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结构和流固相互作用心脏瓣膜模拟的准确性研究。

Study on the Accuracy of Structural and FSI Heart Valves Simulations.

作者信息

Luraghi Giulia, Migliavacca Francesco, Rodriguez Matas Josè Fèlix

机构信息

Laboratory of Biological Structure Mechanics (LaBS), Department of Chemistry, Materials and Chemical Engineering 'Giulio Natta', Politecnico di Milano, Milan, Italy.

出版信息

Cardiovasc Eng Technol. 2018 Dec;9(4):723-738. doi: 10.1007/s13239-018-00373-3. Epub 2018 Aug 21.

Abstract

PURPOSE

The performance of heart valves, either native or artificial, can be evaluated by means of finite element analyses, either from a structural or a fluid-structure interaction (FSI) point of view. The latter captures the coupling between the valve leaflets and the blood in a more realistic way. The selection of the appropriate finite elements approach for the model is the first and fundamental step to achieve accurate simulations. The aim of this work is to investigate the influence of the type, formulation, size, and shape of the elements in heart valves simulations.

METHODS

The effects related to the choice of the finite elements-shell or solid- in structural and FSI simulations were analyzed. In particular, the analysis of grid convergence on both the structure and fluid domains, the influence of the element typology, formulation and damping factor in an idealized three-leaflets valve model loaded with physiological pressure conditions were investigated.

RESULTS

Stress values and valve kinematics results confirmed the importance of performing a proper verification process for selecting the most appropriate elements with the optimal accuracy to computational cost ratio.

CONCLUSION

In this regard, our results indicate the quadrangular shell with reduced integration and viscous hourglass control to be the best choice to model heart valves. If a solid discretization is required, quadratic hexahedral elements with full integration are also acceptable. Finally, our results show that the damping coefficient needs to be carefully selected in order to smooth out the high frequency modes of the structure without introducing excessive numerical artificial viscosity.

摘要

目的

心脏瓣膜(无论是天然瓣膜还是人工瓣膜)的性能可通过有限元分析从结构或流固相互作用(FSI)的角度进行评估。后者能以更真实的方式捕捉瓣膜小叶与血液之间的耦合。为模型选择合适的有限元方法是实现精确模拟的首要且基本的步骤。本研究的目的是探究单元类型、公式、尺寸和形状对心脏瓣膜模拟的影响。

方法

分析了在结构和FSI模拟中选择有限元(壳单元或实体单元)相关的影响。具体而言,研究了在理想化的三叶瓣膜模型中,在生理压力条件下加载时,网格在结构域和流体域上的收敛性分析、单元类型、公式和阻尼因子的影响。

结果

应力值和瓣膜运动学结果证实了进行适当验证过程以选择具有最佳精度与计算成本比的最合适单元的重要性。

结论

在这方面,我们的结果表明,采用缩减积分和粘性沙漏控制的四边形壳单元是模拟心脏瓣膜的最佳选择。如果需要实体离散化,完全积分的二次六面体单元也是可以接受的。最后,我们的结果表明,需要仔细选择阻尼系数,以便在不引入过多数值人工粘性的情况下平滑结构的高频模态。

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