
author_sort Bělka Miloslav
title Measurement of Cyclic Flows in Trachea Using PIV and Numerical simulation
title_short Measurement of Cyclic Flows in Trachea Using PIV and Numerical simulation
title_full Measurement of Cyclic Flows in Trachea Using PIV and Numerical simulation
title_fullStr Measurement of Cyclic Flows in Trachea Using PIV and Numerical simulation
title_full_unstemmed Measurement of Cyclic Flows in Trachea Using PIV and Numerical simulation
title_sort measurement of cyclic flows in trachea using piv and numerical simulation
publisher EDP Sciences
series EPJ Web of Conferences
issn 2100-014X
publishDate 2015-01-01
description Inhalation of pharmaceutical aerosols is a convenient way to treat lung or even systemic diseases. For effective treatment it is very important to understand air flow characteristics within respiratory airways and determine deposition hot spots. In this paper the air flow in trachea was investigated by numerical simulations. To validate these results we carried out particle image velocimetry experiments and compared resulting velocity fields. Simplified geometry of respiratory airways from oral cavity to 4th generation of branching was employed. Air flow characteristics were analysed during sinusoidal breathing pattern for light activity conditions (period 4 s and tidal volume 1 l). The observed flow fields indicated that the flow in trachea is turbulent during the sinusoidal flow except phases of flow turnarounds. The flow was skewed to front side of the trachea during inspiration and had twin-peak profile during expiration because of the mixing from daughter branches. The methods were compared and good agreement was found. This validation of CFD simulation can result into its further usage in respiratory airflow studies.
url http://dx.doi.org/10.1051/epjconf/20159202006
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