• Title/Summary/Keyword: Magnetic levitator

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Linearized Modeling and Variable Position Control of Magnetic Levitator Using DSP (선형화 기법을 사용한 자기부유기 모델링과 DSP기반 가변 위치 제어)

  • 김정재;송승호
    • The Transactions of the Korean Institute of Power Electronics
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    • v.9 no.2
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    • pp.158-162
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    • 2004
  • The magnetic levitator is the device which can float a magnetic material at the midair by electromagnetic force and it's principle can be applied to the high speed magnetic bearing or magnetic levitation train. There are many difficulties to control, because the magnetic levitator is basically a nonlinear and unstable system. In this paper, this system is modeled assuming that it is a linear system nearby an operating point, and a proportional and derivative(PD) position controller is designed to carry out the variable position control. The performance of position control response is shown through simulation and experiment. A prototype magnetic levitator is constructed using PWM converter and DSP(Digital Signal Processor) based control board.

A Study on magnetic levitator using electromagnet (전자석을 이용한 자기부유기의 제작 및 실험)

  • Yim, Jeong-Sik;Kim, Jeong-Jae;Song, Seung-Ho
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2003.05b
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    • pp.140-143
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    • 2003
  • 자기부유기는 전자력을 이용해서 쇠구슬을 공중에 떠있게 할 수 있는 장치이다. 본 논문에서는 자기 부유기의 기본 원리와 모델링에 관해 소개하고, 디지털 신호처리와 PWM전력변환기를 사용한 자기 부유기를 직접 제작하고 실험을 통해 성능을 검증하였다. 자기부유기의 원리는 고속회전기에 사용되는 자기베어링이나 자기부상 열차의 부상 시스템에 응용될 수 있다. 또한 전기공학 분야의 다양한 교과과정에서 습득한 지식을 활용할 수 있는 학부 프로젝트 실험 주제로 적합하다.

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A Study on the modeling for the control of magnetic levitation stage (자기부상 스테이지의 제어를 위한 모델링에 관한 연구)

  • 남택근;김용주
    • Journal of Advanced Marine Engineering and Technology
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    • v.27 no.7
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    • pp.862-871
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    • 2003
  • In this paper, we addressed a modeling for the magnetic levitation stage. This planar magnetic levitator employs four permanent magnet liner motors. Each motor generates vertical force for suspension against gravity, as well as horizontal force for propulsion. Therefore. this stage can generate six degrees of freedom motion by the combination of forces. We derived a mechanical dynamics equation using Lagrangian method and electromechanical dynamics equation by using Co-energy method. Based on the derived dynamics, we can analyze the stage motion that is subject to the input currents and forces.

A modeling of the magnetic levitation stage and its control

  • Nam, Taek-Kun;Kim, Yong-Joo;Jeon, Jeong-Woo;Lee, Ki-Chang
    • 제어로봇시스템학회:학술대회논문집
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    • 2003.10a
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    • pp.1082-1087
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    • 2003
  • In this paper, we address the development of magnetic levitation positioning system. This planar magnetic levitator employs four permanent magnet liner motors. Each motor generates vertical force for suspension against gravity, as well as horizontal force for drive levitation object called a platen This stage can generate six degrees of freedom motion by the vertical and horizontal force. We derived the mechanical dynamics equation using lagrangian method and used coenergy to express an electromagnetic force. We proposed control algorithm for the position and posture control from its initial value to its desired value using sliding mode control. Some simulation result is provided to verify the effectiveness of the proposed control scheme.

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Modeling of a Magnetic Levitation Stage and its Control (자기부상 스테이지의 모델링과 제어)

  • Yong-Joo, Kim;Jeong-Woo, Jeon;Taek-Kun, Nam
    • Journal of Advanced Marine Engineering and Technology
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    • v.28 no.6
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    • pp.906-915
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    • 2004
  • In this paper, we address the development of magnetic levitation positioning system. This planar magnetic levitator employs four permanent magnet liner motors. Each motor generates vertical force for suspension against gravity, as well as horizontal force for driving levitation object called a platen. This stage can generate six degrees of freedom motion by the vertical and horizontal force. We derived the mechanical dynamics equation using Lagrangian method and used coenergy to express an electromagnetic force. We proposed a control algorithm for the position and posture control from its initial value to its desired value using sliding mode control. Some simulation results are provided to verify the effectiveness of the proposed control scheme.

Nanoscale Dynamics, Stochastic Modeling, and Multivariable Control of a Planar Magnetic Levitator

  • Kim, Won-Jong
    • International Journal of Control, Automation, and Systems
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    • v.1 no.1
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    • pp.1-10
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    • 2003
  • This paper presents a high-precision magnetically levitated (maglev) stage to meet demanding motion specifications in the next-generation precision manufacturing and nanotechnology. Characterization of dynamic behaviors of such a motion stage is a crucial task. In this paper, we address the issues related to the stochastic modeling of the stage including transfer function identification, and noise/disturbance analysis and prediction. Provided are test results on precision dynamics, such as fine settling, effect of optical table oscillation, and position ripple. To deal with the dynamic coupling in the platen, we designed and implemented a multivariable linear quadratic regulator, and performed time-optimal control. We demonstrated how the performance of the current maglev stage can be improved with these analyses and experimental results. The maglev stage operates with positioning noise of 5 nm rms in $\chi$ and y, acceleration capabilities in excess of 2g(20 $m/s^2$), and closed-loop crossover frequency of 100 Hz.