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首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >Finite element modeling of mitral valve dynamic deformation using patient-specific multi-slices computed tomography scans
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Finite element modeling of mitral valve dynamic deformation using patient-specific multi-slices computed tomography scans

机译:使用患者特定的多层计算机断层扫描技术对二尖瓣动态变形进行有限元建模

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摘要

The objective of this study was to develop a patient-specific finite element (FE) model of a human mitral valve. The geometry of the mitral valve was reconstructed from multi-slice computed tomography (MSCT) scans at middle diastole with distinguishable mitral leaflet thickness, chordal origins, chordal insertion points, and papillary muscle locations. Mitral annulus and papillary muscle dynamic motions were also quantified from MSCT scans and prescribed as boundary conditions for the FE simulation. Material properties of the human mitral leaflet tissues were obtained from biaxial tests and characterized by an anisotropic hyperelastic material model. In vivo dynamic closing of the mitral valve was simulated. The closed shape of the mitral valve output from the simulation was similar to the mitral valve geometry reconstructed from MSCT images at middle systole. Forces from the anterolateral and posteromedial papillary muscle groups at middle systole were 4.51 N and 5.17 N, respectively. The average maximum principal stress of the midsection of the anterior mitral leaflet was approximately 160 kPa at the systolic peak. Results demonstrated that the developed FE model could closely replicate in vivo mitral valve dynamic motion during middle diastole and systole. This model may serve as a basis for utilizing computational simulations to obtain a better understanding of mitral valve mechanics, disease and surgical repair.
机译:这项研究的目的是开发人类二尖瓣的患者特定的有限元(FE)模型。二尖瓣的几何形状是通过在舒张中期的多层计算机断层扫描(MSCT)扫描重建的,其中二尖瓣小叶厚度,弦长,起源,弦插入点和乳头肌位置均明显。还从MSCT扫描中量化了二尖瓣环和乳头肌的动态运动,并将其指定为FE模拟的边界条件。人二尖瓣小叶组织的材料特性是通过双轴测试获得的,并通过各向异性超弹性材料模型进行了表征。模拟了二尖瓣的体内动态关闭。从模拟输出的二尖瓣的闭合形状类似于从中期收缩期的MSCT图像重建的二尖瓣几何形状。中收缩期前外侧和后内侧乳头肌群的力分别为4.51 N和5.17N。二尖瓣前小叶的中央部分的平均最大主应力在收缩期峰值约为160 kPa。结果表明,开发的有限元模型可以密切复制体内舒张中期和收缩期的二尖瓣动态运动。该模型可以作为利用计算模拟来更好地了解二尖瓣力学,疾病和外科修复的基础。

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