LAPSE:2023.1911
Published Article

LAPSE:2023.1911
A CFD Investigation on the Aerosol Drug Delivery in the Mouth−Throat Airway Using a Pressurized Metered-Dose Inhaler Device
February 21, 2023
Abstract
Inhalation therapy involving a pressurized metered-dose inhaler (pMDI) is one of the most commonly used and effective treatment methods for patients with asthma. The purpose of this study was to develop a computational fluid dynamics (CFD) model to characterize aerosol flow issued from a pMDI into a simulated mouth−throat geometry. The effects of air flow rate and cone angle were analyzed in detail. The behaviour of the multiphase flow initiated at the inhaler actuation nozzle and extended through the mouth−throat airway was simulated based on the Eulerian-Lagrangian discrete phase model, with the k-ω model applied for turbulency. We validated our model against published experimental measurements and cover the hydrodynamic aspect of the study. The recirculation we observed at the 90° bend inside the mouth−throat airway resulted in the selective retention of larger diameter particles, and the fluid flow patterns were correlated with drug deposition behaviour. Enhancing air flow rates up to three times reduced the aerodynamic particle diameters to 20%. We also observed that, as cone angle increased, mouth deposition increased; an 8° cone angle was the best angle for the lowest mouth−throat deposition.
Inhalation therapy involving a pressurized metered-dose inhaler (pMDI) is one of the most commonly used and effective treatment methods for patients with asthma. The purpose of this study was to develop a computational fluid dynamics (CFD) model to characterize aerosol flow issued from a pMDI into a simulated mouth−throat geometry. The effects of air flow rate and cone angle were analyzed in detail. The behaviour of the multiphase flow initiated at the inhaler actuation nozzle and extended through the mouth−throat airway was simulated based on the Eulerian-Lagrangian discrete phase model, with the k-ω model applied for turbulency. We validated our model against published experimental measurements and cover the hydrodynamic aspect of the study. The recirculation we observed at the 90° bend inside the mouth−throat airway resulted in the selective retention of larger diameter particles, and the fluid flow patterns were correlated with drug deposition behaviour. Enhancing air flow rates up to three times reduced the aerodynamic particle diameters to 20%. We also observed that, as cone angle increased, mouth deposition increased; an 8° cone angle was the best angle for the lowest mouth−throat deposition.
Record ID
Keywords
aerosol plume, Computational Fluid Dynamics, cone angle, mouth–throat geometry, particle deposition, pressurized metered-dose inhaler
Subject
Suggested Citation
Dastoorian F, Pakzad L, Kozinski J, Behzadfar E. A CFD Investigation on the Aerosol Drug Delivery in the Mouth−Throat Airway Using a Pressurized Metered-Dose Inhaler Device. (2023). LAPSE:2023.1911
Author Affiliations
Dastoorian F: Department of Chemical Engineering, Lakehead University, 955 Oliver Road, Thunder Bay, ON P7B 5E1, Canada
Pakzad L: Department of Chemical Engineering, Lakehead University, 955 Oliver Road, Thunder Bay, ON P7B 5E1, Canada
Kozinski J: Department of Chemical Engineering, Lakehead University, 955 Oliver Road, Thunder Bay, ON P7B 5E1, Canada
Behzadfar E: School of Graphic Communications Management, Toronto Metropolitan University, Toronto, ON M5B 2K3, Canada
Pakzad L: Department of Chemical Engineering, Lakehead University, 955 Oliver Road, Thunder Bay, ON P7B 5E1, Canada
Kozinski J: Department of Chemical Engineering, Lakehead University, 955 Oliver Road, Thunder Bay, ON P7B 5E1, Canada
Behzadfar E: School of Graphic Communications Management, Toronto Metropolitan University, Toronto, ON M5B 2K3, Canada
Journal Name
Processes
Volume
10
Issue
7
First Page
1230
Year
2022
Publication Date
2022-06-21
ISSN
2227-9717
Version Comments
Original Submission
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PII: pr10071230, Publication Type: Journal Article
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LAPSE:2023.1911
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https://doi.org/10.3390/pr10071230
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Feb 21, 2023
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