• Title/Summary/Keyword: Robust Observer

Search Result 442, Processing Time 0.033 seconds

Driving Constant Speed of Induction Motor using Disturbance Cancellation Observer (외란상쇄 관측기를 적용한 유도전동기 정속도 운전)

  • Kim Yong-ju;Seo Young-soo
    • Proceedings of the KIPE Conference
    • /
    • 2002.07a
    • /
    • pp.179-182
    • /
    • 2002
  • This Paper described a robust control of an induction motor using a disturbance cancellation observer of a feedforward control, The speed response of conventional Pl controller characteristic is affected by variations of load torque disturbance. Tn the proposed system, the speed control characteristic using a feedforward control isn't affected by a load torque disturbance.

  • PDF

Tough Disturbance Cancellation State Observer of Induction Motor for Disturbance Vibration (외란 변동에 강인한 유도전동기의 외란 상쇄 관측기)

  • Song H.B.;Seo Y.S.
    • Proceedings of the KIPE Conference
    • /
    • 2003.07b
    • /
    • pp.816-819
    • /
    • 2003
  • This paper described a robust control of an induction motor using a disturbance cancellation observer of a feedforward control with Matlab simulink. The speed response of conventional PI controller characteristics is affected by variation of load torque disturbance. In this system, the speed control characteristics using a feedforward control toughen about a load torque disturbance.

  • PDF

Stability Analysis of Visual Servoing with Sliding-mode Estimation and Neural Compensation

  • Yu Wen
    • International Journal of Control, Automation, and Systems
    • /
    • v.4 no.5
    • /
    • pp.545-558
    • /
    • 2006
  • In this paper, PD-like visual servoing is modified in two ways: a sliding-mode observer is applied to estimate the joint velocities, and a RBF neural network is used to compensate the unknown gravity and friction. Based on Lyapunov method and input--to-state stability theory, we prove that PD-like visual servoing with the sliding mode observer and the neuro compensator is robust stable when the gain of the PD controller is bigger than the upper bounds of the uncertainties. Several simulations are presented to support the theory results.

Robust Position Control of One DOF Mechanical Systems Using Dual PIOs Without Velocity Measurement

  • Han, Minsoo;Lee, Cho Won;Yook, Joo-Hyoung;Son, Young Ik
    • Journal of Electrical Engineering and Technology
    • /
    • v.12 no.1
    • /
    • pp.356-362
    • /
    • 2017
  • This paper presents a robust position controller for a one degree-of-freedom (DOF) mechanical system using only position measurement. In order to alleviate the performance degradation owing to various uncertainties, a two-stage design method is studied by employing a proportional integral observer (PIO). In the first stage, a baseline backstepping controller is designed for a nominal system without accounting for uncertainties. The PIO is developed for estimating both the velocity information for the backstepping controller and an equivalent input disturbance for a feedforward compensation using the estimated uncertainty. It is shown that the estimation errors with the proposed PIO can be made arbitrarily small in a finite time. If the system suffers from undesirable actuator nonlinearities, however, it might be necessary to estimate the velocity and the disturbance with different rates of convergence. The proposed method combines the predesigned backstepping controller and dual PIOs to reduce mechanical vibrations as well as steady-state errors. The performance of the proposed method is tested through comparative computer simulations and experiments using a laboratory prototype.

A Robust Output Feedback Control of Robot Manipulators with Integral Action (적분작용을 포함하는 로봇 매니퓰레이터의 출력궤환 강인제어)

  • Shin, Eui-Seok;Lee, Kang-Woong
    • Journal of the Institute of Electronics Engineers of Korea SC
    • /
    • v.37 no.1
    • /
    • pp.1-9
    • /
    • 2000
  • In this paper, we design a robust output feedback controller for robot manipulators with bounded parametric uncertainties using high-gain observer. The proposed control scheme with integral action improves tracking error due to limit of the robust feedback gains. High-gain observer is used to solve the noise problem with the joint velocity measurement. This controller avoids the limitation on the variation of unknown parameters and guarantees the uniformly ultimate boundedness of the closed-loop system. The performance of the proposed method is demonstrated by simulation on a 2-link manipulator.

  • PDF

Adaptive Robust Swing-up and Balancing Control of Acrobot using a Fuzzy Disturbance Observer (퍼지 외란 관측기법을 이용한 아크로봇의 적응형 강인 스윙업 및 밸런싱제어)

  • Jeong, Seongchan;Lee, Sanghyob;Hong, Young-Dae;Chwa, Dongkyoung
    • Journal of Institute of Control, Robotics and Systems
    • /
    • v.22 no.5
    • /
    • pp.346-352
    • /
    • 2016
  • This paper proposes an adaptive robust control method for an acrobot system in the presence of input disturbance. The acrobot system is a typical example of the underactuated system with complex nonlinearity and strong dynamic coupling. Also, disturbance can cause limit cycle phenomenon which appears in the acrobot system around the desired unstable equilibrium point. To minimize the effect of the disturbance, we apply a fuzzy disturbance estimation method for the swing-up and balancing control of the acrobot system. In this paper, both disturbance observer and controller for the acrobot system are designed and verified through mathematical proof and simulations.

Vehicle Lateral Stability Management Using Gain-Scheduled Robust Control

  • You, Seung-Han;Jo, Joon-Sang;Yoo, Seung-Jin;Hahn, Jin-Oh;Lee, Kyo-Il
    • Journal of Mechanical Science and Technology
    • /
    • v.20 no.11
    • /
    • pp.1898-1913
    • /
    • 2006
  • This paper deals with the design of a yaw rate controller based on gain-scheduled H$\infty$ optimal control, which is intended to maintain the lateral stability of a vehicle. Uncertain factors such as vehicle mass and cornering stiffness in the vehicle yaw rate dynamics naturally call for the robustness of the feedback controller and thus H$\infty$ optimization technique is applied to synthesize a controller with guaranteed robust stability and performance against the model uncertainty. In the implementation stage, the feed-forward yaw moment by driver's steer input is estimated by the disturbance observer in order to determine the accurate compensatory moment. Finally, HILS results indicate that the proposed yaw rate controller can satisfactorily improve the lateral stability of an automobile.

Robust Digital Position Control of Brushless DC Motor (외란에 둔감한 브러쉬없는 직류전동기(BLDC Motor)의 디지털 위치제어)

  • 고종선;조관열;윤명중
    • The Transactions of the Korean Institute of Electrical Engineers
    • /
    • v.39 no.1
    • /
    • pp.36-48
    • /
    • 1990
  • A new control method for robust position control of brushless dc motor is presented. The model of brushless dc motor is approximately linearized by field-orentation method, and it is shown that augmented state variable feedback can be applied to this system. In addition, robustness is obtained without any change of overall system response. Load disturbance is detected by 0-observer of unknown and inaccessible input, and is compensated by feedforward which has fast response. Overall system is controlled by using the MC68000 microprocessor, and the performance of the proposed control algorithm is verified by the results of simulation and experiment.

Design of Robust Estimator using Sliding Mode (슬라이딩 모드를 이용한 견실한 추정기설계)

  • Yoon, Byung-Do;Kim, Yoon-Ho;Kim, Choon-Sam;Kim, Chan-Ki;Han, Jae-Hyeok
    • Proceedings of the KIEE Conference
    • /
    • 1993.07b
    • /
    • pp.784-786
    • /
    • 1993
  • Recently, in the industrial applications, the sensorless system is developed, but the sensorless system is required to have robustness for the measurement noise and disturbance. In this paper, for the sensorless system, the method of designing a robust sliding mode observer taking account of the ability of disturbance and noise attenuation is presented. Also, the strategy for the estimation of rotor flux using the sliding mode observer, which is robust to the measurement noise, is described. Robustness are achieved by assigning the pole of the the system during the sliding motion in such a way as to minimize the effects of the disturbances on the rotor flux estimation error. Finally, using worst case desist and LQC(least square error design), the sliding mode absolver is verified by computer simulations.

  • PDF