Biomedical Engineering Reference
In-Depth Information
Comerford A, Förster C, Wall WA (2010) Structured tree impedance outflow boundary conditions
for 3D lung simulations. J Biomech Eng 132:081002
Denny E, Schroter RC (2000) Viscoelastic behavior of a lung alveolar duct model. J Biomech Eng
112:143-151
Denny E, Schroter RC (2006) A model of non-uniform lung parenchyma distortion. J Biomech
39:652-663
DiRocco JD, Carney DE, Nieman GF (2005) The mechanism of ventilator-induced lung injury:
role of dynamic alveolar mechanics. In: Yearbook of intensive care and emergency medicine
2005, vol 2005, pp 80-92, Part 2
Feyel F, Chaboche J-L (2000) FE 2 multiscale approach for modelling the elastoviscoplastic be-
haviour of long fibre SiC/Ti composite materials. Comput Methods Appl Mech Eng 183:309-
330
Gee MW, Küttler U, Wall WA (2010) Truly monolithic algebraic multigrid for fluid-structure in-
teraction. Int J Numer Methods Eng 85:987-1016
Geers MGD, Kouznetsova V, Brekelmans WAM (2010) Multi-scale computational homogeniza-
tion: trends & challenges. J Comput Appl Math 234:2175-2182
Gefen A, Halpern P, Shiner RJ, Schroter RC, Elad D (2001) Analysis of mechanical stresses within
the alveolar septa leading to pulmonary edema. Technol Health Care 9:257-267
Gravemeier V, Yoshihara L, Comerford A, Ismail M, Wall WA (2012) Neumann inflow boundary
conditions in biomechanics. Int J Numer Methods Biomed Eng 28:560-573
Holzapfel GA, Gasser TC, Ogden RW (2000) A new constitutive framework for arterial wall me-
chanics and a comparative study of material models. J Elast 61:1-48
Horsfield K, Dart G, Olson D, Filley G, Cumming G (1971) Models of the human bronchial tree.
J Appl Physiol 31:207-217
Ismail M, Comerford A, Wall W (2012a) Coupled and reduced dimensional modeling of respira-
tory mechanics during spontaneous breathing. Int J Numer Methods Biomed Eng (submitted)
Ismail M, Gravemeier V, Comerford A, Wall W (2012b) A computational approach for simulating
coupled 3D-0D biofluid networks using Neumann inflow boundary conditions (in preparation)
Kouznetsova V, Brekelmans WAM, Baaijens FPT (2001) An approach to micro-macro modeling
of heterogeneous materials. Comput Mech 27:37-48
Kowe R, Schroter RC, Matthews FL, Hitchings D (1986) Analysis of elastic and surface tension
effects in the lung alveolus using finite element methods. J Biomech 19:541-549
Küttler U, Gee MW, Förster C, Comerford A, Wall WA (2010) Coupling strategies for biomedical
fluid-structure interaction problems. Int J Numer Methods Biomed Eng 26:305-321
Lambert RK, Wilson TA, Hyatt RE, Rodarte JR (1982) A computational model for expiratory flow.
Respir Physiol 52:44-56
Mead J, Takishima T, Leith D (1970) Stress distribution in lungs: a model of pulmonary elasticity.
J Appl Physiol 28:596-608
Miehe C (2003) Computational micro-to-macro transitions for discretized microstructures of het-
erogeneous materials at finite strains based on the minimization of averaged incremental energy.
Comput Methods Appl Mech Eng 192:559-591
Otis DR, Ingenito EP, Kamm RD, Johnson M (1994) Dynamic surface tension of surfactant TA:
experiments and theory. J Appl Physiol 77:2681-2688
Pedley TJ, Schroter RC, Sudlow MF (1970) The prediction of pressure drop and variation of resis-
tance within the human bronchial airways. Respir Physiol 9:387-405
Peric D, de Souza Neto EA, Feijoo RA, Partovi M, Molina AJC (2010) On micro-to-macro tran-
sitions for multi-scale analysis of non-linear heterogeneous materials: unified variational basis
and finite element implementation. Int J Numer Methods Eng 87:149-170
Ranieri VM, Suter PM, Tortorella C, De Tullio R, Dayer JM, Brienza A, Bruno F, Slutsky AS
(1999) Effect of mechanical ventilation on inflammatory mediators in patients with acute respi-
ratory distress syndrome: a randomized controlled trial. J Am Med Assoc 282:54-61
Rausch S, Haberthuer D, Stampanoni M, Schittny JC, Wall WA (2011a) Local strain distribution
in real three-dimensional alveolar geometries. Ann Biomed Eng 39:2835-2843
Search WWH ::




Custom Search