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References
[1] M. Bathe, R.D. Kamm, A fluid-structure interaction finite element analysis of pulsatile blood flow through a
compliant stenotic artery, J. Biomech. Eng. 121 (1999) 361.
[2] D. Bluestein, K. Dumont, M. De Beule, J. Ricotta, P. Impellizzeri, B. Verhegghe, et al., Intraluminal thrombus
and risk of rupture in patient specific abdominal aortic aneurysm - FSI modelling, Comput. Methods
Biomech. Biomed. Engin. 12 (2009) 73.
[3] E. Buckingham, On physically similar systems: Illustrations of the use of dimensional equations, Phys. Rev. 4
(1914) 345.
[4] S. De Gruttola, K. Boomsma, D. Poulikakos, Y. Ventikos, Computational simulation of the blood separation
process, Artif. Organs. 29 (2005) 665.
[5] G. Dubini, R. Pietrabissa, F.M. Montevecchi, Fluid-structure interaction problems in bio-fluid mechanics: a
numerical study of the motion of an isolated particle freely suspended in channel flow, Med. Eng. Phys. 17
(1995) 609.
[6] H.A. Dwyer, P.B. Matthews, A. Azadani, N. Jaussaud, L. Ge, T.S. Guy, et al., Computational fluid dynamics
simulation of transcatheter aortic valve degeneration, Interact. Cardiovasc. Thorac. Surg. 9 (2009) 301.
[7] M.D. Ford, H.N. Nikolov, J.S. Milner, S.P. Lownie, E.M. Demont, W. Kalata, et al., PIV-measured versus
CFD-predicted flow dynamics in anatomically realistic cerebral aneurysm models, J. Biomech. Eng. 130
(2008) 021015.
[8] K.H. Fraser, M.X. Li, W.T. Lee, W.J. Easson, P.R. Hoskins, Fluid-structure interaction in axially symmetric
models of abdominal aortic aneurysms, Proc. Inst. Mech. Eng. H. 223 (2009) 195.
[9] A. Gosman, L. Ioannides, Aspects of Computer Simulation of Liquid-Fueled Combustors, AIAA, 1981.
[10] L. Goubergrits, U. Kertzscher, B. Schoneberg, E. Wellnhofer, C. Petz, H.C. Hege, CFD analysis in an anatomi-
cally realistic coronary artery model based on non-invasive 3D imaging: comparison of magnetic resonance
imaging with computed tomography, Int. J. Cardiovasc. Imaging 24 (2008) 411.
[11] L. Goubergrits, E. Wellnhofer, U. Kertzscher, K. Affeld, C. Petz, H.C. Hege, Coronary artery WSS profiling
using a geometry reconstruction based on biplane angiography, Ann. Biomed. Eng. 37 (2009) 682.
[12] B. Gunther, Dimensional analysis and theory of biological similarity, Physiol. Rev. 55 (1975) 659.
[13] K. Hassani, M. Navidbakhsh, M. Rostami, Modeling of the aorta artery aneurysms and renal artery stenosis
using cardiovascular electronic system, Biomed. Eng. Online 6 (2007) 22.
[14] D.C. Ipsen, Units, Dimensions and Dimensionless Numbers, McGraw-Hill, New York, 1960.
[15] J.M. Jimenez, P.F. Davies, Hemodynamically driven stent strut design, Ann. Biomed. Eng. 37 (2009) 1483.
[16] M.C. Johnson, R.D. Kamm, The role of Schlemm's canal in aqueous outflow from the human eye, Invest
Ophthalmol. Vis. Sci. 24 (1983) 320.
[17] J. Jung, A. Hassanein, Three-phase CFD analytical modeling of blood flow, Med. Eng. Phys. 30 (2008) 91.
[18] S.A. Kock, J.V. Nygaard, N. Eldrup, E.T. Frund, A. Klaerke, W.P. Paaske, et al., Mechanical stresses in carotid
plaques using MRI-based fluid-structure interaction models, J. Biomech. 41 (2008) 1651.
[19] C.A. Leguy, E.M. Bosboom, A.P. Hoeks, F.N. van de Vosse, Assessment of blood volume flow in slightly
curved arteries from a single velocity profile, J. Biomech. 42 (8-7-2009) 1664.
[20] Z. Li, C. Kleinstreuer, Fluid-structure interaction effects on sac-blood pressure and wall stress in a stented
aneurysm, J. Biomech. Eng. 127 (2005) 662.
[21] S.M. Moore, K.T. Moorhead, J.G. Chase, T. David, J. Fink, One-dimensional and three-dimensional models of
cerebrovascular flow, J. Biomech. Eng. 127 (2005) 440.
[22] J.L. Pelerin, C. Kulik, C. Goksu, J.L. Coatrieux, M. Rochette, Fluid/structure interaction applied to the simu-
lation of abdominal aortic aneurysms, Conf. Proc. IEEE Eng. Med. Biol. Soc. 1 (2006) 1754.
[23] V.L. Rayz, L. Boussel, G. Acevedo-Bolton, A.J. Martin, W.L. Young, M.T. Lawton, et al., Numerical simula-
tions of flow in cerebral aneurysms: comparison of CFD results and in vivo MRI measurements, J. Biomech.
Eng. 130 (2008) 051011.
[24] L.I. Sedov, Similarity and Dimensional Methods in Mechanics, Academic Press, New York, 1959.
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