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Evaluation of an asymmetric stent patch design for a patient specific intracranial aneurysm using Computational Fluid Dynamic (CFD) calculations in the Computed Tomography (CT) derived lumen

机译:使用计算机断层扫描(CT)得出的内腔中的计算流体动力学(CFD)计算评估患者特定颅内动脉瘤的不对称支架贴片设计

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摘要

Stenting may provide a new, less invasive therapeutic option for cerebral aneurysms. However, a conventional porous stent may be insufficient in modifying the blood flow for clinical aneurysms. We designed an asymmetric stent consisting of a low porosity patch welded onto a porous stent for an anterior cerebral artery aneurysm of a specific patient geometry to block the strong inflow jet. To evaluate the effect of the patch on aneurysmal flow dynamics, we “virtually” implanted it into the patient's aneurysm geometry and performed Computational Fluid Dynamics (CFD) analysis. The patch was computationally deformed to fit into the vessel lumen segmented from the patient CT reconstructions. After the flow calculations, a patch with the same design was fabricated using laser cutting techniques and welded onto a commercial porous stent, creating a patient-specific asymmetric stent. This stent was implanted into a phantom, which was imaged with X-ray angiography. The hemodynamics of untreated and stented aneurysms were compared both computationally and experimentally. It was found from CFD of the patient aneurysm that the asymmetric stent effectively blocked the strong inflow jet into the aneurysm and eliminated the flow impingement on the aneurysm wall at the dome. The impact zone with elevated wall shear stress was eliminated, the aneurysmal flow activity was substantially reduced, and the flow was considerably reduced. Experimental observations corresponded well qualitatively with the CFD results. The demonstrated asymmetric stent could lead to a new minimally invasive image guided intervention to reduce aneurysm growth and rupture.
机译:支架置入术可以为脑动脉瘤提供一种新的,侵入性较小的治疗选择。然而,常规的多孔支架可能不足以改变临床动脉瘤的血流。我们设计了一种不对称支架,该支架由低孔隙率的补片组成,该补片焊接在用于特定患者几何形状的脑前动脉瘤的多孔支架上,以阻挡强力的射流。为了评估该贴剂对动脉瘤流动动力学的影响,我们“虚拟地”将其植入患者的动脉瘤几何形状,并进行了计算流体动力学(CFD)分析。该贴片在计算上发生了变形,以适合从患者CT重建中分割出的血管腔。经过流量计算后,使用激光切割技术制作了具有相同设计的贴片,并将其焊接在商用多孔支架上,从而创建了针对患者的不对称支架。将该支架植入到体模中,用X射线血管造影术对其进行成像。在计算和实验上比较了未经治疗和支架动脉瘤的血流动力学。从患者动脉瘤的CFD中发现,不对称支架有效地阻塞了流入动脉瘤的强力射流,并消除了穹顶处对动脉瘤壁的流动冲击。消除了具有增加的壁剪切应力的冲击区,动脉瘤的流动活动显着降低,并且流动显着降低。实验观察在质量上与CFD结果吻合良好。证实的不对称支架可导致新的微创图像引导干预,以减少动脉瘤的生长和破裂。

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