Although mechanical ventilation is a life-saving therapy for patients with severe lung disorders, the microbubble flows generated during ventilation generate hydrodynamic stresses, including pressure and shear stress gradients, which damage the pulmonary epithelium. In this study, we used computational fluid dynamics to investigate how gravity, inertia, and surface tension influence both microbubble flow patterns in bifurcating airways and the magnitude/distribution of hydrodynamic stresses on the airway wall. Direct interface tracking and finite element techniques were used to simulate bubble propagation in a two-dimensional (2D) liquid-filled bifurcating airway. Computational solutions of the full incompressible Navier–Stokes equation were used to investigate how inertia, gravity, and surface tension forces as characterized by the Reynolds (Re), Bond (Bo), and Capillary (Ca) numbers influence pressure and shear stress gradients at the airway wall. Gravity had a significant impact on flow patterns and hydrodynamic stress magnitudes where Bo > 1 led to dramatic changes in bubble shape and increased pressure and shear stress gradients in the upper daughter airway. Interestingly, increased pressure gradients near the bifurcation point (i.e., carina) were only elevated during asymmetric bubble splitting. Although changes in pressure gradient magnitudes were generally more sensitive to Ca, under large Re conditions, both Re and Ca significantly altered the pressure gradient magnitude. We conclude that inertia, gravity, and surface tension can all have a significant impact on microbubble flow patterns and hydrodynamic stresses in bifurcating airways.
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October 2014
Research-Article
Computational Analysis of Microbubble Flows in Bifurcating Airways: Role of Gravity, Inertia, and Surface Tension
Xiaodong Chen,
Xiaodong Chen
Department of Biomedical Engineering,
The Ohio State University
,Columbus, OH 43210
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Rachel Zielinski,
Rachel Zielinski
Department of Biomedical Engineering,
The Ohio State University
,Columbus, OH 43210
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Samir N. Ghadiali
Samir N. Ghadiali
1
Department of Biomedical Engineering,
The Ohio State University
,Columbus, OH 43210
Department of Internal Medicine,
Division of Pulmonary, Allergy, Critical Care and
Sleep Medicine,
Dorothy M. Davis Heart &
Lung Research Institute,
e-mail: ghadiali.1@osu.edu
Division of Pulmonary, Allergy, Critical Care and
Sleep Medicine,
Dorothy M. Davis Heart &
Lung Research Institute,
The Ohio State University
,Columbus, OH 43210
e-mail: ghadiali.1@osu.edu
1Corresponding author.
Search for other works by this author on:
Xiaodong Chen
Department of Biomedical Engineering,
The Ohio State University
,Columbus, OH 43210
Rachel Zielinski
Department of Biomedical Engineering,
The Ohio State University
,Columbus, OH 43210
Samir N. Ghadiali
Department of Biomedical Engineering,
The Ohio State University
,Columbus, OH 43210
Department of Internal Medicine,
Division of Pulmonary, Allergy, Critical Care and
Sleep Medicine,
Dorothy M. Davis Heart &
Lung Research Institute,
e-mail: ghadiali.1@osu.edu
Division of Pulmonary, Allergy, Critical Care and
Sleep Medicine,
Dorothy M. Davis Heart &
Lung Research Institute,
The Ohio State University
,Columbus, OH 43210
e-mail: ghadiali.1@osu.edu
1Corresponding author.
Manuscript received October 10, 2013; final manuscript received July 20, 2014; accepted manuscript posted July 30, 2014; published online August 12, 2014. Assoc. Editor: Alison Marsden.
J Biomech Eng. Oct 2014, 136(10): 101007 (11 pages)
Published Online: August 12, 2014
Article history
Received:
October 10, 2013
Revision Received:
July 20, 2014
Accepted:
July 30, 2014
Citation
Chen, X., Zielinski, R., and Ghadiali, S. N. (August 12, 2014). "Computational Analysis of Microbubble Flows in Bifurcating Airways: Role of Gravity, Inertia, and Surface Tension." ASME. J Biomech Eng. October 2014; 136(10): 101007. https://doi.org/10.1115/1.4028097
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