Fatouraee Nasser, Amini Amir A
Cardiovascular Image Analysis Laboratory, Washington University Medical Center, St. Louis, MO 63110-1093, USA.
IEEE Trans Med Imaging. 2003 Jun;22(6):699-709. doi: 10.1109/TMI.2003.814786.
Magnetic resonance angiography (MRA) has become an important tool for the clinical evaluation of vascular disease. Flow measurement with phase-contrast (PC) magnetic resonance (MR) imaging provides a powerful method for evaluation of blood velocity information inside vessels. However, image artifacts from complex flow patterns including slow flow, recirculation zone, and pulsatile flow can adversely affect accuracy of results. In this paper, we introduce a new numerical formulation for improving the accuracy of PC velocity fields and corresponding streamlines, based on a physical constraint from fluid dynamics, within a regularization framework. The formulation which makes use of a stream function, automatically enforces continuity constraint of incompressible flow and reconstructs the flow streamlines from PC images. We applied the algorithm to complex MR imaging flow velocities obtained in a flow phantom of an axisymmetric abdominal aortic aneurysm. The algorithm significantly improved streamline results especially inside the recirculation zone, where artifacts are more pronounced. A velocity reconstruction method in primitive variable form is also presented and results are compared with the stream function method. In order to validate flow characteristics derived from PC MR images, we used the FLUENT computational fluid dynamics software package, to simulate flow patterns within the same geometry as our phantom. There was a good agreement between the numerical simulations and recovered PC streamline results. Processed streamlines, in both stream function and primitive variable methods, were more realistic and provided more precise flow patterns than unprocessed PC data. Additionally, the feasibility of the method was demonstrated in the aorta of a normal volunteer.
磁共振血管造影(MRA)已成为临床评估血管疾病的重要工具。利用相位对比(PC)磁共振(MR)成像进行血流测量,为评估血管内的血流速度信息提供了一种强大的方法。然而,包括缓慢血流、再循环区域和脉动血流在内的复杂血流模式产生的图像伪影,可能会对结果的准确性产生不利影响。在本文中,我们基于正则化框架内流体动力学的物理约束,引入了一种新的数值公式,以提高PC速度场和相应流线的准确性。该公式利用流函数,自动强制执行不可压缩流的连续性约束,并从PC图像重建流线。我们将该算法应用于在轴对称腹主动脉瘤血流模型中获得的复杂MR成像血流速度。该算法显著改善了流线结果,尤其是在伪影更明显的再循环区域内。还提出了一种原始变量形式的速度重建方法,并将结果与流函数方法进行了比较。为了验证从PC MR图像导出的血流特性,我们使用FLUENT计算流体动力学软件包,在与我们的模型相同的几何形状内模拟血流模式。数值模拟与恢复的PC流线结果之间有很好的一致性。与未处理的PC数据相比,流函数和原始变量方法处理后的流线更逼真,提供了更精确的血流模式。此外,该方法在正常志愿者的主动脉中也得到了验证。