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首页> 外文期刊>Flow, turbulence and combustion >High Resolution Simulation of Diastolic Left Ventricular Hemodynamics Guided by Four-Dimensional Flow Magnetic Resonance Imaging Data
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High Resolution Simulation of Diastolic Left Ventricular Hemodynamics Guided by Four-Dimensional Flow Magnetic Resonance Imaging Data

机译:四维流动磁共振成像数据引导的高分辨率模拟舒张左心室血流动力学

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摘要

We investigate the diastolic hemodynamics in a patient-specific left ventricle (LV) of a healthy subject using four dimensional flow magnetic resonance imaging (4D-Flow MRI) measurement and numerical simulation. From four dimensional Cardiac Magnetic Resonance (CMR) Imaging data, the kinematics of the endocardium is reconstructed. The endocardial kinematics and the time varying velocity distribution from 4D-Flow MRI at the mitral orifice are prescribed as boundary conditions for the numerical simulation. Both 4D-Flow MRI data and numerical results show the classical formation of the mitral vortex ring (MVR) during E-wave filling. The in-vivo data reveals that a large three-dimensional vortex structure forms near in the mid-level region of LV during diastasis (mid-level vortex). This mid-level vortex is formed simultaneously with the MVR and has not been reported in the literature. Quantitative comparison shows that the computed kinetic energy (KE) evolves in a similar manner to one derived from 4D-Flow MRI data during early E-wave filling. Both computational and measurement data show that the peak KE at E-wave is approximately 8 mJ. Our results suggest that numerical simulation can be used to provide useful hemodynamic data given the inputs from 4D-Flow MRI, which is now available in clinical practice. However, further investigation is needed to understand the formation mechanism of the mid-level vortex and its implication on the end-diastolic flow pattern.
机译:我们使用四维流量磁共振成像(4D流动MRI)测量和数值模拟,研究健康受试者的患者特异性左心室(LV)中的舒张性血流动力学。从四维心脏磁共振(CMR)成像数据,重建心内膜的运动学。在二尖瓣孔口4D流动MRI的心内膜运动学和时变速分布被规定为数值模拟的边界条件。 4D流动MRI数据和数值结果都显示了在E波填充过程中二尖瓣涡旋环(MVR)的经典形成。体内数据显示,在DiaSsisis(中级涡旋)期间,LV中级区域附近的大型三维涡旋结构形成。该中间级涡旋与MVR同时形成,并未在文献中报道。定量比较表明,计算的动能(Ke)以与早期E波填充期间从4D流动MRI数据的一个类似的方式演变。计算和测量数据都显示e-wave的峰值ke大约是8 mj。我们的结果表明,数值模拟可用于提供有用的血流动力学数据,给出来自4D-Flow MRI的输入,现在可以在临床实践中提供。然而,需要进一步调查以了解中级涡流的形成机制及其对末端舒张流流动模式的含义。

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