• 제목/요약/키워드: Holonomic System

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초음파센서와 RFID 시스템을 이용한 이동로봇의 맵 빌딩에 관한 연구 (A Study on Map Building of Mobile Robot Using RFID Technology and Ultrasonic Sensor)

  • 이도경;임재성;김상봉
    • 제어로봇시스템학회논문지
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    • 제16권3호
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    • pp.239-244
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    • 2010
  • This paper is to present map building of mobile robot using RFID (Radio Frequency Identification) technology and ultrasonic sensor. For mobile robot to perform map building, the mobile robot needs its localization and accurate driving in space. In this reason, firstly, kinematic modeling of mobile robot under non-holonomic constrains is introduced. Secondly, based on this modeling, a tracking controller is designed for tracking a given path based on backstepping method using Lyapunov function. The Lyapunov function is also introduced for proving the stability of the designed tracking controller. Thirdly, 2D map building is performed by RFID system, mobile robot system and ultrasonic sensors. The RFID mobile robot system is composed of DC motor, encoder, ultra sonic sensor, digital compass, RFID receiver and RFID antenna. Finally, the path tracking simulation results and map building experimental results are presented to show the effectiveness of the designed controller.

퍼지 다층 제어기를 이용한 전방향 이동로봇의 추적제어에 관한 연구 (A Study on Tracking Control of Omni-Directional Mobile Robot Using Fuzzy Multi-Layered Controller)

  • 김상대;김승우
    • 한국산학기술학회논문지
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    • 제12권4호
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    • pp.1786-1795
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    • 2011
  • 사람이 생활하는 환경에서 일반적인 휠베이스 이동(Mobility) 방식의 로봇은 장애물에 둘러싸여 로봇의 움직임에 있어 자유로운 주행 제약을 받게 된다. 장애물을 신속하게 회피하려면 회전과정 없이 단순히 좌우 이동만 하면 되는 홀로노믹(Holonomic) 시스템 특성의 이동로봇이 필요하다. 본 논문에서는 세 개의 옴니휠(Omni-Wheels)을 사용한 홀로노믹 이동로봇의 추적제어기를 개발한다. 옴니휠을 이용한 이동로봇은 시스템 파라미터의 불확실성(uncertainty)으로 인하여 선형 제어기로는 추적제어가 매우 어려운 상황이다. 그러므로 강인성이 탁월한 퍼지 제어기를 이용한 퍼지 적응 제어 기법을 설계하여 옴니휠 이동 로봇의 추적제어(tracking control) 성능을 높인다. 본 논문에서 제어 대상 시스템의 매개 변수의 불확실성에 강인한 퍼지 제어기를 병렬로 설계하고 시스템 인식(system identification)을 이용하여 대상 시스템이 특성 변화에 적절히 대처할 수 있는 적합한 퍼지 제어기를 선택한 후 피드백 제어를 실행하는 퍼지 다층 제어기(Fuzzy Multi-Layered Controller) 시스템을 이용한 적응 제어기법을 제시한다. 고전 적응 제어기와 기존 퍼지 적응 제어기의 문제점을 극복한 퍼지 적응 제어기를 도입하여 강인 제어기를 병렬로 설계하고 시스템 인식을 이용하여 대상 시스템의 특성 변화에 적절히 대처할 수 있는 적합한 퍼지 제어기를 선택한 후 피드백 제어를 실행하는 퍼지 다층 제어기(FMLC)를 제시한다.

근사 자코비안 연산자를 이용한 탄성 지지부를 갖는 로봇 시스템의 제어 (Control of Robot System on the Elastic Base by Approximate Jacobian Operators)

  • 이선;이호길;황성호;이세헌
    • 한국정밀공학회지
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    • 제18권10호
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    • pp.45-52
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    • 2001
  • This paper presents a study on the position tracking control of a robot system on the uncertain elastic base. The elastic bathe is a nonholonomic system but it can be changed into holonomic system, which is much easier to analyze, by modeling an elastic base as a virtual robot that has passive joints. Also, Jacobian operators, which represent the overall robot system including base movement, are defined and applied to the changed model. However, because base movements are not known, the exact Jacobian operators can't be estimated. The control algorithm proposed is that uses only Jacobians of a real robot as approximate Jacobian operators. Therefore the approximate Jacobian operators compensate the measured errors from external sensors. The proposed control strategy is evaluated by the simulation and experiment of a single-axis robot system on the elastic base.

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잉여좌표계를 이용한 3-폴 하이브리드형 자기베어링 제어 (Control of a Three-pole Hybrid Active Magnetic Bearing using Redundant Coordinates)

  • 박상현;이종원
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2007년도 추계학술대회논문집
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    • pp.1375-1381
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    • 2007
  • In this paper, we propose a linear modeling and identical PD controller design scheme for the three-pole hybrid-type AMB recently developed in the laboratory, which consists of three permanent magnets, providing bias flux, three Hall diodes, measuring rotor displacements, and ring type permanent magnet bearing, stabilizing in axial and tilting directions. Along the three physical coordinates formed by three poles, we introduce the redundant coordinate system and three identical decoupled controllers to construct linear model. The experiments are also carried out in order to verify the effectiveness of proposed controller in stabilizing the transient and steady state response of rotor.

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휠구동방식의 자유이동로봇을 위한 조향제어방법 (A steering control method for wheel-driven mobile robot)

  • 고경철;조형석
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 1991년도 한국자동제어학술회의논문집(국내학술편); KOEX, Seoul; 22-24 Oct. 1991
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    • pp.787-792
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    • 1991
  • This paper proposes a steering control algorithm for non-holonomic mobile robots. The steering control algorithm is essential to navigate autonomous vehicles which employ comination of the dead reckoning and absolute sensor system such as a machine vison for detecting landmarks in order to estimate the current location of the mobile robot. The proposed algorithm is based on the minimum time BANG-BANG controller and curvature-continuity curve design method. In the BANG-BANG control scheme we introduce velocity/acceleration limiter to avoid any slippage of driving wheels. The proposed scheme is robot-independent and hence can be applied to various kinds of mobile robot or vehicles. To show the effectness of the proposed control algorithm, a series of computer simulations were conducted for two-wheel driven mobile robot.

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다중로보트의 동작결정을 위한 시뮬레이터 구성 (Construction of simulator for cooperative multi-robot motions)

  • 김정찬;김진걸
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 1992년도 한국자동제어학술회의논문집(국내학술편); KOEX, Seoul; 19-21 Oct. 1992
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    • pp.332-336
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    • 1992
  • We describe about the graphic simulation system which supports the determination of efficient multi-robot motions during cooperation. For the construction of the simulation software for multi-robot motions, two problems are presented. First problem is that all the robot motions must be determinded using both the desired object motions and the holonomic constraints with the object. To find the robot motions combined with the various object motion path, the robot motions are derived from the desired object path instead of a master robot path. Therefore robot motions can be easily modifiable with the various object motions. This type of motion determination is different from that of the master-slaves method using the master robot motions. The other is that the developments of robot application softwares need a heavy cost when the participated robots or the tasks given to the robots are changed. Based on object-oriented programming paradigm, we present useful software objects describing robot application programming environment. The object-oriented programming paradigm increases the software reusability, reliability, and extensibility, and also provides the structual concepts to cope with the various demands of robot application programming.

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Analysis and control of the falling cat phenomenon

  • Nakagawa, Takayuki;Sampei, Mitsuji;Kiyota, Hiromitsu
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 1995년도 Proceedings of the Korea Automation Control Conference, 10th (KACC); Seoul, Korea; 23-25 Oct. 1995
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    • pp.472-475
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    • 1995
  • In this paper, we investigate so-called the falling cat problem. It is well known that a cat, when released from an upside down configuration starting from rest, is able to land on her feet without violating angular momentum conservation. This has being an interesting problem for engineers for a long time. We consider a model of a falling cat as connected two rigid columns, which is a nonholonomic system. We design the controller for it, using time- state control form of the model and exact linearization technique. Finally, we test the controller thorough simulation on the model of a falling cat.

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이족로봇의 동적 보행계획과 역동역학 해석 (Dynamic Walking Planning and Inverse Dynamic Analysis of Biped Robot)

  • 박인규;김진걸
    • 한국정밀공학회지
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    • 제17권9호
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    • pp.133-144
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    • 2000
  • The dynamic walking planning and the inverse dynamics of the biped robot is investigated in this paper. The biped robot is modeled with 14 degrees of freedom rigid bodies considering the walking pattern and kinematic construction of humanoid. The method of the computer aided multibody dynamics is applied to the dynamic analysis. The equations of motion of biped are initially represented as terms of the Cartesian corrdinates then they are converted to the minimum number of equations of motion in terms of the joint coordinates using the velocity transformation matrix. For the consideration of the relationships between the ground and foot the holonomic constraints are added or deleted on the equations of motion. the number of these constraints can be changed by types of walking patterns with three modes. In order for the dynamic walking to be stabilizable optimized trunk positions are iteratively determined by satisfying the system ZMP(Zero Moment Point) and ground conditions.

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Turning Dynamics and Equilibrium of Two-Wheeled Vehicles

  • Chen Chih-Keng;Dao Thanh-Son;Yang Chih-Kai
    • Journal of Mechanical Science and Technology
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    • 제19권spc1호
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    • pp.377-387
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    • 2005
  • The equations of motion of two-wheeled vehicles, e.g. bicycles or motorcycles, are developed by using Lagrange's equations for quasi-coordinates. The pure rolling constraints between the ground and the two wheels are considered in the dynamical equations of the system. For each wheel, two nonholonomic and two holonomic constraints are introduced in a set of differential-algebraic equations (DAE). The constraint Jacobian matrix is obtained by collecting all the constraint equations and converting them into the velocity form. Equilibrium, an algorithm for searching for equilibrium points of two-wheeled vehicles and the associated problems are discussed. Formulae for calculating the radii of curvatures of ground-wheel contact paths and the reference point are also given.

이족보행로봇의 동적보행과 역동역학 해석 (Dynamic Walking and Inverse Dynamic Analysis of Biped Walking Robot)

  • 박인규;김진걸
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2000년도 춘계학술대회논문집A
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    • pp.548-555
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    • 2000
  • The dynamic walking and the inverse dynamics of the biped walking robot is investigated in this paper. The biped robot is modeled with 14 degrees of freedom rigid bodies considering the walking pattern and kinematic construction of humanoid. The method of the computer aided multibody dynamics is applied to the dynamic analysis. The equations of motion of biped are initially represented as terms of the Cartesian coordinates, then they are converted to the minimum number of equations of motion in terms of the joint coordinates using the velocity transformation matrix. For the consideration of the relationships between the ground and foot, the holonomic constraints are added or deleted on the equations of motion. The number of these constraints can be changed by types of walking pattern with three modes. In order for the dynamic walking to be stabilizable, optimized trunk positions are iteratively determined by satisfying the system ZMP(Zero Moment Point) and ground conditions.

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