Colacino F M, Arabia M, Danieli G A, Moscato F, Nicosia S, Piedimonte F, Valigi P, Pagnottelli S
Department of Mechanical Engineering, University of Calabria, Arcavacata di Rende, Cosenza, Italy.
Int J Artif Organs. 2005 Aug;28(8):817-26.
Hydraulic mock circulatory systems have low flexibility to allow tests of different cardiovascular devices and low precision when a reference model must be reproduced. In this paper a new bench is described. It combines the computer model of the environment in which the device will operate and the electro-hydraulic interfaces by which device and computer are connected. A models library provided with basic functions allows implementing many layouts of the bench, which in turn depend both on the device properties and the desired experiment. In case of an apical LVAD evaluation, the bench can reproduce right and left ventricles, pulmonary and systemic circulations, inlet and outlet LVAD cannulas. An interface forces the instantaneous calculated flow at the VAD input and feeds back the measured pressure to the computer; another interface works in a similar -but complementary- way at the VAD output. The paper focuses on the operating principle of the electro hydraulic interfaces which represent a relevant component of the bench, on the RT-Linux-based software architecture, on the models of the basic elements of the bench. A patent is under preparation. At the moment, only a portion of the bench has been developed. It consists of a piston-cylinder mechanism, which mimics the elastance-based mechanism of a natural ventricle, and a hydraulic circuit representing the arterial load according to a modified windkessel model and the venous return according to the Guyton's model. The pump is driven by a real-time simulation of the cardiovascular system. This preliminary layout allowed testing the piston-cylinder mechanism, its control, and the software. This electro-hydraulic interface has been used to reproduce a pulsatile pump working in different modes. The hybrid model approach can support the development of new cardiac assist devices from their computer model to their manufacture.
液压模拟循环系统在允许测试不同心血管设备方面灵活性较低,并且在必须重现参考模型时精度也较低。本文描述了一种新的试验台。它将设备运行环境的计算机模型与设备和计算机连接的电液接口结合在一起。一个具备基本功能的模型库允许实现试验台的多种布局,而这些布局又取决于设备特性和期望的实验。在评估心尖左心室辅助装置(LVAD)时,该试验台可以重现右心室和左心室、肺循环和体循环、LVAD的进出口插管。一个接口强制在VAD输入处计算瞬时流量,并将测量的压力反馈给计算机;另一个接口在VAD输出处以类似但互补的方式工作。本文重点关注作为试验台相关组件的电液接口的工作原理、基于RT-Linux的软件架构以及试验台基本元件的模型。一项专利正在申请中。目前,仅试验台的一部分已开发出来。它由一个活塞-气缸机构组成,该机构模仿天然心室基于弹性的机制,以及一个液压回路,该回路根据改进的风箱模型表示动脉负荷,并根据盖顿模型表示静脉回流。泵由心血管系统的实时模拟驱动。这种初步布局允许测试活塞-气缸机构、其控制和软件。这种电液接口已用于重现以不同模式工作的脉动泵。混合模型方法可以支持新型心脏辅助设备从计算机模型到制造的开发。