Performances of bearingless and sensorless induction motor drive based on mutual inductances and rotor displacements estimation

A self-sensing bearingless motor is considered as an effective solution to reduce cost and shorten a shaft length. In this paper, a novel estimation method of a rotor displacement is proposed. The method is based on the detection of currents induced by mutual inductances, which vary as a function of the rotor displacements. A high-frequency carrier voltage is superimposed on a motor main terminal voltage. The induced carrier-frequency current component is distinguished from the suspension-winding current. The carrier signal is selected high enough to suspension-current components. However, the carrier current is disturbed in transient conditions. The disturbed current results in a vibration of the estimated rotor displacements. A suspension-current estimator is proposed to reduce this vibration and to obtain the difference between the detected current and the estimated current. As a result, the disturbance vibration is significantly reduced. It is shown that a successful magnetic suspension is realized with the proposed method.

[1]  青柳博栄 A PWM Amplifier for Self-sensing Magnetic Bearings , 2002 .

[2]  Yohji Okada,et al.  Self-Sensing Magnetic Bearing Using the Differential Transformer Principle. , 1997 .

[3]  Yohji Okada,et al.  Self-Sensing Control Technique of Self-Bearing Motor , 2004 .

[4]  Seth R. Sanders,et al.  A self-sensing homopolar magnetic bearing: analysis and experimental results , 1999, Conference Record of the 1999 IEEE Industry Applications Conference. Thirty-Forth IAS Annual Meeting (Cat. No.99CH36370).

[5]  T. Kuwajima,et al.  An estimation of the rotor displacements of bearingless motors based on a high frequency equivalent circuits , 2001, 4th IEEE International Conference on Power Electronics and Drive Systems. IEEE PEDS 2001 - Indonesia. Proceedings (Cat. No.01TH8594).

[6]  Kenji Araki,et al.  Stability analysis of self-sensing magnetic bearing controllers , 1996, IEEE Trans. Control. Syst. Technol..

[7]  Akira Chiba,et al.  An analysis of bearingless AC motors , 1994 .