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首页> 外文期刊>Journal of biomechanical engineering. >Fluid-Structure Interaction Models of Bicuspid Aortic Valves: The Effects of Nonfused Cusp Angles
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Fluid-Structure Interaction Models of Bicuspid Aortic Valves: The Effects of Nonfused Cusp Angles

机译:流体结构相互作用型号双裂主动脉瓣膜:非熔断角度的影响

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摘要

Bicuspid aortic valve (BAV) is the most common type of congenital heart disease, occurring in 0.5-2% of the population, where the valve has only two rather than the three normal cusps. Valvular pathologies, such as aortic regurgitation and aortic stenosis, are associated with BAVs, thereby increasing the need for a better understanding of BAV kinematics and geometrical characteristics. The aim of this study is to investigate the influence of the nonfused cusp (NFC) angle in BAV type-1 configuration on the valve's structural and hemodynamic performance. Toward that goal, a parametric fluid-structure interaction (FSI) modeling approach of BAVs is presented. Four FSI models were generated with varying NFC angles between 120 deg and 180 deg. The FSI simulations were based on fully coupled structural and fluid dynamic solvers and corresponded to physiologic values, including the anisotropic hyper-elastic behavior of the tissue. The simulated angles led to different mechanical behavior, such as eccentric jet flow direction with a wider opening shape that was found for the smaller NFC angles, while a narrower opening orifice followed by increased jet flow velocity was observed for the larger NFC angles. Smaller NFC angles led to higher concentrated flow shear stress (FSS) on the NFC during peak systole, while higher maximal principal stresses were found in the raphe region during diastole. The proposed biomechanical models could explain the early failure of BAVs with decreased NFC angles, and suggests that a larger NFC angle is preferable in suture annuloplasty BAV repair surgery.
机译:双裂主动脉瓣(BAV)是最常见的先天性心脏病类型,发生在0.5-2%的人口中,阀门只有两种而不是三个正常的尖骨。瓣膜病理学,如主动脉反流和主动脉狭窄,与BAV有关,从而增加了对BAV运动学和几何特征来更好地了解的需求。本研究的目的是探讨非生效的CUSP(NFC)角度在BAV Type-1配置上对阀门结构和血液动力学性能的影响。朝向该目标,提出了比例的参数化流体结构相互作用(FSI)的BAVS建模方法。产生四种FSI模型,其具有120°和180°之间的不同NFC角度。 FSI模拟基于完全耦合的结构和流体动态溶剂,对应于生理值,包括组织的各向异性超弹性行为。模拟角度导致不同的机械行为,例如偏心射流方向,其具有较小的NFC角度的更宽的开口形状,而对于较大的NFC角度,观察到较窄的开口孔,然后观察到增加的射流流速。较小的NFC角度导致NFC在峰间歇率期间较高的浓缩流量剪切应力(FSS),而在舒张区域期间在Raphe区域中发现了更高的最大主要应力。所提出的生物力学模型可以解释BAM的早期失败,NFC角度下降,并提出更大的NFC角度在缝合瓣环成形术BAV修复手术中是优选的。

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