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基于守恒定律的叶轮-泵模型在与心脏辅助泵耦合的心血管系统模拟中的应用。

Impeller-pump model derived from conservation laws applied to the simulation of the cardiovascular system coupled to heart-assist pumps.

机构信息

School of Engineering, Queen Mary, University of London, UK.

出版信息

Comput Biol Med. 2018 Feb 1;93:127-138. doi: 10.1016/j.compbiomed.2017.12.012. Epub 2017 Dec 22.

Abstract

Previous numerical models of impeller pumps for ventricular assist devices utilize curve-fitted polynomials to simulate experimentally-obtained pressure difference versus flow rate characteristics of the pumps, with pump rotational speed as a parameter. In this paper the numerical model for the pump pressure difference versus flow rate characteristics is obtained by analytic derivation. The mass, energy and angular momentum conservation laws are applied to the working fluid passing through the impeller geometry and coupled with the turbomachine's velocity diagram. This results in the construction of a pressure difference versus flow rate characteristic for the specific pump geometry, with pump rotational speed as parameter. Overall this model allows modifications of the pump geometry, so that the pump avoids undesirable operating conditions, such as regurgitant flow. The HeartMate III centrifugal pump is used as an example to demonstrate the application of the technique. The parameterised numerical model for HeartMate III derived by this technique is coupled with a numerical model for the human cardiovascular system, and the combination is used to investigate the cardiovascular response under different conditions of impeller pump support. Conditions resulting in regurgitant pump flow, the pump resulting in aortic valve closure and taking over completely the pumping action from the diseased heart, and inner ventricular wall suction at pump inlet are predicted by the model. The simulation results suggest that for normal HeartMate III operation the pump speed should be maintained between 3,100 and 4,500 rpm to avoid regurgitant pump flow and ventricular suction. To obtain optimal overall cardiovascular system plus pump response, the pump operating speed should be 3,800 rpm.

摘要

先前用于心室辅助装置的叶轮泵的数值模型利用曲线拟合多项式来模拟泵的实验获得的压差与流量特性,其中泵的转速是一个参数。在本文中,泵的压差与流量特性的数值模型是通过解析推导得到的。质量、能量和角动量守恒定律应用于通过叶轮几何形状的工作流体,并与透平机的速度图相结合。这导致了特定泵几何形状的压差与流量特性的构建,其中泵的转速是参数。总的来说,该模型允许修改泵的几何形状,以使泵避免出现反流等不良工作条件。以 HeartMate III 离心泵为例,演示了该技术的应用。通过该技术为 HeartMate III 推导的参数化数值模型与人体心血管系统的数值模型相结合,用于研究不同叶轮泵支持条件下的心血管反应。模型预测了会导致反流泵流、导致主动脉瓣关闭以及完全接管患病心脏的泵送作用以及泵入口处的心室壁抽吸的条件。模拟结果表明,对于正常的 HeartMate III 操作,应将泵速保持在 3100 到 4500 rpm 之间,以避免反流泵流和心室抽吸。为了获得最佳的整体心血管系统加泵响应,泵的工作速度应为 3800 rpm。

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