首页> 外文期刊>Journal of Biomechanics >Computational model of the fluid dynamics in systemic-to-pulmonary shunts.
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Computational model of the fluid dynamics in systemic-to-pulmonary shunts.

机译:系统对肺分流中流体动力学的计算模型。

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摘要

A systemic-to-pulmonary shunt is a connection created between the systemic and pulmonary arterial circulations in order to improve pulmonary perfusion in children with congenital heart diseases. Knowledge of the relationship between pressure and flow in this new, surgically created, cardiovascular district may be helpful in the clinical management of these patients, whose survival is critically dependent on the blood flow distribution between the pulmonary and systemic circulations. In this study a group of three-dimensional computational models of the shunt have been investigated under steady-state and pulsatile conditions by means of a finite element analysis. The model is used to quantify the effects of shunt diameter (D), curvature, angle, and pulsatility on the pressure-flow (DeltaP-Q) relationship of the shunt. Size of the shunt is the main regulator of pressure-flow relationship. Innominate arterial diameter and angles of insertion have less influence. Curvature of the shunt results in lower pressure drops. Inertial effects can be neglected. The following simplified formulae are derived: DeltaP=(0. 097Q+0.521Q(2))/D(4) and DeltaP=(0.096Q+0.393Q(2))/D(4) for the different shunt geometries investigated (straight and curved shunts, respectively).
机译:系统性至肺部分流是在系统性循环与肺动脉循环之间建立的连接,以改善先天性心脏病患儿的肺灌注。了解这种由外科手术创建的新的心血管区域中的压力与流量之间的关系可能有助于这些患者的临床管理,这些患者的生存严重依赖于肺与体循环之间的血流分布。在这项研究中,通过有限元分析,研究了在稳态和脉动条件下的一组三维分流计算模型。该模型用于量化分流器直径(D),曲率,角度和脉动性对分流器压力-流量(DeltaP-Q)关系的影响。分流器的大小是压力-流量关系的主要调节器。无名的动脉直径和插入角度的影响较小。分流器的曲率导致较低的压降。惯性作用可以忽略。得出以下简化公式:对于研究的不同分流几何形状,DeltaP =(0。097Q + 0.521Q(2))/ D(4)和DeltaP =(0.096Q + 0.393Q(2))/ D(4)(分别为直线分流器和弯曲分流器)。

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