...
首页> 外文期刊>The international journal of artificial organs >Improving arterial pulsatility by feedback control of a continuous flow left ventricular assist device via in silico modeling
【24h】

Improving arterial pulsatility by feedback control of a continuous flow left ventricular assist device via in silico modeling

机译:通过计算机模拟通过对连续流左心室辅助设备的反馈控制来改善动脉搏动

获取原文
获取原文并翻译 | 示例

摘要

Purpose: Continuous flow left ventricular assist devices (CF-LVADs) generally operate at a constant speed, which causes a decrease in pulse pressure and pulsatility in the arteries and allegedly may lead to late complications such as aortic insufficiency and gastrointestinal bleeding. The purpose of this study is to increase the arterial pulse pressure and pulsatility while obtaining more physiological hemodynamic signals, by controlling the CF-LVAD flow rate.Methods: A lumped parameter model was used to simulate the cardiovascular system including the heart chambers, heart valves, systemic and pulmonary arteries and veins. A baroreflex model was used to regulate the heart rate and a model of the Micromed DeBakey CF-LVAD (Micromed Technology, Houston, TX, USA) to simulate the pump dynamics at different operating speeds. A model simulating the flow rate through the aortic valve served as reference model. CF-LVAD operating speed was regulated by applying proportional-integral (PI) control to the pump flow rate. For comparison, the CF-LVAD was also operated at a constant speed, equaling the mean CF-LVAD speed as applied in pulsatile mode.Results: In different operating modes, at the same mean operating speeds, mean pump output, mean arterial pressure, end-systolic and end-diastolic volume and heart rate were the same over the cardiac cycle. However, the arterial pulse pressure and index of pulsatility increased by 50% in the pulsatile CF-LVAD support mode with respect to constant speed pump support.Conclusions: This study shows the possibility of obtaining more physiological pulsatile hemodynamics in the arteries by applying output-driven varying speed control to a CF-LVAD.
机译:目的:连续流左心室辅助设备(CF-LVAD)通常以恒定速度运行,这会导致动脉中脉压和脉动性的降低,并可能导致晚期并发症,例如主动脉瓣关闭不全和胃肠道出血。这项研究的目的是通过控制CF-LVAD流量来增加动脉搏动压力和脉搏,同时获得更多的生理血流动力学信号。方法:采用集总参数模型来模拟包括心腔,心脏瓣膜在内的心血管系统,全身和肺动脉和静脉。使用压力反射模型来调节心率,并使用Micromed DeBakey CF-LVAD(美国德克萨斯州休斯顿的Micromed Technology公司)模型来模拟不同运行速度下的泵动态。模拟通过主动脉瓣的流速的模型用作参考模型。通过对泵流量应用比例积分(PI)控制来调节CF-LVAD的运行速度。为了进行比较,CF-LVAD也以恒定速度运行,等于脉动模式下应用的CF-LVAD平均速度。结果:在不同的运行模式下,相同的平均运行速度,平均泵输出功率,平均动脉压,在整个心动周期中,收缩末期和舒张末期的容积以及心率相同。然而,相对于恒速泵支撑,在脉动CF-LVAD支撑模式下,动脉脉压和搏动指数增加了50%。结论:本研究表明,通过应用输出,可以在动脉中获得更多生理性脉动血流动力学驱动变速控制到CF-LVAD。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号