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Characteristic effect of wall elasticity on flow instability and wall shear stress of a full-scale, patient-specific aneurysm model in the middle cerebral artery: An experimental approach

机译:脑中动脉瘤全尺寸患者特异性动脉瘤模型的室壁弹性对流动不稳定性和室壁剪切应力的特征影响:一种实验方法

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摘要

The mechanisms underlying the growth and rupture of aneurysms are poorly understood. Although the wall shear stress (WSS) in elastic aneurysm models is examined using fluid-structure interaction (FSI) simulations, it has not been sufficiently validated using experimental modalities, such as particle image velocimetry (PIV) or phase contrast magnetic resonance imaging (PC-MRI). In this study, we investigated pulsatile flow in an elastic, image-based, patient-specific cerebral aneurysm model using PIV. The phantom model was carefully fabricated using a specialized technique by silicone elastomer. We explored the hemodynamics of the WSS and the kinetic energy cascade (KEC) in the elastic model compared with a rigid model, at the apex of the bifurcation of the middle cerebral artery (MCA) in vitro. The effects of elasticity on the WSS, WSS gradient (WSSG), and tensile strength of the aneurysm wall were also investigated, in addition to the effect of wall elasticity on the KEC compared to a rigid wall. Although the WSSG around the stagnation point had a large positive value, there was no difference between the two models. In particular, wall elasticity suppressed the WSS magnitude around the stagnation point and attenuated the KEC (i.e., the flow fluctuation). Future studies examining KEC frequency and WSS characteristics in a phantom model should consider assessing elasticity. nbsp; nbsp;Published under an exclusive license by AIP Publishing.
机译:动脉瘤生长和破裂的潜在机制知之甚少。尽管使用流固耦合 (FSI) 模拟检查了弹性动脉瘤模型中的壁剪应力 (WSS),但尚未使用粒子图像测速 (PIV) 或相差磁共振成像 (PC-MRI) 等实验模式进行充分验证。在这项研究中,我们使用 PIV 研究了弹性、基于图像、患者特异性脑动脉瘤模型中的脉动血流。模型是使用有机硅弹性体的特殊技术精心制作的。我们探索了弹性模型中与刚性模型相比,在大脑中动脉 (MCA) 分叉顶点的弹性模型中 WSS 和动能级联 (KEC) 的血流动力学。此外,还研究了弹性对动脉瘤壁WSS、WSS梯度(WSSG)和抗拉强度的影响,以及与刚性壁相比,壁弹性对KEC的影响。尽管停滞点附近的WSSG具有较大的正值,但两种模型之间没有差异。特别是,壁面弹性抑制了停滞点附近的WSS幅度,并减弱了KEC(即流动波动)。未来在模型中检查KEC频率和WSS特性的研究应考虑评估弹性。由 AIP Publishing 独家许可发布。

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