Structured Tree Impedance Outflow Boundary Conditions for 3D Lung Simulations

被引:46
|
作者
Comerford, Andrew [1 ]
Foerster, Christiane [1 ]
Wall, Wolfgang A. [1 ]
机构
[1] Tech Univ Munich, Inst Computat Mech, D-85747 Garching, Germany
来源
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME | 2010年 / 132卷 / 08期
关键词
BLOOD-FLOW; AIR-FLOW; MECHANICAL VENTILATION; PROTECTIVE-VENTILATION; 3-DIMENSIONAL MODEL; SMALL AIRWAYS; PRESSURE; MORTALITY; INJURY; TISSUE;
D O I
10.1115/1.4001679
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
In this paper, we develop structured tree outflow boundary conditions for modeling the airflow in patient specific human lungs. The utilized structured tree is used to represent the nonimageable vessels beyond the 3D domain. The coupling of the two different scales (1D and 3D) employs a Dirichlet-Neumann approach. The simulations are performed under a variety of conditions such as light breathing and constant flow ventilation (which is characterized by very rapid acceleration and deceleration). All results show that the peripheral vessels significantly impact the pressure, however, the flow is relatively unaffected, reinforcing the fact that the majority of the lung impedance is due to the lower generations rather than the peripheral vessels. Furthermore, simulations of a hypothetical diseased lung (restricted flow in the superior left lobe) under mechanical ventilation show that the mean pressure at the outlets of the 3D domain is about 28% higher. This hypothetical model illustrates potential causes of volutrauma in the human lung and furthermore demonstrates how different clinical scenarios can be studied without the need to assume the unknown flow distribution into the downstream region. [DOI: 10.1115/1.4001679]
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Periodic boundary conditions in a 3D hydro code
    Morgan, DL
    Neely, JR
    Vantine, HC
    COMPUTER PHYSICS COMMUNICATIONS, 2000, 126 (1-2) : 131 - 136
  • [32] Periodic boundary conditions in a 3D hydro code
    Morgan Jr., David L.
    Neely, J. Robert
    Vantine, Harry C.
    Computer Physics Communications, 2000, 126 (01) : 131 - 136
  • [33] Dual boundary conditions in 3d SCFT's
    Dimofte, Tudor
    Gaiotto, Davide
    Paquette, Natalie M.
    JOURNAL OF HIGH ENERGY PHYSICS, 2018, (05):
  • [34] Autocorrection of lung boundary on 3D CT lung cancer images*
    Nurfauzi, R.
    Nugroho, H. A.
    Ardiyanto, I.
    Frannita, E. L.
    JOURNAL OF KING SAUD UNIVERSITY-COMPUTER AND INFORMATION SCIENCES, 2021, 33 (05) : 518 - 527
  • [35] Application of Mitzner Impedance Boundary Conditions for Thin Sheets to EM/EMI Analysis of Open 3D Geometries
    Bogdanov, Faik
    Jobava, Roman
    Chochia, Irina
    2013 IEEE ANTENNAS AND PROPAGATION SOCIETY INTERNATIONAL SYMPOSIUM (APSURSI), 2013, : 1778 - 1779
  • [36] 3D MoM Computations with High Order Impedance Boundary Condition
    Soudais, P.
    2017 INTERNATIONAL CONFERENCE ON ELECTROMAGNETICS IN ADVANCED APPLICATIONS (ICEAA), 2017, : 340 - 341
  • [37] 3D Blood Flow Simulations in Human Arterial Tree Bifurcations
    Aribas, Erke
    Piskin, Senol
    Celebi, M. S.
    BIYOMUT: 2009 14TH NATIONAL BIOMEDICAL ENGINEERING MEETING, 2009, : 538 - 541
  • [38] Patient-individualized boundary conditions for CFD simulations using time-resolved 3D angiography
    Boegel, Marco
    Gehrisch, Sonja
    Redel, Thomas
    Rohkohl, Christopher
    Hoelter, Philip
    Doerfler, Arnd
    Maier, Andreas
    Kowarschik, Markus
    INTERNATIONAL JOURNAL OF COMPUTER ASSISTED RADIOLOGY AND SURGERY, 2016, 11 (06) : 1061 - 1069
  • [39] Patient-individualized boundary conditions for CFD simulations using time-resolved 3D angiography
    Marco Boegel
    Sonja Gehrisch
    Thomas Redel
    Christopher Rohkohl
    Philip Hoelter
    Arnd Doerfler
    Andreas Maier
    Markus Kowarschik
    International Journal of Computer Assisted Radiology and Surgery, 2016, 11 : 1061 - 1069
  • [40] Tracer diffusion in a polymer gel: simulations of static and dynamic 3D networks using spherical boundary conditions
    Kamerlin, Natasha
    Elvingson, Christer
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2016, 28 (47)