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新型分流器Optiflo几何结构与传统全腔静脉肺动脉连接的血流动力学比较。

Haemodynamic comparison of a novel flow-divider Optiflo geometry and a traditional total cavopulmonary connection.

作者信息

Desai Kalpi, Haggerty Christopher M, Kanter Kirk R, Rossignac Jarek, Spray Thomas L, Fogel Mark A, Yoganathan Ajit P

机构信息

Wallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology & Emory University, Atlanta, GA 30332, USA.

出版信息

Interact Cardiovasc Thorac Surg. 2013 Jul;17(1):1-7. doi: 10.1093/icvts/ivt099. Epub 2013 Apr 5.

Abstract

OBJECTIVES

The total cavopulmonary connection (TCPC), the current palliation of choice for single-ventricle heart defects, is typically created with a single cylindrical tunnel or conduit routing inferior vena caval (IVC) flow to the pulmonary arteries. Previous studies have shown the haemodynamic efficiency of the TCPC to be sub-optimal due to the collision of vena caval flow, thus placing an extra energy burden on the single ventricle. The use of a bifurcated graft as the Fontan baffle (i.e. the 'Optiflo') has previously been proposed on the basis of theoretically improved flow efficiency; however, anatomical constraints may limit its effectiveness in some patients.

METHODS

In this study, an alternative approach to flow bifurcation is proposed, where a triangular insert is placed at the distal end of the IVC graft. The proof of concept for this design is demonstrated in two steps: first, determining the optimal insert size at a fixed Fontan graft size through a parametric study; then, characterizing the efficiency as a function of graft size when compared with a TCPC control. TCPC power loss and IVC flow distribution were the primary metrics of interest and were evaluated under both resting and simulated exercise conditions using an in-house computational fluid dynamics solver.

RESULTS

Results demonstrated that there was an optimal insert size that improved efficiency compared with the TCPC. For an 18-mm Fontan baffle, TCPC power loss was 4.1 vs 3.7 mW with the optimal flow-divider. The optimal insert was then scaled up for a 20-mm graft, with a similar reduction in power loss observed. Flow distribution results were inconsistent, based on sensitivity to the placement of the insert within the baffle.

CONCLUSION

This study demonstrated proof of concept that the flow-divider has the potential to reduce power loss and streamline IVC flow through the TCPC. An appropriate size for the insert in proportion to the Fontan baffle size was identified that reduced losses compared with a TCPC control under both resting and simulated exercise flow conditions.

摘要

目的

全腔静脉肺动脉连接术(TCPC)是目前单心室心脏缺陷的首选姑息治疗方法,通常通过单一圆柱形隧道或管道将下腔静脉(IVC)血流引至肺动脉来构建。先前的研究表明,由于腔静脉血流的碰撞,TCPC的血流动力学效率并非最佳,从而给单心室带来额外的能量负担。此前曾基于理论上提高的血流效率提出使用分叉移植物作为Fontan挡板(即“Optiflo”);然而,解剖学限制可能会限制其在某些患者中的有效性。

方法

在本研究中,提出了一种血流分叉的替代方法,即在IVC移植物的远端放置一个三角形插入物。该设计的概念验证分两步进行:首先,通过参数研究确定固定Fontan移植物尺寸下的最佳插入物尺寸;然后,与TCPC对照相比,将效率表征为移植物尺寸的函数。TCPC功率损失和IVC血流分布是主要关注指标,使用内部计算流体动力学求解器在静息和模拟运动条件下进行评估。

结果

结果表明,存在一个最佳插入物尺寸,与TCPC相比可提高效率。对于18毫米的Fontan挡板,TCPC功率损失为4.1毫瓦,而最佳分流器为3.7毫瓦。然后将最佳插入物按比例放大用于20毫米的移植物,观察到功率损失有类似降低。基于对插入物在挡板内位置的敏感性,血流分布结果不一致。

结论

本研究证明了分流器有可能降低功率损失并使IVC血流通过TCPC时更加顺畅的概念。确定了与Fontan挡板尺寸成比例的插入物合适尺寸,与TCPC对照相比,在静息和模拟运动血流条件下均降低了损失。

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