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Numerical Simulation of Magnetic Resonance Angiographies of an Anatomically Realistic Stenotic Carotid Bifurcation

机译:解剖上逼真的狭窄颈动脉分叉的磁共振血管造影的数值模拟

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Magnetic Resonance Angiography (MRA) has become a routine imaging modality for the clinical evaluation of obstructive vascular disease. However, complex circulatory flow patterns, which redistribute the Magnetic Resonance (MR) signal in a complicated way, may generate flow artifacts and impair image quality. Numerical simulation of MRAs is a useful tool to study the mechanisms of artifactual signal production. The present study proposes a new approach to perform such simulations, applicable to complex anatomically realistic vascular geometries. Both the Navier-Stokes and the Bloch equations are solved on the same mesh to obtain the distribution of modulus and phase of the magnetization. The simulated angiography is subsequently constructed by a simple geometric procedure mapping the physical plane into the MRA image plane. Steady bidimensional numerical simulations of MRAs of an anatomically realistic severely stenotic carotid artery bifurcation are presented, for both time-of-flight and contrast-enhanced imaging modalities. These simulations are validated by qualitative comparison with flow phantom experiments performed under comparable conditions.
机译:磁共振血管造影(MRA)已成为用于阻塞性血管疾病临床评估的常规成像方法。但是,复杂的循环流模式会以复杂的方式重新分布磁共振(MR)信号,可能会产生流伪影并损害图像质量。 MRA的数值模拟是研究人为信号产生机制的有用工具。本研究提出了一种新的方法来执行这种模拟,适用于复杂的解剖学现实的血管几何形状。 Navier-Stokes方程和Bloch方程都在同一网格上求解,以获得磁化强度的模量和相位分布。随后,通过简单的几何程序将物理平面映射到MRA图像平面,从而构建模拟血管造影。对于飞行时间和对比度增强的成像方式,提出了解剖学上严重的狭窄颈动脉分叉的MRA的稳态二维数值模拟。通过在可比条件下进行的流幻影实验的定性比较,验证了这些模拟。

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