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Towards validating stent induced micro flow patterns in left main coronary artery bifurcations

机译:努力验证左主冠状动脉分叉中支架引起的微流型

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We investigated if blood flow changes induced through the presence of a stent could be detected using in vitro dynamically scaled 4D Phase-Contrast Magnetic Resonance Imaging (PC-MRI). Using idealized and patient-specific left main coronary artery bifurcations, we 3D-printed the dynamically large scaled geometries and incorporated them into a flow circuit for non-invasive acquisition with a higher effective spatial resolution. We tested the effects of using non-Newtonian and Newtonian fluids for the experiment. We also numerically simulated the same geometries in true scale for comparison using computational fluid dynamics (CFD). We found that the experimental setup increased the effective spatial resolution enough to reveal stent induced blood flow changes close to the vessel wall. Non-Newtonian fluid replicated all of the flow field well with a strong agreement with the computed flow field (R2 > 0.9). Fine flow structures were not as prominent for the Newtonian compared to non-Newtonian fluid consideration. In the patient-specific geometry, arterial non-planarity increased the difficulty to capture the near wall slow velocity changes. Findings demonstrate the potential to dynamically scale in vitro 4D MRI flow acquisition for micro blood flow considerations.
机译:我们调查了是否可以使用体外动态缩放的4D相衬磁共振成像(PC-MRI)来检测由于存在支架而引起的血流变化。我们使用理想化且针对患者的特定左主冠状动脉分叉术,对3D打印的动态大型几何图形进行了3D打印,并将其合并到流路中,以实现具有更高有效空间分辨率的无创采集。我们在实验中测试了使用非牛顿流体和牛顿流体的效果。我们还使用计算流体动力学(CFD)在真实比例上对相同的几何形状进行了数值模拟,以进行比较。我们发现实验装置增加了有效的空间分辨率,足以揭示支架引起的靠近血管壁的血流变化。非牛顿流体很好地复制了所有流场,并且与计算得到的流场有很强的一致性(R 2 > 0.9)。与非牛顿流体考虑相比,对于牛顿而言,精细的流动结构并不那么突出。在患者特定的几何形状中,动脉的非平面性增加了捕获近壁慢速变化的难度。研究结果表明,出于微血流考虑,可以动态扩展体外4D MRI血流采集的潜力。

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