Faculty of Medicine, University of Freiburg, Freiburg, Germany.
Research & Development, Xenios AG, Heilbronn, Germany.
Artif Organs. 2021 May;45(5):506-515. doi: 10.1111/aor.13859. Epub 2020 Dec 22.
Cannulas with multi-staged side holes are the method of choice for femoral cannulation in extracorporeal therapies today. A variety of differently designed products is available on the market. While the preferred tool for the performance assessment of such cannulas are pressure-flow curves, little is known about the flow and velocity distribution. Within this work flow and velocity patterns of a femoral venous cannula with multi-staged side holes were investigated. A mock circulation loop for cannula performance evaluation was built and reproduced using a computer-aided design system. With computational fluid dynamics, volume flows and fluid velocities were determined quantitatively and visually with hole-based precision. In order to ensure the correctness of the flow simulation, the results were subsequently validated by determining the same parameters with four-dimensional flow-sensitive magnetic resonance imaging. Measurement data and numerical solution differed 7% on average throughout the data set for the examined parameters. The highest inflow and velocity were detected at the most proximal holes, where half of the total volume flow enters the cannula. At every hole stage a Y-shaped inflow profile was detected, forming a centered stream in the middle of the cannula. Simultaneously, flow separation creates zones with significant lower flow velocities. Numerical simulation, validated with four-dimensional flow-sensitive magnetic resonance imaging, is a valuable tool to examine flow and velocity distributions of femoral venous cannulas with hole-based accuracy. Flow and velocity distribution in such cannulas are not ideal. Based on this work future cannulas can be effectively optimized.
带有多阶段侧孔的插管是目前体外治疗中股静脉插管的首选方法。市场上有各种不同设计的产品。虽然压力-流量曲线是评估此类插管性能的首选工具,但对流量和速度分布的了解甚少。在这项工作中,研究了一种带有多阶段侧孔的股静脉插管的流动和速度模式。建立了一个用于插管性能评估的模拟循环回路,并使用计算机辅助设计系统进行了复制。通过计算流体动力学,以基于孔的精度定量和直观地确定体积流量和流体速度。为了确保流模拟的正确性,随后通过使用四维流动敏感磁共振成像来确定相同的参数来验证结果。在整个检查参数的数据集上,测量数据和数值解的差异平均为 7%。在最靠近的孔处检测到最高的流入速度,其中一半的总体积流量进入插管。在每个孔阶段,都检测到 Y 形流入轮廓,在插管的中间形成一个中心流。同时,流动分离会产生流速明显较低的区域。经四维流动敏感磁共振成像验证的数值模拟是一种检查股静脉插管基于孔的准确性的流动和速度分布的有价值的工具。这种插管中的流动和速度分布并不理想。基于这项工作,未来的插管可以进行有效的优化。