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Compensation of rotor imbalance for precision rotation of a planar magnetic bearing rotor

机译:平面磁轴承转子精确旋转的转子不平衡补偿

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摘要

Magnetic bearings provide an alternative for achieving precision rotation. But the rotational accuracy is sensitive to rotor imbalance. The system we study is a planar rotor supported by aerostatic suspension and positioned by a radial magnetic bearing of nanometer precision. We present compensation designs and experiment results for precision rotation about the geometric center and the mass center, respectively. In the former case, the base harmonic component at each sensor output is removed by explicit trigonometric compensation signals that are constructed in real time. In the latter case, a new double-loop compensation design is given. Each compensation loop is similar to that in the former case. The compensation, aided by a variable rotational speed that is changed up and down repeatedly, is shown to push the rotational center to approach the mass center. Once the mass center is reached, the rotor remains to rotate about the mass center at variable rotational speed without transient. Compared with the existing methods, which find the mass center or inertial axis at a fixed rotational speed and rely on exact values of plant parameters, our method may locate the mass center more accurately. Experiment data indicate that the mass center is located with an error of tens of nanometers.
机译:磁性轴承为实现精确旋转提供了一种选择。但是旋转精度对转子不平衡很敏感。我们研究的系统是由气动悬架支撑并由纳米精度的径向磁轴承定位的平面转子。我们介绍了分别围绕几何中心和质心进行精确旋转的补偿设计和实验结果。在前一种情况下,通过实时构造的显式三角补偿信号消除了每个传感器输出处的基波谐波分量。在后一种情况下,给出了新的双环补偿设计。每个补偿回路与前一种情况相似。补偿在反复旋转的可变转速的辅助下被显示为推动旋转中心接近质量中心。一旦达到质心,转子保持绕质心以可变的转速旋转而没有瞬变。与现有方法相比,该方法可以在固定转速下找到质心或惯性轴,并依赖于工厂参数的精确值,因此,本方法可以更精确地定位质心。实验数据表明,重心的位置误差为几十纳米。

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