首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >An Insight into the Mechanistic Role of the Common Carotid Artery on the Hemodynamics at the Carotid Bifurcation
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An Insight into the Mechanistic Role of the Common Carotid Artery on the Hemodynamics at the Carotid Bifurcation

机译:常见的颈动脉对颈动脉分叉处血流动力学的机械作用的见解。

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The rationale for this study lies in the well-known predilection for vascular disease of the carotid bifurcation, attributed to an altered shear stress distribution at the luminal surface and mitigated by helical fluid structures establishing inside the bifurcation. Here we investigate the mechanistic role played by the common carotid artery (CCA) in promoting complex intravascular flow and in influencing the hemodynamics at the distal carotid bifurcation. Fifty-five image-based computational hemodynamic models of eleven right carotid geometries were reconstructed from its brachiocephalic origin to above the bifurcation to assess how five different CCA reconstruction length affects intravascular fluid structures entering the bifurcation. A quantitative description of helical flow is adopted, in parallel to the description of disturbed shear at the bifurcation luminal surface. Our findings support the hypothesis that helical flow in CCA might reduce the likelihood of flow disturbances at the bifurcation. This confirms the physiological role of CCA in transporting and enforcing helical flow structures into the bifurcation, giving further contribution to the helicity-driven suppression of disturbed shear. A quantitative analysis of CCA geometry highlights the beneficial effect of proximal CCA curvature on helical flow and shows the complex interlacement among CCA geometry, helical flow, and disturbed shear at the bifurcation. Since helicity-based descriptors and geometric descriptors relative to the bifurcation have been shown to be significant predictors of disturbed shear, in principle they may be augmented by factors related to CCA geometry and hemodynamics.
机译:这项研究的基本原理是众所周知的颈动脉分叉血管疾病的偏爱,这归因于管腔表面剪切应力分布的改变,并且通过在分叉内部建立的螺旋流体结构减轻了压力。在这里,我们研究了颈总动脉(CCA)在促进复杂的血管内血流和影响颈总动脉远端分流的血流动力学中所发挥的机械作用。从头臂肱动脉起源到分叉上方,重建了11个右颈动脉几何结构的基于图像的55个计算血流动力学模型,以评估五种不同的CCA重建长度如何影响进入分叉的血管内流体结构。螺旋流的定量描述与分叉腔表面剪切剪切的描述平行。我们的发现支持以下假设:CCA中的螺旋流可减少分叉处的流扰动可能性。这证实了CCA在将螺旋流结构传输和加强到分叉中的生理作用,从而进一步促进了由螺旋度驱动的干扰剪切的抑制。对CCA几何形状的定量分析突出了近端CCA曲率对螺旋流动的有益影响,并显示了CCA几何形状,螺旋流动和分叉处的扰动剪切之间的复杂交错。由于相对于分叉的基于螺旋度的描述符和几何描述符已显示为扰动剪切的重要预测因子,因此原则上它们可能会因与CCA几何形状和血液动力学有关的因素而增加。

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