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Mathematical Model of Diffusion-Limited Gas Bubble Dynamics in Unstirred Tissue with Finite VolumeModels of gas bubble dynamics for studying decompression sickness have been developed by considering the bubble to be immersed in an extravascular tissue with diffusion-limited gas exchange between the bubble and the surrounding unstirred tissue. In previous versions of this two-region model, the tissue volume must be theoretically infinite, which renders the model inapplicable to analysis of bubble growth in a finite-sized tissue. We herein present a new two-region model that is applicable to problems involving finite tissue volumes. By introducing radial deviations to gas tension in the diffusion region surrounding the bubble, the concentration gradient can be zero at a finite distance from the bubble, thus limiting the tissue volume that participates in bubble–tissue gas exchange. It is shown that these deviations account for the effects of heterogeneous perfusion on gas bubble dynamics, and are required for the tissue volume to be finite. The bubble growth results from a difference between the bubble gas pressure and an average gas tension in the surrounding diffusion region that explicitly depends on gas uptake and release by the bubble. For any given decompression, the diffusion region volume must stay above a certain minimum in order to sustain bubble growth.
Document ID
20040088368
Acquisition Source
Johnson Space Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
R. Srini Srinivasan
(Wyle (United States) El Segundo, California, United States)
Wayne A. Gerth
(United States Department of the Navy Arlington, Virginia, United States)
Michael R. Powell
(Johnson Space Center Houston, Texas, United States)
Date Acquired
August 21, 2013
Publication Date
February 1, 2002
Publication Information
Publication: Annals of Biomedical Engineering
Publisher: Springer
Volume: 30
Issue: 2
Issue Publication Date: February 1, 2002
ISSN: 0090-6964
e-ISSN: 1573-9686
Subject Category
Aerospace Medicine
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
NASA Discipline Environmental Health
Non-NASA Center
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