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体外循环中流量分配取决于流出插管的定位。

Flow distribution during cardiopulmonary bypass in dependency on the outflow cannula positioning.

机构信息

Applied Medical Engineering, Helmholtz Institute, RWTH Aachen University, Aachen, Germany.

出版信息

Artif Organs. 2009 Nov;33(11):988-92. doi: 10.1111/j.1525-1594.2009.00938.x.

Abstract

Oxygen deficiency in the right brain is a common problem during cardiopulmonary bypass (CPB). This is linked to an insufficient perfusion of the carotid and vertebral artery. The flow to these vessels is strongly influenced by the outflow cannula position, which is traditionally located in the ascending aorta. Another approach however is to return blood via the right subclavian artery. A computational fluid dynamics (CFD) study was performed for both methods and validated by particle image velocimetry (PIV). A 3-dimensional computer aided design model of the cardiovascular (CV) system was generated from realtime computed tomography and magnetic resonance imaging data. Mesh generation (CFD) and rapid prototyping (PIV) were used for the further model creation. The simulations were performed assuming usual CPB conditions, and the same boundary conditions were applied for the PIV validation. The flow distribution was analyzed for 55 cannula positions inside the aorta and in relation to the distance between the cannula tip and the vertebral artery branch for subclavian cannulation. The study reveals that the Venturi effect due to the cannula jet appears to be the main reason for the loss in cerebral perfusion seen clinically. It provides a PIV-validated CFD method of analyzing the flow distribution in the CV system and can be transferred to other applications.

摘要

右脑中的缺氧是心肺旁路(CPB)期间的常见问题。这与颈动脉和椎动脉灌注不足有关。这些血管的流量受到流出管腔位置的强烈影响,传统上该位置位于升主动脉中。然而,另一种方法是通过右锁骨下动脉返回血液。对这两种方法都进行了计算流体动力学(CFD)研究,并通过粒子图像测速法(PIV)进行了验证。从实时计算机断层扫描和磁共振成像数据生成心血管(CV)系统的三维计算机辅助设计模型。使用 CFD 进行网格生成和 PIV 进行快速原型制作,以进一步创建模型。模拟是在通常的 CPB 条件下进行的,并且为 PIV 验证应用了相同的边界条件。在主动脉内分析了 55 个管腔位置的血流分布,并与锁骨下插管时管腔尖端和椎动脉分支之间的距离有关。该研究表明,由于管腔射流引起的文丘里效应似乎是临床上观察到的脑灌注损失的主要原因。它提供了一种经过 PIV 验证的 CFD 方法,可用于分析 CV 系统中的血流分布,并可应用于其他应用。

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