Annu Int Conf IEEE Eng Med Biol Soc. 2022 Jul;2022:2294-2297. doi: 10.1109/EMBC48229.2022.9871132.
To evaluate the hemocompatibility of individual components of our pediatric left ventricular assist device (LVAD), we proposed a hemocompatibility assessment platform (HAP) with a magnetic levitated bearing system. The HAP consists of a drive system utilizing a brushless direct current (BLDC) motor, passive magnetic bearings (PMB), and an active magnetically levitated bearing (AMB) to reduce the hemolysis generated by HAP itself. In this study, we designed and evaluated the performance of the AMB by measuring radial and axial displacements of the rotor resulting from radially destabilizing forces as well as the performance of the drive system when rotated at increasing speeds to 1,200 rotations per minute (rpm). The results show that, with radial disturbance, the AMB is capable of maintaining axial stability for the BLDC motor system. The AMB can control up to 1,200 rpm without any contact between the rotor and stator. Future work includes geometry optimization for the AMB structure and increase the capability to control stable high-speed rotation for the entire system. Clinical Relevance- This work furthers the development of the magnetic levitated bearing system for a hemocompatibility assessment platform that will be used to enhance and accelerate the development of adult and pediatric LVADs.
为了评估我们儿科左心室辅助装置 (LVAD) 的各个部件的血液相容性,我们提出了一个具有磁悬浮轴承系统的血液相容性评估平台 (HAP)。HAP 由一个利用无刷直流 (BLDC) 电机、无源磁轴承 (PMB) 和主动磁悬浮轴承 (AMB) 的驱动系统组成,以减少 HAP 本身产生的溶血。在这项研究中,我们通过测量由于径向失稳力引起的转子的径向和轴向位移,以及在增加到 1200 转/分钟 (rpm) 的速度下旋转时驱动系统的性能,来设计和评估 AMB 的性能。结果表明,在径向干扰下,AMB 能够为 BLDC 电机系统保持轴向稳定性。AMB 可以控制高达 1200 rpm,而转子和定子之间没有任何接触。未来的工作包括对 AMB 结构进行几何优化,并提高整个系统控制稳定高速旋转的能力。临床意义-这项工作推进了磁悬浮轴承系统在血液相容性评估平台中的发展,该平台将用于增强和加速成人和儿科 LVAD 的开发。