Asama Junichi, Shinshi Tadahiko, Hoshi Hideo, Takatani Setsuo, Shimokohbe Akira
Tokyo Institute of Technology, Precision and Intelligence Laboratory, Yokohama, Japan.
Artif Organs. 2007 Apr;31(4):301-11. doi: 10.1111/j.1525-1594.2007.00378.x.
Centrifugal blood pumps that employ hybrid active/passive magnetic bearings to support noncontact impellers have been developed in order to reduce bearing wear, pump size, the power consumption of the active magnetic bearing, and blood trauma. However, estimates made at the design stage of the vibration of the impeller in the direction of passive suspension during pump operation were inaccurate, because the influence of both the pumping fluid and the rotation of the impeller on the dynamic characteristics was not fully recognized. The purpose of this study is to investigate the dynamic characteristics in a fluid of a magnetically levitated rotating impeller by measuring both the frequency response to sinusoidal excitation of the housing over a wide frequency range and the displacement due to input of a pulsatile flow during left ventricular (LV) assist. The excitation tests were conducted under conditions in which the impeller was levitated in either air or water, and with or without rotation. The experimental and analytical results indicate that vibration of the impeller due to the external force in water was decreased, compared with that in air due to the hydraulic force of water. The axial resonant frequency rose quadratically with rotational speed, and the tilt mode had two resonant frequencies while rotating due to the gyroscopic effect. With the pump inserted into a mock systemic circulatory loop, the dynamic stability of the impeller when pulsatile pressure was applied during LV assist was verified experimentally. The amplitudes of vibration in response to the pulsatile flow in the passively constrained directions were considerably smaller in size than the dimensions of initial gaps between the impeller and the pump housing.
为了减少轴承磨损、泵的尺寸、主动磁轴承的功耗以及血液损伤,已经开发出了采用混合主动/被动磁轴承来支撑非接触式叶轮的离心血泵。然而,在泵运行期间,在设计阶段对叶轮在被动悬浮方向上的振动所做的估计并不准确,因为泵送流体和叶轮旋转对动态特性的影响尚未得到充分认识。本研究的目的是通过在宽频率范围内测量泵壳对正弦激励的频率响应以及在左心室(LV)辅助期间脉动流输入引起的位移,来研究磁悬浮旋转叶轮在流体中的动态特性。激励测试是在叶轮在空气或水中悬浮且有或没有旋转的条件下进行的。实验和分析结果表明,与在空气中相比,由于水的水力作用,水中叶轮因外力引起的振动减小。轴向共振频率随转速呈二次方上升,并且由于陀螺效应,倾斜模式在旋转时有两个共振频率。将泵插入模拟体循环回路中,实验验证了在LV辅助期间施加脉动压力时叶轮的动态稳定性。在被动约束方向上,响应脉动流的振动幅度大大小于叶轮与泵壳之间初始间隙的尺寸。