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首页> 外文期刊>Journal of artificial organs: The official journal of the Japanese Society for Artificial Organs >Computational analysis of the three-dimensional hemodynamics of the blood sac in the twin-pulse life-support system.
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Computational analysis of the three-dimensional hemodynamics of the blood sac in the twin-pulse life-support system.

机译:双脉冲寿命支持系统血囊三维血流动力学的计算分析。

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Blood flow in the twin-pulse life-support system (T-PLS) pulsatile blood pump was simulated using a three-dimensional rigid body-fluid-solid interaction model. This model can delineate the blood flow in the T-PLS resulting from operation of a moving actuator. The numerical method used in this study was a commercial finite element package called ADINA. We used a contact and fluid-solid interaction model to compute the blood hemodynamics in the sac. Blood flow is generated by the motion of the actuator, which strongly interacts with the solid material surrounding the blood. To obtain basic bioengineering data on the optimum operation of the T-PLS, we simulated four models in which the actuator moved at different speeds and investigated both the flow pattern and the distribution of shear stress. During the contraction phase, a strong axial flow is observed around the outlet, whereas there is stagnant flow around the inlet. The maximum shear stress in each model depends on the operation mode; however, all four models have similar flow rates. The sinusoidal mode exhibited the lowest maximum shear stress and is thus considered the most efficient of the four operating modes.
机译:使用三维刚体 - 流体 - 固体 - 固体相互作用模型模拟双脉冲寿命支持系统(T-PLS)脉动血液泵的血流。该模型可以描绘由移动致动器的操作产生的T-PLS中的血流。本研究中使用的数值方法是称为Adina的商业有限元件。我们使用了接触和流体固体相互作用模型来计算囊中的血液血流动力学。通过致动器的运动产生血流,该运动与血液周围的固体材料相互作用。为了获得关于T-PL的最佳操作的基本生物工程数据,我们模拟了四种型号,其中致动器以不同的速度移动,并研究了流动模式和剪切应力的分布。在收缩阶段期间,在出口周围观察到强的轴向流动,而入口周围存在滞留。每个模型中的最大剪切应力取决于操作模式;但是,所有四种模型都具有类似的流速。正弦模式表现出最大的最大剪切应力,因此被认为是四种操作模式的最有效。

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