Abstract
Breathing conditions pertaining to nasal obstruction, obstructive sleep apnea, and airflow resistance in the human lower airways have been investigated extensively by researchers over the years. Due to the availability of advanced computer numerical models, such as computational fluid dynamics (CFD), researchers have made progressive studies of airflow characteristic, especially the effects of airflow pressure, velocity and wall shear stress in human obstructive airways. Studies utilizing CFD have enhanced clinical understanding of the physiology and pathophysiology of the respiratory system through the concept of three-dimensional models that facilitate airflow simulation. The main objective of this article is to review recent CFD literature on nasal airflow and lower airway obstruction. The review covers the role of segmentation threshold in the outcome of airflow simulation in the nasal cavity, and results of fluid structure interaction (FSI) and computational fluid dynamics in nasal obstruction and airway collapse in obstructive sleep apnea were also correlated. For models of the lower airways, we evaluated the effect of extra-thoracic airway (ETA) on downstream airflow during simulation against the popular Weibel’s model. In the concluding section, we discussed the advantages, limitations, and prospects (precisely with deep machine learning) of computational fluid dynamics in the clinical assessment and investigation of respiratory diseases.
Highlights
Computational fluid dynamics (CFD) emerged during the last five decades, making it a relatively young discipline [1]
The applications evaluated in this review focuses on 3-dimensional computational fluid dynamics (CFD) analyses of obstructed upper and lower airways of the respiratory system
Advantages and the prospects of CFD focusing on diagnosis of human airway obstruction and diseases were discussed
Summary
Computational fluid dynamics (CFD) emerged during the last five decades, making it a relatively young discipline [1]. For more than two decades, the virtual reality software that allows users to manipulate flow data to investigate and validate fluid properties has remained indisputably one of the interesting tools in the area of fluid mechanics. As one of the branches of fluid mechanics, it employs numerical methods and algorithmic processes to solve and evaluate problems involving fluid flows [2]. CFD technique is a proven powerful and cost effective tool relevant in the study of complex flow patterns. It possesses the capability of giving detailed information in physical models that aid prediction of airflow behavior in real-life scenarios [3,4,5]. The application of CFD has gained wide range of use in many engineering fields such as; Biological Engineering [6], Environmental Engineering [7], and has been established as relevant tool in the field of Medicine [8]
Talk to us
Join us for a 30 min session where you can share your feedback and ask us any queries you have
More From: International Journal of Biomedical Science and Engineering
Disclaimer: All third-party content on this website/platform is and will remain the property of their respective owners and is provided on "as is" basis without any warranties, express or implied. Use of third-party content does not indicate any affiliation, sponsorship with or endorsement by them. Any references to third-party content is to identify the corresponding services and shall be considered fair use under The CopyrightLaw.