Three-dimensional, Unsteady Simulation of Alveolar RespirationSource: Journal of Biomechanical Engineering:;2002:;volume( 124 ):;issue: 005::page 609Author:Vladimir V. Kulish
,
ASME Assoc. Mem.
,
José L. Lage
,
ASME Mem.
,
Connie C. W. Hsia
,
Robert L. Johnson
DOI: 10.1115/1.1504445Publisher: The American Society of Mechanical Engineers (ASME)
Abstract: A novel macroscopic gas transport model, derived from fundamental engineering principles, is used to simulate the three-dimensional, unsteady respiration process within the alveolar region of the lungs. The simulations, mimicking the single-breath technique for measuring the lung diffusing capacity for carbon-monoxide (CO), allow the prediction of the red blood cell (RBC) distribution effects on the lung diffusing capacity. Results, obtained through numerical simulations, unveil a strong relationship between the type of distribution and the lung diffusing capacity. Several RBC distributions are considered, namely: normal (random), uniform, center-cluster, and corner-cluster red cell distributions. A nondimensional correlation is obtained in terms of a geometric parameter characterizing the RBC distribution, and presented as a useful tool for predicting the RBC distribution effect on the lung diffusing capacity. The effect of red cell movement is not considered in the present study because CO does not equilibrate with capillary blood within the time spent by blood in the capillary. Hence, blood flow effect on CO diffusion is expected to be only marginal.
keyword(s): Pressure , Diffusion (Physics) , Equations , Lung , Erythrocytes , Diffusion processes , Engineering simulation , Corners (Structural elements) AND Computer simulation ,
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contributor author | Vladimir V. Kulish | |
contributor author | ASME Assoc. Mem. | |
contributor author | José L. Lage | |
contributor author | ASME Mem. | |
contributor author | Connie C. W. Hsia | |
contributor author | Robert L. Johnson | |
date accessioned | 2017-05-09T00:06:48Z | |
date available | 2017-05-09T00:06:48Z | |
date copyright | October, 2002 | |
date issued | 2002 | |
identifier issn | 0148-0731 | |
identifier other | JBENDY-26269#609_1.pdf | |
identifier uri | http://yetl.yabesh.ir/yetl/handle/yetl/126369 | |
description abstract | A novel macroscopic gas transport model, derived from fundamental engineering principles, is used to simulate the three-dimensional, unsteady respiration process within the alveolar region of the lungs. The simulations, mimicking the single-breath technique for measuring the lung diffusing capacity for carbon-monoxide (CO), allow the prediction of the red blood cell (RBC) distribution effects on the lung diffusing capacity. Results, obtained through numerical simulations, unveil a strong relationship between the type of distribution and the lung diffusing capacity. Several RBC distributions are considered, namely: normal (random), uniform, center-cluster, and corner-cluster red cell distributions. A nondimensional correlation is obtained in terms of a geometric parameter characterizing the RBC distribution, and presented as a useful tool for predicting the RBC distribution effect on the lung diffusing capacity. The effect of red cell movement is not considered in the present study because CO does not equilibrate with capillary blood within the time spent by blood in the capillary. Hence, blood flow effect on CO diffusion is expected to be only marginal. | |
publisher | The American Society of Mechanical Engineers (ASME) | |
title | Three-dimensional, Unsteady Simulation of Alveolar Respiration | |
type | Journal Paper | |
journal volume | 124 | |
journal issue | 5 | |
journal title | Journal of Biomechanical Engineering | |
identifier doi | 10.1115/1.1504445 | |
journal fristpage | 609 | |
journal lastpage | 616 | |
identifier eissn | 1528-8951 | |
keywords | Pressure | |
keywords | Diffusion (Physics) | |
keywords | Equations | |
keywords | Lung | |
keywords | Erythrocytes | |
keywords | Diffusion processes | |
keywords | Engineering simulation | |
keywords | Corners (Structural elements) AND Computer simulation | |
tree | Journal of Biomechanical Engineering:;2002:;volume( 124 ):;issue: 005 | |
contenttype | Fulltext |