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A hybrid Windkessel-Womersley model for blood flow in arteries

机译:动脉血流血液流动的混合卷曲indkessel-womersley模型

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A hybrid Windkessel-Womersley (WK-W) coupled mathematical model for the study of pulsatile blood flow in the arterial system is proposed in this article. The model consists of the Windkessel-type proximal and distal compartments connected by a tube to represent the aorta. The blood flow in the aorta is described by the Womersley solution of the simplified Navier-Stokes equations. In addition, we defined a 6-elements Windkessel model (WK6) in which the blood flow in the connecting tube is modeled by the one-dimensional unsteady Bernoulli equation. Both models have been applied and validated using several aortic pressure and flow rate data acquired from different species such as, humans, dogs and pigs. The results have shown that, both models were able to accurately reconstruct arterial input impedance, however, only the WK-W model was able to calculate the radial distribution of the axial velocity in the aorta and consequently the model predicts the time-varying wall shear stress, and frictional pressure drop during the cardiac cycle more accurately. Additionally, the hybrid WK-W model has the capability to predict the pulsed wave velocity, which is also not possible to obtain when using the classical Windkessel models. Moreover, the values of WK-W model parameters have found to fall in the physiologically realistic range of values, therefore it seems that this hybrid model shows a great potential to be used in clinical practice, as well as in the basic cardiovascular mechanics research. (C) 2018 Elsevier Ltd. All rights reserved.
机译:本文提出了一种杂交Windkessel-Womersley(WK-W)用于研究动脉系统脉动血流的耦合数学模型。该模型包括由管连接的挡风玻璃型近端和远端隔室来表示主动脉。主动脉中的血流由简化的Navier-Stokes方程的Womersley解决方案描述。此外,我们定义了一个6元件的Winkessel模型(WK6),其中连接管中的血流由一维不稳定的Bernoulli方程建模。使用来自不同物种的多种主动脉压力和流速数据,如人,狗和猪等多种主动脉压力和流速数据,已经应用和验证了两种模型。结果表明,两种模型都能够精确地重建动脉输入阻抗,然而,只有WK-W型号能够计算主动脉中轴向速度的径向分布,因此模型预测时变壁剪切在心脏周期中的应力和摩擦压降更准确。另外,混合动力WK-W型具有预测脉冲波速度的能力,当使用经典的Windkessel模型时也不可能获得。此外,WK-W型号参数的值已经发现在生理学上的价值范围内下降,因此似乎这种混合模型显示出在临床实践中使用的巨大潜力,以及基本心血管力学研究。 (c)2018年elestvier有限公司保留所有权利。

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