Voigt Oliver, Benkowski Robert J, Morello Gino F
MicroMed Technology, Inc., Houston, TX, USA.
ASAIO J. 2005 Jul-Aug;51(4):321-8. doi: 10.1097/01.mat.0000169118.21639.da.
The MicroMed DeBakey Ventricular Assist Device (MicroMed Technology, Inc., Houston, TX) is a continuous axial flow pump designed for long-term circulatory support. The system received CE approval in 2001 as a bridge to transplantation and in 2004 as an alternative to transplantation. Low volume in the left ventricle or immoderate pump speed may cause ventricular collapse due to excessive suction. Suction causes decreased flow and may result in patient discomfort. Therefore, detection of this critical condition and immediate adaptive control of the device is desired. The purpose of this study is to evaluate and validate system parameters suitable for the reliable detection of suction. In vitro studies have been performed with a mock loop allowing pulsatile and nonpulsatile flow. Evidence of suction is clearly shown by the flow waveform reported by the implanted flow probe of the system. For redundancy to the implanted flow probe, it would be desirable to use the electronic motor signals of the pump for suction detection. The continuously accessible signals are motor current consumption and rotor/impeller speed. The influence of suction on these parameters has been investigated over a wide range of hydrodynamic conditions, and the significance of the respective signals individually or in combination has been explored. The reference signal for this analysis was the flow waveform of the ultrasonic probe. To achieve high reliability under both pulsatile and nonpulsatile conditions, it was determined that motor speed and current should be used concurrently for suction detection. Using the amplified differentiated current and speed signals, a suction-detection algorithm has been optimized, taking into account two different working points, defined by the value of the current input. The safety of this algorithm has been proven in vitro under pulsatile and nonpulsatile conditions over the full spectrum of possible speed and differential pressure variations. The algorithm described herein may be best utilized to provide redundancy to the existing flow based algorithm.
美敦力德巴基心室辅助装置(美敦力科技公司,得克萨斯州休斯顿)是一种连续轴流泵,设计用于长期循环支持。该系统于2001年获得CE认证,作为移植的桥梁,并于2004年作为移植的替代方案。左心室内血量过少或泵速过高可能会因过度抽吸导致心室塌陷。抽吸会导致流量减少,并可能导致患者不适。因此,需要检测这种危急情况并对装置进行即时自适应控制。本研究的目的是评估和验证适用于可靠检测抽吸的系统参数。已使用模拟回路进行体外研究,该回路允许脉动流和非脉动流。系统植入式流量探头报告的流量波形清楚地显示了抽吸的迹象。为了作为植入式流量探头的冗余手段,希望使用泵的电子电机信号进行抽吸检测。可连续获取的信号是电机电流消耗和转子/叶轮速度。已在广泛的流体动力学条件下研究了抽吸对这些参数的影响,并探讨了各个信号单独或组合的意义。该分析的参考信号是超声探头的流量波形。为了在脉动和非脉动条件下均实现高可靠性,确定应同时使用电机速度和电流进行抽吸检测。利用放大的微分电流和速度信号,考虑到由电流输入值定义的两个不同工作点,对抽吸检测算法进行了优化。该算法的安全性已在体外脉动和非脉动条件下,在所有可能的速度和压差变化范围内得到证明。本文所述算法最好用于为现有的基于流量的算法提供冗余。