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contributor authorKeith Walters, D.
contributor authorBurgreen, Greg W.
contributor authorHester, Robert L.
contributor authorThompson, David S.
contributor authorLavallee, David M.
contributor authorPruett, William A.
contributor authorWang, Xiao
date accessioned2017-05-09T01:08:48Z
date available2017-05-09T01:08:48Z
date issued2014
identifier issn0098-2202
identifier otherfe_136_10_101101.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/155059
description abstractComputational fluid dynamics (CFD) simulations were performed using largescale models of the human lung airway and unsteady periodic breathing conditions. The computational domain included fully coupled representations of the orotracheal region and large conducting zone up to generation four (G4) obtained from patientspecific CT data, and the small conducting zone (to the 16th generation) obtained from a stochastically generated airway tree with statistically realistic morphological characteristics. A reducedgeometry airway model was used, in which several airway branches in each generation were truncated, and only select flow paths were retained to the 16th generation. The inlet and outlet flow boundaries corresponded to the oral opening, the physical inlet/outlet boundaries at the terminal bronchioles, and the unresolved airway boundaries created from the truncation procedure. The total flow rate was specified according to the expected ventilation pattern for a healthy adult male, which was supplied by the wholebody modeling software HumMod. The unsteady mass flow distribution at the distal boundaries was prescribed based on a preliminary steadystate simulation with an applied flow rate equal to the average flow rate during the inhalation phase of the breathing cycle. In contrast to existing studies, this approach allows fully coupled simulation of the entire conducting zone, with no need to specify distal mass flow or pressure boundary conditions a priori, and without the use of impedance or onedimensional (1D) flow models downstream of the truncated boundaries. The results show that: (1) physiologically realistic flow is obtained in the model, in terms of cyclic mass conservation and approximately uniform pressure distribution in the distal airways; (2) the predicted alveolar pressure is in good agreement with correlated experimental data; and (3) the use of reducedorder geometry modeling allows accurate and efficient simulation of largescale breathing lung flow, provided care is taken to use a physiologically realistic geometry and to properly address the unsteady boundary conditions.
publisherThe American Society of Mechanical Engineers (ASME)
titleCyclic Breathing Simulations in Large Scale Models of the Lung Airway From the Oronasal Opening to the Terminal Bronchioles
typeJournal Paper
journal volume136
journal issue10
journal titleJournal of Fluids Engineering
identifier doi10.1115/1.4027485
journal fristpage101101
journal lastpage101101
identifier eissn1528-901X
treeJournal of Fluids Engineering:;2014:;volume( 136 ):;issue: 010
contenttypeFulltext


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