首页> 外文期刊>Journal of artificial organs: The official journal of the Japanese Society for Artificial Organs >Development of a thermodynamic control system for the Fontan circulation pulsation device using shape memory alloy fibers
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Development of a thermodynamic control system for the Fontan circulation pulsation device using shape memory alloy fibers

机译:使用形状记忆合金纤维开发用于Fontan循环脉动装置的热力学控制系统

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The Fontan procedure is one of the common surgical treatments for circulatory reconstruction in pediatric patients with congenital heart disease. In Fontan circulation, low pulsatility may induce localized lung ischemia and may impair the development of pulmonary peripheral endothelial cells. To promote pulmonary circulation in Fontan circulation, we have been developing a pediatric pulmonary circulatory pulsation device using shape memory alloy fibers attached from the outside of total cavopulmonary connection. In this study, we developed a new thermal control system for the device and examined its functions. We mounted on the device 16 fibers connected in parallel around an ePTFE graft circumferentially. To provide optimized contraction, we designed the new thermal control system. The system consisted of a thermistor, a pressure sensor, and a regulator that was controlled by the adaptive thermodynamic transfer functions. We monitored the parameters and calculated heat transfer function as well as pressure distribution on the graft surface. Then we examined and compared the dynamic contractile pressure and changes in surface temperature. As a result, by the application of the control based on the new feedback system analysis, the circumferential contractile pressure increased by 35 %. The adaptive thermodynamic regulation was useful for the selection of alternative thresholds of the surface temperature of the graft. The system could achieve effective contraction for the pulsatile flow generation by the device.
机译:Fontan手术是小儿先天性心脏病患者循环重建的常用外科手术方法之一。在Fontan循环中,低搏动性可能会诱发局部肺缺血,并可能损害肺周围内皮细胞的发育。为了促进丰坦循环中的肺循环,我们已经开发了一种小儿肺循环搏动装置,该装置使用从全腔肺连接外部连接的形状记忆合金纤维。在这项研究中,我们为该设备开发了一种新的热控制系统并检查了其功能。我们在设备上安装了16条纤维,这些纤维在ePTFE移植物周围沿周向平行连接。为了提供最佳的收缩,我们设计了新的热控制系统。该系统由一个热敏电阻,一个压力传感器和一个由自适应热力学传递函数控制的调节器组成。我们监测了参数并计算了热传递函数以及移植物表面的压力分布。然后,我们检查并比较了动态收缩压力和表面温度的变化。结果,通过基于新的反馈系统分析的控制应用,周向收缩压力增加了35%。自适应热力学调节可用于选择移植物表面温度的替代阈值。该系统可以通过该装置实现有效的收缩以产生脉动流。

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