Image-based immersed boundary model of the aortic root

被引:18
作者
Hasan, Ali [1 ]
Kolandouz, Ebrahim M. [1 ]
Enquobahrie, Andinet [2 ]
Caranasos, Thomas G. [3 ]
Vavalle, John P. [4 ]
Griffith, Boyce E. [1 ,5 ]
机构
[1] Univ N Carolina, Dept Math, Phillips Hall,Campus Box 3250, Chapel Hill, NC 27599 USA
[2] Kitware Inc, Med Comp Grp, Carrboro, NC USA
[3] Univ N Carolina, Sch Med, Dept Surg, Div Cardiothorac Surg, Chapel Hill, NC 27599 USA
[4] Univ N Carolina, Sch Med, Dept Med, Div Cardiol, Chapel Hill, NC 27599 USA
[5] Univ N Carolina, McAllister Heart Inst, Chapel Hill, NC 27599 USA
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
Immersed boundary method; Finite element method; Fluid structure interaction; Nonlinear elasticity; Aortic valve; FLUID-STRUCTURE INTERACTION; STRUCTURAL CONSTITUTIVE MODEL; BIAXIAL MECHANICAL-PROPERTIES; NAVIER-STOKES EQUATIONS; FINITE ELEMENT MODEL; HEART-VALVES; FIBER ORIENTATION; INTERFACE METHOD; TRANSCATHETER; IMPLANTATION;
D O I
10.1016/j.medengphy.2017.05.007
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Each year, approximately 300,000 heart valve repair or replacement procedures are performed worldwide, including approximately 70,000 aortic valve replacement surgeries in the United States alone. Computational platforms for simulating cardiovascular devices such as prosthetic heart valves promise to improve device design and assist in treatment planning, including patient-specific device selection. This paper describes progress in constructing anatomically and physiologically realistic immersed boundary (IB) models of the dynamics of the aortic root and ascending aorta. This work builds on earlier IB models of fluid-structure interaction (FSI) in the aortic root, which previously achieved realistic hemodynamics over multiple cardiac cycles, but which also were limited to simplified aortic geometries and idealized descriptions of the biomechanics of the aortic valve cusps. By contrast, the model described herein uses an anatomical geometry reconstructed from patient-specific computed tomography angiography (CTA) data, and employs a description of the elasticity of the aortic valve leaflets based on a fiber-reinforced constitutive model fit to experimental tensile test data. The resulting model generates physiological pressures in both systole and diastole, and yields realistic cardiac output and stroke volume at physiological Reynolds numbers. Contact between the valve leaflets during diastole is handled automatically by the IB method, yielding a fully competent valve model that supports a physiological diastolic pressure load without regurgitation. Numerical tests show that the model is able to resolve the leaflet biomechanics in diastole and early systole at practical grid spacings. The model is also used to examine differences in the mechanics and fluid dynamics yielded by fresh valve leaflets and glutaraldehyde-fixed leaflets similar to those used in bioprosthetic heart valves. Although there are large differences in the leaflet deformations during diastole, the differences in the open configurations of the valve models are relatively small, and nearly identical hemodynamics are obtained in all cases considered. (C) 2017 IPEM. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:72 / 84
页数:13
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