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Bond Graph Modeling of Mechanical Circulatory Support Device-Cardiovascular System Interactions

机译:机械循环支持装置 - 心血管系统相互作用的键曲线图建模

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摘要

Though mechanical circulatory support (MCS) devices, such as ventricular assist devices and total artificial hearts (TAH), provide heart failure patients with bridges to heart transplantation or are alternatives to transplantation, device performance, and corresponding control strategies are often difficult to evaluate. Difficulties arise due to the complex interaction of multiple domains-i.e., biological, hydraulic, hemodynamics, electromechanical, system dynamics, and controls. In an attempt to organize, integrate and clarify these interactions, a technique often used in hydraulic pump design and robotics, called "bond graph modeling," is applied to describe the performance and functionality of MCS devices and the interaction between the cardiovascular (CV) system and the MCS device. This technical brief demonstrates the advantages of this tool in formulating a model for the systemic circulation interacting with the left side of a TAH, adopting the fundamental structure of either a hydraulic mechanism (i.e., AbioCor/Carmat) or a pneumatic mechanism (i.e., SynCardia), combined with a systemic circulation loop. The model captures the dynamics of the membrane, the hydraulic source or pneumatic source, and the systemic circulation. This multidisciplinary cross-pollination of an analytical tool from the field of dynamic systems may provide important insight to further aid and improve the design and control of future MCS systems.
机译:虽然机械循环支持(MCS)器件(如心室辅助装置和总人造心脏(TAH),但为心脏移植提供心力衰竭患者,或者是移植,装置性能和相应控制策略的替代方案通常难以评估。由于多个域的复杂相互作用 - 即,生物,液压,血流动力学,机电,系统动力学和控制,难以产生困难。在尝试组织,整合和澄清这些相互作用时,应用了一种用于液压泵设计和机器人的技术,称为“键盘图建模”,用于描述MCS器件的性能和功能以及心血管(CV)之间的相互作用系统和MCS设备。该技术简介演示了该工具在配制与TAH左侧相互作用的系统循环模型时的优点,采用液压机构(即,ABIOCOR / CARMAT)或气动机制的基本结构(即,Syscardia ),结合系统循环回路。该模型捕获膜,液压源或气动源的动态,以及系统循环。这种来自动态系统领域的分析工具的多学科交叉授粉可以提供进一步辅助和改善对未来MCS系统的设计和控制的重要洞察力。

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