• Title/Summary/Keyword: Manipulators

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A STUDY OF ROBUST CONTROLLER FOR ROBOT MANIPULATOR (로보트 매니플레이터의 제어를 위한 강인한 적응 제어기의 설계)

  • Park, Kyoung-Hee;Hong, Suk-Kyo
    • Proceedings of the KIEE Conference
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    • 1989.11a
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    • pp.450-455
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    • 1989
  • In this paper we investigate the application to the motion control of n-link robotic manipulators of recently developed stable factorization approach to tracking and disturbance rejection. Given control scheme consists of an approximate "Computed Torque" based upon a simplified model together with additional state feedback and feedforward compensation, and then, nonlinear control gain has more useful than constant control gain to guarantee robustness to parameter uncertainty and external disturbance. At this stage, we design high gain nonlinear state feedback controller and simulate this controller at the SCARA type robot manipulator of two joint.

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A Kinematic Control Method for Redundant Robots in Singular Regions (특이 영역에서의 여유 자유도 로보트의 기구학적 제어 방법)

  • 이준수;서일홍;이준홍;오상록
    • The Transactions of the Korean Institute of Electrical Engineers
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    • v.39 no.6
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    • pp.631-637
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    • 1990
  • It is well-known that the redundancy can be exploited to avoid the singular regions of the redundant manipulators by increasing the manipulability. The method, however, requires excessive energy and gives rather large tracking errors since the manipulability is increased rapidly so that the manipulator avoids the singular region quickly. In this paper, a new method is proposed in which the increasing speed of the manipulability is confined to a certain bound. Therefore, in the proposed method, the movement energy and the tracking errors are reduced. The computer simulation studies are performed to show the validity of the method.

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Redundant Robot Control by Neural Optimization Networks (신경망 최적화 회로에 의한 여유자유도를 갖는 로보트의 제어)

  • 현웅근;서일홍
    • The Transactions of the Korean Institute of Electrical Engineers
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    • v.39 no.6
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    • pp.638-648
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    • 1990
  • An effective resolved motion control method of redundant manipulators is proposed to minimize the energy consumption and to increase the dexterity while satisfying the physical actuator constraints. The method employs the neural optimization networks, where the computation of Jacobian matrix is not required. Specifically, end effector movement resulting from each joint differential motion is first separated into orthogonal and tangential components with respect to a given desired trajectory. Then the resolved motion is obtained by neural optimization networks in such a way that 1) linear combination of the orthogonal components should be null 2) linear combination of the tangential components should be the differential length of the desired trajectory, 3) differential joint motion limit is not violated, and 4) weighted sum of the square of each differential joint motion is minimized. Here the weighting factors are controlled by a newly defined joint dexterity measure as the ratio of the tangential and orthogonal components.

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A Study on the Optimal Control Considering Dynamic Characteristics of Redundant Manipulators (여유자유도 로봇의 동적특성을 고려한 최적 제어에 관한 연구)

  • Lee, Bo-Hyun;Lee, Kee-Seong
    • Proceedings of the KIEE Conference
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    • 2001.11c
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    • pp.103-106
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    • 2001
  • A new control method for a redundant manipulator is developed using a local optimal torque and null space joint velocity. By solving the dynamic control equations of the system, the local optimal torque is obtained. If only the local optimal torque is used for controlling the robot there is a possibility that the system is unstable. To eliminate the characteristics of instability during the movements, the control law with a null space concept is used. The new method is applied to the 3-DOF planar manipulator. The simulation results show the effectiveness of the proposed algorithm.

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Design of a Robust controller of Robot Manipulators (로봇 매니퓰레이터에 대한 강인 제어기 설계)

  • Lee, Young-Chan;Lee, K.W.
    • Proceedings of the KIEE Conference
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    • 2001.11c
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    • pp.99-102
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    • 2001
  • 본 논문에서는 파라미터 불확실성이 유한한 로봇 매니퓰레이터에 대한 비선형 강인 제어기법을 제안한다. 파라미터의 불확실성을 보상하는 강인제어시 발생되는 정강 상태 오차를 개선시키기 위하여 오차 관련 함수에 추종오차의 적분항을 추가시키고 제어입력에 이 적분항이 포함되도록 한다. 설계된 제어시스템의 안정도는 Lyapunov 기법에 의하여 해석한다. 파라미터 불확실성을 가지는 로봇 매니퓰레이터에 대한 컴퓨터 시뮬레이션을 통하여 제안된 기법의 성능을 확인하고 5 링크 2 자 유도의 FARA 로봇에 대한 실험을 통하여 제안된 기법이 실용 로봇제어에 적용될 수 있음을 보이고자 한다.

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Adaptive Output Feedback Position/Force Tracking Control of Robot Manipulators (로봇 매니퓰레이터의 위치/힘 추종을 위한 적응 출력 피드백 제어)

  • Shin, Hyun-Seok;Lee, Geun-Ho;Lee, Sung-Ryul; Park, Chang-Woo;Park, Mignon
    • Proceedings of the KIEE Conference
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    • 2001.11c
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    • pp.197-200
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    • 2001
  • 본 논문에서는 특정한 형태의 제약 즉, 매니퓰레이터의 자유도와 주어진 제약조건의 차원의 차이가 1이며, 매니퓰레이터의 동역학을 작업영역에서의 축차모델로 나타내었을 때, 변환행렬이 단위행렬로 나타나는 제약을 가지는 불확실한 로봇 매니퓰레이터의 위치/힘 추종을 위한 적응제어기를 제안한다. 제안된 제어기는 비선형 좌표변환을 통하여 얻어진 로봇의 축차모델(reduced-order model)을 이용하여 위치제어와 힘제어의 문제를 분리한다. 특히, 비선형 동적 필터를 이용하여 위치의 측정만을 필요로 하며, 적응제어 기법을 통하여 전역 점근적인 안정성을 보장한다.

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A Design of Model-Based Leaming Controller using Artificial Neural Networks (신경회로망을 이용할 모델 기반 학습 제어기의 설계)

  • Roh, C.L.;Kim, Seung-Do;Chung, M.J.
    • Proceedings of the KIEE Conference
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    • 1992.07a
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    • pp.401-403
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    • 1992
  • For the control of robotic manipulators with unknown or uncertain dynamics, leaming control schemes are very effective control schemes for repeated trajectory following tasks. In this class of controllers, control techniques using neural networks have been gaining much attention in recent years.. In this note, we discuss the leaming control techniques using neural networks and propose a new model-based control scheme using multilayered neural networks. Three-layerd neural network is used as a feedback controller to compensate the mismatched terms between model plant and real plant. Computer simulations are performed to show the applicability and the limitation of the proposed controller.

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Hybrid Position/Force Control of Direct Drive Robots by Disturbance Observer in Task Coordinate Space. (외란 오브저버에의한 작업좌표공간에서의 다이렉트 드라이브 로보트의 위치와 힘의 하이브리드 제어)

  • Shin, Jeong-Ho;Komada, Satoshi;Ishida, Muneaki;Hori, Takamasa
    • Proceedings of the KIEE Conference
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    • 1992.07a
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    • pp.411-413
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    • 1992
  • This paper proposes a simple and high performance hybrid position/force control of robots based on disturbance compensation by using the disturbance observer in task coordinate space. The disturbance observer linealizes system of robot manipulators in task coordinate space and realizes acceleration control. To realize the strict acceleration control, the disturbance observer whose input is a position signal by simple computation, works as if it were a disturbance detector. The inverse kinematics can be simplified, because the disturbance observer in task coordinate space compensates not only the disturbance but also the error due to the simplification of the inverse kinematics. The new strategy is applied to a three-degrees-of freedom direct drive robot. The robust and simple hybrid position/force control is realized experimentally.

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Robust Linear Tracking Controller Design for Manipulators Using Only Position Measurements (각도 측정치만을 이용한 로봇을 위한 강인한 제어기 설계)

  • Choi, Han-Ho;Yi, Hyung-Kyi;Chung, Myung-Jin
    • Proceedings of the KIEE Conference
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    • 1992.07a
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    • pp.347-350
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    • 1992
  • In this note, we propose a method for designing a robot controller which can suppress the effects of both the model uncertainty and noisy velocity measurements. The controller is an output feedback compensator of which the constant gains are given in terms of a Riccati equation and a Lyapunov equation. The controller guarantees not only uniform boundedness but uniform ultimate boundedness. The stability result is local but the region can be arbitrarily enlarged at the expense of large control gain. The control law needs neither the exact knowledge of the physical robot parameters nor clean velocity measurements.

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Research of Stable Grasping for Handling Tasks in Field Robot

  • Park, Kyung-Taek;Kim, Sung-Su;Yang, Soon-Yong;Lee, Byung-Rong;Ahn, Kyoung-Kwan;Han, Hyun-Yong
    • 제어로봇시스템학회:학술대회논문집
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    • 2001.10a
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    • pp.132.6-132
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    • 2001
  • This paper aims to derive a mathematical model of the dynamics of handling tasks in field robot which stable grasping and manipulates a rigid object with some dexterity. Firstly, a set of differential equation describing dynamics of the manipulators and object together with geometric constraint of tight area-contacts is formulated by Lagrange equation. Secondly, problems of controlling both the internal force and the rotation angle of the grasped object under the constraints of area-contacts of tight area-contacts are discussed. The effect of geometric constraints of area-contacts on motion of the overall system is analyzed and a method of computer simulation for overall system of differential-algebraic equations is presented. Thirdly, simulation results are shown and the effects of geometric constraints of area-contact is discussed.

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