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Theoretical and Experimental Analysis on the Influence of Rotor Non-Mechanical Errors of the Inductive Transducer in Active Magnetic Bearings

机译:有源电磁轴承中感应传感器转子非机械误差影响的理论和实验分析

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摘要

Inductive transducers are widely applied to active magnetic bearings (AMBs). However, when the rotor rotates at a high speed, the rotor defects will affect the measuring signal (the magnetic field generated by transducer coils) and then reduce the transducer measuring accuracy. The rotor in AMBs is assembled with laminations, which will result in rotor non-mechanical errors. In this paper, rotor non-mechanical errors, including the anisotropic internal permeability and anisotropic surface conductivity, and their influence on double-pole variable-gap inductive transducers are explored in depth. The anisotropic internal permeability will affect the transducer measuring accuracy and bring about 1.3±0.1% measurement error. The anisotropic surface conductivity leads to different eddy currents around the rotor, influences the equivalent reluctance of the magnetic circuit, and then affectsthe transducer measuring accuracy. The experiments prove that rotor non-mechanical errors have a significant influence on transducer measurement accuracy, and the reduction of the transducer excitation frequency can reduce the measurement error and improve the AMB control performance.
机译:感应换能器广泛应用于主动磁轴承(AMB)。但是,当转子高速旋转时,转子缺陷会影响测量信号(换能器线圈产生的磁场),从而降低换能器的测量精度。 AMB中的转子是用叠片组装的,这将导致转子非机械误差。本文深入研究了转子的非机械误差,包括各向异性的内磁导率和各向异性的表面电导率,以及它们对双极变隙感应传感器的影响。各向异性的内部磁导率将影响换能器的测量精度,并导致 1.3 ± 0.1 测量误差。各向异性的表面电导率会导致转子周围不同的涡流,影响磁路的等效磁阻,进而影响换能器的测量精度。实验证明,转子的非机械误差对传感器的测量精度有很大的影响,降低传感器的励磁频率可以减小测量误差,提高AMB的控制性能。

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