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Dynamic Simulation of Bioprosthetic Heart Valves Using a Stress Resultant Shell Model

机译:基于应力合成壳模型的生物人工心脏瓣膜动态仿真

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摘要

It is a widely accepted axiom that localized concentration of mechanical stress and large flexural deformation is closely related to the calcification and tissue degeneration in bioprosthetic heart valves (BHV). In order to investigate the complex BHV deformations and stress distributions throughout the cardiac cycle, it is necessary to perform an accurate dynamic analysis with a morphologically and physiologically realistic material specification for the leaflets. We have developed a stress resultant shell model for BHV leaflets incorporating a Fung-elastic constitutive model for in-plane and bending responses separately. Validation studies were performed by comparing the finite element predicted displacement and strain measures with the experimentally measured data under physiological pressure loads. Computed regions of stress concentration and large flexural deformation during the opening and closing phases of the cardiac cycle correlated with previously reported regions of calcification and/or mechanical damage on BHV leaflets. It is expected that the developed experimental and computational methodology will aid in the understanding of the complex dynamic behavior of native and bioprosthetic valves and in the development of tissue engineered valve substitutes.
机译:一个普遍接受的公理是,机械应力的局部集中和较大的挠曲变形与生物人工心脏瓣膜(BHV)中的钙化和组织变性密切相关。为了研究整个心动周期中复杂的BHV变形和应力分布,有必要针对小叶在形态和生理上符合实际的材料规格下进行准确的动态分析。我们已经为BHV传单开发了应力合成的壳模型,该模型结合了分别针对面内和弯曲响应的Fung弹性本构模型。通过比较有限元预测的位移和应变测量值与生理压力载荷下的实验测量数据来进行验证研究。心动周期打开和关闭阶段的应力集中和大挠曲变形的计算区域与先前报道的BHV小叶上的钙化和/或机械损伤区域相关。可以预期,开发的实验和计算方法将有助于理解天然和生物瓣膜的复杂动态行为,并有助于组织工程瓣膜替代物的开发。

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