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Magnetically suspended flywheel in gimbal mount - Test bench design and experimental validation

机译:Gimbal Mount中的磁悬浮飞轮 - 测试台设计与实验验证

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This article deals with the design of a test bench and its dynamic testing. The test bench is composed of a rotor levitated by radial active magnetic bearings and axially by a permanent magnet bearing. The rotor housing is mounted in a passive gimbal and the foundation can translate and rotate to emulate a vehicle accelerating, manoeuvring, and subject to outer perturbations such as waves. The work is motivated by a lack of publically available experimental designs and experimental data for magnetically suspended flywheels on moving foundations. The article will describe the test rig design and subcomponents, present experimental results, and afterwards the test rig will be used to experimentally validate a mathematical model governing the dynamics of the system. It is found that the model successfully captures the dynamics of rotor and housing both in a gimballed and non-gimballed flywheel energy storage system when subject to accelerations of the foundation. The simulated maximum housing accelerations are found to deviate 2% from the experiments while the maximum rotor displacements are found to deviate 37%, but only for rotor displacements larger than 100 mu m where the linear approximation to the magnetic forces is no longer accurate. (C) 2019 Elsevier Ltd. All rights reserved.
机译:本文涉及测试台的设计及其动态测试。测试台由径向主动磁轴承悬浮的转子组成,并且通过永磁轴承轴向轴向构成。转子壳体安装在被动万向节中,并且基础可以转换和旋转以模拟车辆加速,操纵,并且受到诸如波的外部扰动。这项工作是由于缺乏公开的实验设计和在移动基础上的磁悬浮飞轮的实验数据。本文将描述测试钻机设计和子组件,目前的实验结果,之后,试验台将用于通过实验验证管理系统动态的数学模型。发现该模型成功地捕获转子和外壳的动态,包括在基础的加速度时,在Gimballed和非Gimballed飞轮储能系统中捕获。发现模拟的最大壳体加速度从实验中偏离2%,而发现最大转子位移偏离37%,但仅针对转子位移大于100μm的转子位移,其中磁力的线性近似不再精确。 (c)2019 Elsevier Ltd.保留所有权利。

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