Vibration Instability of a Rotor in Axial-Field Permanent Magnet Motors with a Foundation Movement

IF 2.9 3区 工程技术 Q2 MECHANICS International Journal of Applied Mechanics Pub Date : 2023-10-14 DOI:10.1142/s1758825124500042
Chunhua Xia, Shiyu Wang, Jixiang Wang, Zhenhang Wei
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Abstract

This paper investigates the effects of a foundation movement on the vibration instability of axial-field permanent magnet motors (AFPMM). Different from previous studies focusing on the effects of the rotor’s rotation on its vibration instability, this paper introduces a revolution around a space axis as the foundation movement and investigates its effect on the vibration characteristics of the rotor. For an annular rotor with this foundation movement and a rotation around an axis passing through its own geometrical center, a dynamic model is established in this paper. Magnet-field-synchronous frame is introduced to describe the out-of-plane displacement. Hamilton’s principle and Galerkin method are involved to obtain dynamic mode. Closed-form expressions of eigenvalues and the boundaries of flutter and divergent instabilities are determined. The analytical results claim that the instabilities can be suppressed. Particularly, the divergent instabilities can even be eliminated by adjusting combinations of parameters. To verify the results, the stability analyses and numerical calculations regarding the revolution are given for a sample AFPMM revolving around a space axis at different speeds. Based on these analytical boundaries, the unstable regions of a sample motor with different parameter combinations are plotted in terms of foundation movement, which can be used to suppress the vibration instabilities with the design of parameters such as rotation speed, web thickness, magnetization thickness, air-gap length and remanence. Six states of instabilities are summarized as a guidance to determine the range of the stable operation of the motor.
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具有基础运动的轴向磁场永磁电机转子的振动不稳定性
本文研究了地基运动对轴向磁场永磁电机振动失稳的影响。与以往研究转子旋转对其振动不稳定性的影响不同,本文引入绕空间轴旋转作为基础运动,研究其对转子振动特性的影响。本文针对具有这种基础运动的环形转子,通过其自身几何中心绕轴旋转,建立了其动力学模型。引入磁场同步框架来描述面外位移。利用哈密顿原理和伽辽金方法获得了动态模态。确定了颤振和发散不稳定性的特征值和边界的封闭表达式。分析结果表明,不稳定性是可以抑制的。特别是,发散性不稳定性甚至可以通过调整参数组合来消除。为了验证这一结果,给出了以不同速度绕空间轴旋转的AFPMM样品的稳定性分析和有关转速的数值计算。在此分析边界的基础上,绘制了不同参数组合下样品电机的基础运动不稳定区域,通过转速、腹板厚度、磁化厚度、气隙长度和剩余物等参数的设计来抑制振动不稳定。总结了六种不稳定状态,作为确定电机稳定运行范围的指导。
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来源期刊
CiteScore
5.80
自引率
11.40%
发文量
116
审稿时长
3 months
期刊介绍: The journal has as its objective the publication and wide electronic dissemination of innovative and consequential research in applied mechanics. IJAM welcomes high-quality original research papers in all aspects of applied mechanics from contributors throughout the world. The journal aims to promote the international exchange of new knowledge and recent development information in all aspects of applied mechanics. In addition to covering the classical branches of applied mechanics, namely solid mechanics, fluid mechanics, thermodynamics, and material science, the journal also encourages contributions from newly emerging areas such as biomechanics, electromechanics, the mechanical behavior of advanced materials, nanomechanics, and many other inter-disciplinary research areas in which the concepts of applied mechanics are extensively applied and developed.
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