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首页> 外文期刊>International journal for numerical methods in biomedical engineering >Immersed boundary model of aortic heart valve dynamics with physiological driving and loading conditions
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Immersed boundary model of aortic heart valve dynamics with physiological driving and loading conditions

机译:具有生理驱动和负荷条件的主动脉心脏瓣膜动力学的浸入边界模型

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摘要

The immersed boundary (IB) method is a mathematical and numerical framework for problems of fluidstructure interaction, treating the particular case in which an elastic structure is immersed in a viscous incompressible fluid. The IB approach to such problems is to describe the elasticity of the immersed structure in Lagrangian form, and to describe the momentum, viscosity, and incompressibility of the coupled fluid-structure system in Eulerian form. Interaction between Lagrangian and Eulerian variables is mediated by integral equations with Dirac delta function kernels. The IB method provides a unified formulation for fluid-structure interaction models involving both thin elastic boundaries and also thick viscoelastic bodies. In this work, we describe the application of an adaptive, staggered-grid version of the IB method to the three-dimensional simulation of the fluid dynamics of the aortic heart valve. Our model describes the thin leaflets of the aortic valve as immersed elastic boundaries, and describes the wall of the aortic root as a thick, semi-rigid elastic structure. A physiological left-ventricular pressure waveform is used to drive flow through the model valve, and dynamic pressure loading conditions are provided by a reduced (zero-dimensional) circulation model that has been fit to clinical data. We use this model and method to simulate aortic valve dynamics over multiple cardiac cycles. The model is shown to approach rapidly a periodic steady state in which physiological cardiac output is obtained at physiological pressures. These realistic flow rates are not specified in the model, however. Instead, they emerge from the fluid-structure interaction simulation.
机译:浸入边界(IB)方法是解决流体结构相互作用问题的数学和数值框架,它处理了将弹性结构浸入粘性不可压缩流体中的特殊情况。 IB解决此类问题的方法是以拉格朗日形式描述沉浸结构的弹性,并以欧拉形式描述耦合的流体结构系统的动量,粘度和不可压缩性。拉格朗日变量与欧拉变量之间的相互作用是由带有Dirac德尔塔函数核的积分方程介导的。 IB方法为涉及薄弹性边界和厚粘弹性体的流固耦合模型提供了统一的公式。在这项工作中,我们描述了IB方法的自适应交错网格版本在主动脉心脏瓣膜流体动力学的三维模拟中的应用。我们的模型将主动脉瓣的细小叶描述为浸没的弹性边界,并将主动脉根的壁描述为厚的,半刚性的弹性结构。生理性左心室压力波形用于驱动流过模型阀,并且动态压力加载条件由适合临床数据的缩小(零维)循环模型提供。我们使用这种模型和方法来模拟多个心脏周期内的主动脉瓣动态。该模型显示可以快速达到周期性稳态,在该稳态下可以在生理压力下获得生理心输出量。但是,模型中未指定这些实际流速。相反,它们是从流固耦合模拟中产生的。

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