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PMID: 28735415 Published · ppublish English Journal Article

CFD simulation of aerosol delivery to a human lung via surface acoustic wave nebulization.

Biomechanics and modeling in mechanobiology ·Vol. 16 ·No. 6 ·2017-12-00 ·页码 2035-2050

Yousefi M, Pourmehran O, Gorji-Bandpy M, Inthavong K, Yeo L, Tu J

Abstract

Administration of drug in the form of particles through inhalation is generally preferable in the treatment of respiratory disorders. Conventional inhalation therapy devices such as inhalers and nebulizers, nevertheless, suffer from low delivery efficiencies, wherein only a small fraction of the inhaled drug reaches the lower respiratory tract. This is primarily because these devices are not able to produce a sufficiently fine drug mist that has aerodynamic diameters on the order of a few microns. This study employs computational fluid dynamics to investigate the transport and deposition of the drug particles produced by a new aerosolization technique driven by surface acoustic waves (SAWs) into an in silico lung model geometrically reconstructed using computed tomography scanning. The particles generated by the SAW are released in different locations in a spacer chamber attached to a lung model extending from the mouth to the 6th generation of the lung bronchial tree. An Eulerian approach is used to solve the Navier-Stokes equations that govern the airflow within the respiratory tract, and a Lagrangian approach is adopted to track the particles, which are assumed to be spherical and inert. Due to the complexity of the lung geometry, the airflow patterns vary as it penetrates deeper into the lung. High inertia particles tend to deposit at locations where the geometry experiences a significant reduction in cross section. Our findings, nevertheless, show that the injection location can influence the delivery efficiency: Injection points close to the spacer centerline result in deeper penetration into the lung. Additionally, we found that the ratio of drug particles entering the right lung is significantly higher than the left lung, independent of the injection location. This is in good agreement with this fact that the most of airflow enters to the right lobes.

Keywords
Aerosol Computational fluid dynamics Drug delivery Lung Nebulizer Surface acoustic wave
MeSH 主题词
Aerosols/administration & dosage Computer Simulation Drug Delivery Systems Humans Hydrodynamics Lung/physiology Nebulizers and Vaporizers Particle Size Reproducibility of Results Sound Surface Properties
化学物质
Aerosols
作者与单位
共 6 位作者,点击展开单位 / ORCID
Yousefi Morteza ORCID
School of Engineering, RMIT University, Melbourne, Australia.
Pourmehran Oveis
Faculty of Mechanical Engineering, Babol Noshirvani University of Technology, Babol, Iran.
Gorji-Bandpy Mofid
Faculty of Mechanical Engineering, Babol Noshirvani University of Technology, Babol, Iran.
Inthavong Kiao
School of Engineering, RMIT University, Melbourne, Australia. [email protected].
Yeo Leslie
School of Engineering, RMIT University, Melbourne, Australia.
Tu Jiyuan
School of Engineering, RMIT University, Melbourne, Australia.
Article Info
Journal
Biomechanics and modeling in mechanobiology
Abbr.
Biomech Model Mechanobiol
ISSN
1617-7940
Corresponding email
Published
2017-12-00
电子出版
2017-00-22
页码
2035-2050
Language
English
Country/Region
Germany
NLM ID
101135325
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