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Design and Analysis of a Bearingless Permanent-Magnet Motor for Axial Blood Pump Applications

机译:轴向泵浦应用无轴承永磁电动机的设计与分析

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摘要

Because of their high power density and compact size, permanent-magnet (PM) motors have been commonly used to drive rotary blood pumps (RBPs), which are focused on the treatment of end-stage heart failure or as the bridge to a heart transplant. In this paper, a bearingless PM motor has been proposed for axial blood pump applications. The finite-element method (FEM) is used to predict the electromagnetic characteristics of the designed motor with improved performance. Two topologies are investigated, namely the integral-slot and distributed-windings method and the fractional-slot and double-layer concentrated windings method. Both motors are analyzed and optimized. FEM reveals that, compared with the integral-slot motor, the fractional-slot motor offers significantly enhanced performance, including reduced cogging torque, improved back electromotive force (back EMF), and decreased magnetic flux leakage. Finally, hydraulic experiments have been conducted in a mock-circulation loop to validate the feasibility of the designed motor for an axial blood pump. The results show that the fractional-slot bearingless PM motor can drive the RBP to produce physiological blood flow with reasonable efficiency.
机译:由于它们的高功率密度和紧凑的尺寸,永磁体(PM)电机通常用于驱动旋转血液泵(RBPS),其重点是终端心力衰竭或作为心脏移植桥的桥梁。本文已经提出了一种用于轴向血液泵应用的无轴承PM电动机。有限元法(FEM)用于预测设计电动机的电磁特性,具有改进的性能。研究了两个拓扑,即积分槽和分布式绕组方法和分数槽和双层浓缩绕组方法。两种电机都分析并优化。 FEM显示,与整体槽电机相比,分数槽电机提供显着增强的性能,包括减少的齿槽扭矩,改进的背部电动势(反EMF),降低磁通量泄漏。最后,在模拟循环回路中进行了液压实验,以验证设计电动机用于轴向血液泵的可行性。结果表明,分数槽无形的PM电动机可以驱动RBP以产生合理效率的生理血流。

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