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Structure and coupling analysis of a novel 3-DOF conical magnetic bearing

机译:新型三自由度圆锥形电磁轴承的结构与耦合分析

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This paper deals with the novel structure and coupling analysis of a 3-degrees of freedom (3-DOF) conical magnetic bearing. The conical stators of the bearing are designed symmetrical to provide the axial control exclusively, and the radial stators are separated by nonmagnetic material between X and Y channels, so the magnetic flux path can be separated among different channels. The configuration and working principle of the bearing are provided, and the mathematical model is derived based on the bias and control magnetic circuits. In order to evaluate the degree of force coupling between different channels, the concept of coupling factor is proposed, which is defined as the ratio of force variation caused by coupling to the original force when there is no coupling. The coupling factors are analyzed not only among the translational movement of X, Y and Z channels but also between the translational and rotational degrees of freedom. The calculation results show that although the component coupling factors of each magnetic poles are a little larger, the resultant ones in X, Y and Z directions of the designed bearing are all less than 4%. Therefore, the magnetic forces and torques of different channels are weakly coupled, and it is convenient for the control of the magnetic bearing.
机译:本文研究了三自由度(3-DOF)圆锥形电磁轴承的新颖结构和耦合分析。轴承的圆锥形定子对称设计,仅提供轴向控制,并且径向定子由X和Y通道之间的非磁性材料隔开,因此磁通路径可在不同通道之间分开。提供了轴承的构造和工作原理,并基于偏置和控制磁路推导了数学模型。为了评估不同通道之间的力耦合程度,提出了耦合因子的概念,定义为无耦合时由耦合引起的力变化与原始力的比值。不仅分析了X,Y和Z通道的平移运动之间的耦合因子,而且还分析了平移和旋转自由度之间的耦合因子。计算结果表明,尽管每个磁极的成分耦合系数稍大,但在设计的轴承的X,Y和Z方向上所得的耦合系数均小于4%。因此,不同通道的磁力和转矩耦合较弱,方便了磁力轴承的控制。

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