• Title/Summary/Keyword: 슬라이딩 평면 설계

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Fuzzy sliding mode controller design using the reaching velocity to sliding surface (슬라이딩 평면 도달 속도를 이용한 퍼지 슬라이딩 모드 제어기 설계)

  • Lee, Chung-Woo;Chung, Chung-Choo
    • Proceedings of the KIEE Conference
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    • 2005.07d
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    • pp.2474-2476
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    • 2005
  • 본 논문에서는 슬라이딩 평면에 도달 조건을 이용하여 균일한 계단 반응을 얻을 수 있는 퍼지 슬라이딩 모드 제어기 설계방법을 제시한다. 슬라이딩 평면에 도달할 조건을 퍼지 논리로 설계하여 과도한 입력이 플랜트에 가해지지 않도록 비선형 제어기를 설계한다. 슬라이딩 평면 도달 속도의 가변 조건을 퍼지화 하여 퍼지슬라이딩 모드 제어기를 설계한다. 각각의 제어기에 대하여 고주파 공진이 있는 2차 강성 모델에 대하여 모의 실험을 실시하여 그 특성을 비교하였다.

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A Design of Global Optimal Sliding Mode Controller for Discrete-Time Linear Systems (이산시간 선형 시스템에 대한 전역 최적 슬라이딩 제어기 설계)

  • Lee, Jae-Young;Park, Jin-Bae;Choi, Yoon-Ho
    • Proceedings of the KIEE Conference
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    • 2008.10b
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    • pp.435-436
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    • 2008
  • 본 논문에서는 궤적이 슬라이딩 평면 밖에 있는 경우에 대해서도 LQ 성능을 보장하는 최적 슬라이딩 모드 제어기 설계 방법을 제안한다. 본 논문에서 제안한 방법에서는 슬라이딩 평면상에 있을 경우뿐만 아니라 슬라이딩 평면 밖에서도 LQ 성능을 보장하기 위해 최적 슬라이딩 평면을 이용하며 제어기에 슬라이딩 변수에 선형적으로 의존하는 항을 추가한다. 또한 제어기의 강인성을 위해 본 논문에서 제안된 새로운 외란 추정기법을 제어기와 결합한다. 마지막으로 컴퓨터 모의 실험을 통해 본 논문에서 제안한 제어기 설계 방법의 효율성을 검증하고자 한다.

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Design of a Discrete time Sliding mode controller Using a Pole-Placement (극 배치를 이용한 이산시간 슬라이딩 모드 제어기의 설계)

  • Chae, Su-Kyoung;Choi, Jae-Mo;Chung, Chung-Choo
    • Proceedings of the KIEE Conference
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    • 2003.07d
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    • pp.2182-2186
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    • 2003
  • 본 논문은 원하는 슬라이딩모드의 고유값을 얻을 수 있도록 하고 슬라이딩 평면에 수렴하는 속도를 결정하는 이산시간 슬라이딩 모드 제어기를 설계하는 방법을 제시한다. 기존에 연속시간에서만 적용되어졌던 Ackermann의 공식을 이산시간에서 슬라이딩 평면과 선형제어기를 설계 하는데 사용함으로써 원하는 폐루프의 고유값을 얻을 수 있도륵 하였으며 비선형제어기가 선형 제어기로 설계됨으로써 채터링 현상을 줄이도록 하였다. 또한 슬라이딩 평면 근처에 밴드를 도입함으로써 공진의 여기를 최소화하면서 빠른 응답을 갖도록 하였다. 제안된 방법의 효율성을 보여주기 위해 Simulation과 실험결과를 보여줬다.

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A Study on Robust Pole Placement Control Using Sliding Surface based on Neural Network (신경회로망 기반의 슬라이딩 평면을 이용한 강인한 극배치 제어에 관한 연구)

  • Kim, Min-Chan;Park, Seung-Kyu;Wang, Fa-Guang;Kwak, Gun-Pyong
    • Proceedings of the KIEE Conference
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    • 2008.10b
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    • pp.179-180
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    • 2008
  • 본 논문에서는 극배치(pole placement) 제어 시스템의 상태들에 의해서 훈련된 신경 회로망(Neural Network)을 기반으로 새로운 슬라이딩 평면의 설계 기법을 제안한다 훈련된 데이더를 가진 신경 회로망은 배치 제어의 성능을 가지며 새로운 슬라이딩 평면을 설계하는데 사용되어 진다. 그 결과 시스템의 파라미터 불확실성이 존재하더라도 제안된 슬라이딩 평면으로서 슬라이딩 모드 제어의 강인성이 신경회로망을 통한 극배치제어의 성능에 추가되는 것이 가능하다.

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Vibration control of a single-link flexible manipulator using fuzzy- sliding modes (퍼지-슬라이딩 모드를 이용한 단일링크 유연 매니퓰레이터의 진동제어)

  • Choi, Seung-Bok
    • Journal of KSNVE
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    • v.6 no.1
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    • pp.35-44
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    • 1996
  • This paper presents a new type of fuzzy-sliding mode controller for robust tip position control of a single-link flexible manipulator subjected to parameter variations. A sliding mode controller is formulated with an assumption that imposed parameter variations are bounded so that certain deterministic performance can be guaranted. In the design of the sliding mode controller, so called moving sliding surface is adopted to minimize the reaching phase and thus mitigate system sensitivity to the variations. The sliding mode controller is then incorporated with a fuzzy technique to reduce inherently ever-existing chattering which is impediment in position control of flexible manipulators. A set of fuzzy parameters and control rules are obtained from a relation between predetermined sliding surface and representative points in the state space. Computer simulations are undertaken in order to demonstrate superior control performance of the proposed methodology.

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The Sliding Control using Nonlinear Sliding Surfaces (비선형 슬라이딩 평면을 이용한 슬라이딩 제어)

  • Han, Jong-Kil
    • The Journal of the Korea institute of electronic communication sciences
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    • v.7 no.5
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    • pp.1133-1138
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    • 2012
  • In the paper, design of nonlinear sliding surfaces which are based on optimal control is studied, The state trajectory by the input of optimal control was obtained by Frobenius theorem and matrix decomposition method, was set the nonlinear sliding surfaces of the system. The states is maintained to sliding surfaces from initial states. As the result, robustness of the system can be guaranteed throughout an entire response of the system starting form the initial time instance, the uncertainty and external disturbance that can occur during the reaching time is removed, the problem of large control input was solved, and setting the sliding surfaces optimal path was able to reduce the tracking time. The validity of the proposed control scheme is shown in computer simulation for inverted pendulum.

A Study on Robustness Improvement of $H_{\infty}$ Control Using SVM (SVM을 이용한 $H_{\infty}$ 제어의 강인성 향상에 관한 연구)

  • Kim, Min-Chan;Yoon, Seong-Sik;Park, Seung-Kyu;Ahn, Ho-Gyun;Kwak, Gun-Pyong;Yoon, Tae-Sung
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.12 no.2
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    • pp.276-281
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    • 2008
  • This paper proposes a new sliding surface which can have the same dynamics of nominal system based on SVM(Support Vector Machines). The conventional sliding mode control can not have the properties of $H_{\infty}$ controller because its sliding surface has lower order dynamics than the original system. The additional states must be used to solve this problem. However, The sliding surface of this paper can have the dynamics of $H_{\infty}$ control system by using support vector machines without defining any additional dynamic state. By using SVM, the property of $H_{\infty}$ control system can be estimated as a relationship between the states. With this relationship, a new sliding surface can be designed and have $H_{\infty}$ control system properties. As a result, in spite of the parameter uncertainty, the proposed controller can have the same dynamic of nominal system controlled by $H_{\infty}$ controller.

Robust Slewing Control of A Flexible Space Structure using Sliding Surface (슬라이딩 평면을 이용한 유연우주비행체의 강인 선회제어)

  • Kim, Jin Hyeong;Hong, Chang Ho;Seok, Jin Yeong;Bang, Hyo Chung
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.31 no.2
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    • pp.63-71
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    • 2003
  • This paper presents a robust slewing control of a flexible space structure based on sliding surface design. A sliding surface is designed for a single-axis rest-to-rest slewing in view of target angle, target angular velocity, and root monent of the flexible appendage. In comparison with the Lypunov control law, both controllers guarantee the stability and command tracking capabilities for nominal system. It is also shown that the designed control law provides further robustness to internal/external uncertainties. Extending the results of a single-axis maneuver, a sliding mode control law was sought for an arbitrary three-axis maneuver. Quaternion was used to determine the attitude of a space structure and sliding surfaces were designed for each axis, thereby a robust control law was derived considering the coupling effects between each rotational axis during the maneuver. Several numerical examples were demonstrated to show the effectiveness of the designed control law.

Fuzzy Disturbance Observer based Multiple Sliding Surface Control of Nonlinear Systems with Mismatched Disturbance (부정합조건 외란을 갖는 비선형 시스템의 퍼지 외란 관측기 기반 다중 슬라이딩 평면 제어)

  • Lee, Sang-Yun;Seo, Hyungkeun;Hyun, Chang-Ho;Park, Mignon
    • Journal of the Korean Institute of Intelligent Systems
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    • v.24 no.4
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    • pp.385-391
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    • 2014
  • This paper proposes fuzzy disturbance observer based multiple sliding surface control scheme for nonlinear systems with mismatched disturbance. In order to stabilize nonlinear systems with mismatched disturbance, a controller based on multiple sliding surface control scheme is designed. In addition, a fuzzy disturbance observer is used to estimate the disturbance. Using the fuzzy disturbance observer, "explosion of terms" problem and chattering problem were solved. The stability of the proposed control scheme is analyzed by Lyapunov stability theory. For the verification, we apply the proposed method to numerical examples and compare its result with that of the applied nonlinear disturbance observer based sliding mode control.

Design of Time-varying Sliding Surface for Higher-order Uncertain Systems (고차 불확실 시스템을 위한 시변 슬라이딩 평면의 설계)

  • Kim, Ga-Gue;Choi, Bong-Yeol
    • Journal of the Korean Institute of Telematics and Electronics S
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    • v.36S no.6
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    • pp.37-44
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    • 1999
  • In this paper, we present a new sliding surface with a time-varying repeated root for fast and robust tracking of higher-order uncertain systems. The repeated root is moved to target one with stabilizing the closed-loop time-varying system in sliding mode. This initial root is obtained so that shifting distance of the surface may be minimized with respect to an initial error, and the intercept is produced so that the surface may pass the initial error. Under the allowable input, fast shifting of the surface and movement of the repeated root enable the error convergence rate to be increased. The proposed sliding mode control makes the error always remain on the surface from the beginning, and therefore, the system is more insensitive to parameter uncertainties and external disturbances. In simulation, the effectiveness of the proposed method is proved by comparison with the conventional one.

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