Colacino Francesco Maria, Moscato Francesco, Piedimonte Fabio, Danieli Guido, Nicosia Salvatore, Arabia Maurizio
Department of Mechanical Engineering, University of Calabria, Rende, Italy.
ASAIO J. 2008 Nov-Dec;54(6):563-73. doi: 10.1097/MAT.0b013e31818a5c93.
This article describes an elastance-based mock ventricle able to reproduce the correct ventricular pressure-volume relationship and its correct interaction with the hydraulic circuit connected to it. A real-time control of the mock ventricle was obtained by a new left ventricular mathematical model including resistive and inductive terms added to the classical Suga-Sagawa elastance model throughout the whole cardiac cycle. A valved piston pump was used to mimic the left ventricle. The pressure measured into the pump chamber was fed back into the mathematical model and the calculated reference left ventricular volume was used to drive the piston. Results show that the classical model is very sensitive to pressure disturbances, especially during the filling phase, while the modified model is able to filter out the oscillations thus eliminating their detrimental effects. The presented model is thus suitable to control mock ventricles in real-time, where sudden pressure disturbances represent a key issue and are not negligible. This real-time controlled mock ventricle is able to reproduce the elastance mechanism of a natural ventricle by mimicking its preload (mean atrial pressure) and afterload (mean aortic pressure) sensitivity, i.e., the Starling law. Therefore, it can be used for designing and testing cardiovascular prostheses due to its capability to reproduce the correct ventricle-vascular system interaction.
本文介绍了一种基于弹性的模拟心室,它能够再现正确的心室压力-容积关系及其与所连接液压回路的正确相互作用。通过一个新的左心室数学模型实现对模拟心室的实时控制,该模型在整个心动周期中,在经典的Suga-Sagawa弹性模型基础上增加了电阻和电感项。使用带瓣膜的活塞泵来模拟左心室。泵腔内测得的压力反馈到数学模型中,计算出的左心室参考容积用于驱动活塞。结果表明,经典模型对压力干扰非常敏感,尤其是在充盈期,而改进后的模型能够滤除振荡,从而消除其有害影响。因此,所提出的模型适用于实时控制模拟心室,在这种情况下,突然的压力干扰是一个关键问题且不可忽略。这种实时控制的模拟心室能够通过模拟自然心室的前负荷(平均心房压)和后负荷(平均主动脉压)敏感性,即斯塔林定律,再现自然心室的弹性机制。因此,由于其能够再现正确的心室-血管系统相互作用,它可用于设计和测试心血管假体。