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Computational fluid dynamic simulations of image-based stented coronary bifurcation models.

机译:基于图像的支架冠状动脉分叉模型的计算流体动力学模拟。

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摘要

One of the relevant phenomenon associated with in-stent restenosis in coronary arteries is an altered haemodynamics in the stented region. Computational fluid dynamics (CFD) offers the possibility to investigate the haemodynamics at a level of detail not always accessible within experimental techniques. CFD can quantify and correlate the local haemodynamics structures which might lead to in-stent restenosis. The aim of this work is to study the fluid dynamics of realistic stented coronary artery models which replicate the complete clinical procedure of stent implantation. Two cases of pathologic left anterior descending coronary arteries with their bifurcations are reconstructed from computed tomography angiography and conventional coronary angiography images. Results of wall shear stress and relative residence time show that the wall regions more prone to the risk of restenosis are located next to stent struts, to the bifurcations and to the stent overlapping zone for both investigated cases. Considering a bulk flow analysis, helical flow structures are generated by the curvature of the zone upstream from the stent and by the bifurcation regions. Helical recirculating microstructures are also visible downstream from the stent struts. This study demonstrates the feasibility to virtually investigate the haemodynamics of patient-specific coronary bifurcation geometries.
机译:与冠状动脉支架内再狭窄相关的相关现象之一是支架区域的血流动力学改变。计算流体动力学(CFD)为研究血液动力学提供了可能性,可以在实验技术中无法始终获得的细节层次上进行研究。 CFD可以量化并关联可能导致支架内再狭窄的局部血流动力学结构。这项工作的目的是研究现实的冠状动脉支架模型的流体动力学,该模型可复制支架植入的完整临床过程。从计算机断层扫描血管造影和常规冠状动脉造影图像中重建出两例病理性左前降支冠状动脉及其分支。壁切应力和相对停留时间的结果表明,对于这两个研究案例,壁区域更容易发生再狭窄的风险位于支架撑杆,分叉和支架重叠区附近。考虑到整体流动分析,螺旋流动结构是由支架上游区域的弯曲和分叉区域产生的。在支架撑杆的下游还可以看到螺旋形的循环微结构。这项研究表明虚拟研究患者特定冠状动脉分叉几何形状的血流动力学的可行性。

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