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Counteracting rotor imbalance in a bearingless motor system with feedforward control

机译:通过前馈控制来抵消无轴承电机系统中的转子不平衡

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In standard motor applications, traditional mechanical bearings represent the most economical approach to rotor suspension. However, in certain high performance applications, rotor suspension without bearing contact is either required or highly beneficial. Such applications include very high speed, extreme environment, or limited maintenance access applications. This paper extends upon a novel bearingless motor concept, in which full five-axis levitation and rotation of the rotor is achieved using two motors with opposing conical air-gaps. By leaving the motors' pole-pairs unconnected, different d-axis flux in each pole-pair is created, generating a flux imbalance which creates lateral force. Note this is approach is different than that used in previous bearingless motors, which use separate windings for levitation and rotation. This paper will examine the use of feedforward control to counteract synchronous whirl caused by rotor imbalance. Experimental results will be presented showing the performance of a prototype bearingless system, which was sized for a high speed flywheel energy storage application, with and without feedforward control.
机译:在标准电动机应用中,传统机械轴承代表了转子悬架的最经济方法。但是,在某些高性能应用中,要求不带轴承接触的转子悬架是必需的,或者是非常有益的。这样的应用程序包括非常高的速度,极端的环境或有限的维护访问应用程序。本文扩展了一种新颖的无轴承电动机概念,其中使用两个具有相对的圆锥形气隙的电动机实现了转子的全五轴悬浮和旋转。通过不连接电动机的极对,会在每个极对中产生不同的d轴磁通,从而产生磁通不平衡,从而产生横向力。请注意,此方法与以前的无轴承电机中使用的方法不同,后者使用单独的绕组进行悬浮和旋转。本文将研究使用前馈控制来抵消转子不平衡引起的同步涡动。将给出实验结果,以显示无轴承原型系统的性能,该系统的大小适用于带有和不带有前馈控制的高速飞轮储能应用。

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