• 제목/요약/키워드: 로봇 동역학

검색결과 113건 처리시간 0.022초

모바일 로봇의 경사면 극복 주행 제어를 위한 적응 퍼지 제어기 설계 (Design of adaptive fuzzy controller to overcome a slope of a mobile robot for driving)

  • 박종호;백승준;정길도
    • 한국산학기술학회논문지
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    • 제13권12호
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    • pp.6034-6039
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    • 2012
  • 본 논문에서는 모바일 로봇이 이동함에 있어 경사면을 만났을 경우 이를 극복하여 주행하는 경우가 발생할 수 있는데 이때 모바일 로봇 시스템 자체가 가지고 있는 슬립 문제가 주행을 진행함에 있어서 더욱 심하게 나타날 수 있기에 이를 해결하고 목표점까지의 안전한 직진 주행을 하기위한 모델 적응 퍼지 제어 방법을 기반으로 하는 모바일 로봇의 주행 제어 알고리즘을 제안하고자 한다. 제안하고자 하는 모델 기반 적응 퍼지 제어기의 경우 먼저, 모바일 로봇의 등반 조건을 확인한 후 경사면을 모바일 로봇이 극복 주행을 할 수 있는지를 판단하고 만약 가능하다면 모바일 로봇의 동역학 모델을 포함한 모델 기반 제어기를 설계하여 극복 주행 제어를 하고자 한다. 이러한 경우 모바일 로봇 시스템의 안정성 보장 및 지면 마찰력 그리고 외란 보상 등이 충분히 고려된 제어기 설계가 가능할 것이다. 또한, 설계하고자 하는 제어 기법 중 적응 퍼지 제어 방법의 경우 모바일 로봇의 동특성을 충분히 반영한 모델인 비선형 Non-holonomic 시스템과 모바일 로봇의 슬립 문제 해결 등에 충분히 유용할 것이고 이를 컴퓨터 시뮬레이션을 통해 검증하였다.

비선형시스템 관점으로부터 세포 신호전달경로의 동역학 분석 (Dynamical Analysis of Cellular Signal Transduction Pathways with Nonlinear Systems Perspectives)

  • 김현우;조광현
    • 제어로봇시스템학회논문지
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    • 제10권12호
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    • pp.1155-1163
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    • 2004
  • Extracellular signal-regulated kinase (ERK) signaling pathway is one of the mitogen-activated protein kinase (MAPK) signal transduction pathways. This pathway is known as pivotal in many signaling networks that govern proliferation, differentiation and cell survival. The ERK signaling pathway comprises positive and negative feedback loops, depending on whether the terminal kinase stimulates or inhibits the activation of the initial level. In this paper, we attempt to model the ERK pathway by considering both of the positive and negative feedback mechanisms based on Michaelis-Menten kinetics. In addition, we propose a fraction ratio model based on the mass action law. We first develop a mathematical model of the ERK pathway with fraction ratios. Secondly, we analyze the dynamical properties of the fraction ratio model based on simulation studies. Furthermore, we propose a concept of an inhibitor, catalyst, and substrate (ICS) controller which regulates the inhibitor, catalyst, and substrate concentrations of the ERK signal transduction pathway. The ICS controller can be designed through dynamical analysis of the ERK signaling transduction pathway within limited concentration ranges.

변형체-강체 다물체 해석을 이용한 초중량물 핸들링로봇의 평가 (Estimation on Heavy Handling Robot using Flexible-Rigid Multibody Analysis)

  • 김진광;고해주;박기범;김태규;정윤교
    • 한국정밀공학회지
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    • 제27권4호
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    • pp.46-52
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    • 2010
  • A flexible-rigid multibody analysis was pen armed to examine the dynamic response of a heavy handling robot system under a worst motion scenario. A rigid body dynamics analysis was solved and compared with flexible-rigid multibody analysis. The modal analysis and test were also carried out to establish the accuracy and the validation of the finite element model used in this paper. For the flexible-rigid multibody simulation, stresses in several major bodies were interested, so that those parts are flexible and other parts are modeled as rigid body in order to reduce computer resources.

동역학 해석을 통한 송전선로 검사로봇 프레임 설계에 관한 연구 (Dynamic Stiffness Design of Inspection Robot Frame Using Multi-body Dynamic Simulation)

  • 이준영;김문영;임지윤;김창환;임홍재
    • 한국소음진동공학회논문집
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    • 제25권3호
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    • pp.169-175
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    • 2015
  • This study aims to improve the dynamic stiffness of an inspection robot frame to prevent derailment from transmission lines. Finite element models for the transmission lines and robot frame are developed for the multi-body dynamic simulation. Natural frequency analysis was conducted using the FE models. Three types of spacer damper clamps installed on 4-conductor transmission lines are used to evaluate the derailment of the robot. Multi-body dynamic simulations with FE models are demonstrated for sub-span oscillation. When the robot operates, derailment of inspection robot from the transmission lines is determined because of resonance. To prevent the resonance, body position was changed and thickness optimization was conducted. The results show that derailment was not occurred because of the natural frequency improvement.

곡선주행 실시간 주행성 분석을 위한 스키드 차량의 동역학 모델링 (A Dynamic Modeling of 6×6 Skid Type Vehicle for Real Time Traversability Analysis over Curved Driving Path)

  • 주상현;이지홍
    • 제어로봇시스템학회논문지
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    • 제18권4호
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    • pp.359-364
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    • 2012
  • Real-Time Traversability should be analyzed from the equiped sensors' data in real time for autonomous outdoor navigation. However, it is difficult to find out such traversability that considers the terrain roughness and the vehicle dynamics especially in case of skid type vehicle. The traversability based on real time dynamic analysis was proposed to solve such problem but in navigation with strait driving path. To adapt the method into the navigation with curved driving path, a path following controller should be incorporated into the dynamic model even though it cause the real time problem. In this paper, a dynamic model is proposed to solve the real time problem in the traversability analysis based on real time dynamic simualtion. The dynamic model contains the control dummy which is connected to the vehicle body with a universal joint to follow the curved path without controller. Simulation and experimental results on $6{\times}6$ articulated unmanned ground vehicle demonstrate the method's effectiveness and applicability into the traversability analysis on terrain with bumps.

대형 패널 이송 로봇에 사용되는 타이밍벨트 구동계의 모델링 (Modeling of a Timing-Belt Drive System Used in a Large-Scale Panel-Handling Robot)

  • 조은임;임성수
    • 한국정밀공학회지
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    • 제30권9호
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    • pp.915-921
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    • 2013
  • Most of large scale solar panel handling robots adopt the timing-belt drive system for its driveline because of the simplicity and the easiness of implementation. The vibration caused by the flexure of the timing belt would increase as the size and the weight of the panel that the robot handles increase and the vibration would deteriorate the precision and/or productivity of the whole robot system. For the development of a proper control system and for the improvement of the design of the robot it is important to estimate the oscillatory response of the robot system including the flexible drive system properly. In this paper a flexible multi-body dynamics model of a large-scale solar-panel-handling robot with the flexible timing-belt drive system is developed using a generic multi-body dynamics analysis program, RecurDyn.

로봇 매니퓨레이터의 강건한 적응 슬라이딩 모드제어 (On the Robust Adaptive Sliding Mode Control of Robot Manipulators)

  • 배준경
    • 전자공학회논문지SC
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    • 제38권6호
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    • pp.28-36
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    • 2001
  • 피드-포워드 보상부분과 불연속 제어 부분으로 구성되는 강건한 적응 슬라이딩 모드 로봇제어 알고리즘을 유도하였다. 미지의 매개변수는 실시간으로 추정되는 매개변수를 포함하는 그룹과 실시간으로 추정하지 않는 매개변수를 포함하는 그룹으로 나누어진다. 그런 다음 외란 및 실시간으로 추정하지 않는 매개변수에서의 불확실성 효과를 보상하기 위해 슬라이딩 제어 항이 토크 입력에 포함된다. 또한 매니퓨레이터 동역학 구조의 효율적인 이용으로 인하여 알고리즘은 계산이 간단하다. 매개변수 불확실성과 외부 외란의 존재에도 불구하고 제어기는 대국적 점근적으로 안정하며 추적오차가 영에 수렴함을 보여준다.

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슬라이딩 모드 제어기를 이용한 이족로봇의 강건제어 (Robust Control of Biped Robot Using Sliding Mode Controller)

  • 박인규;김진걸
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2000년도 추계학술대회논문집A
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    • pp.576-583
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    • 2000
  • A robust position control using a sliding mode controller is adopted for the stable dynamic walking of the biped. For the biped robot that is modeled with 14 degrees of freedom rigid bodies using the method of the multibody dynamics, the joint angles for simulation are obtained by the velocity transformation matrix using the given Cartesian foot and trunk trajectories. Hertz force model and Hysteresis damping element which is used in explanation of the energy dissipation during contact with ground are used for modeling of the ground reactions during the simulation. By the obtained that forces which contains highly confused noise elements and the system modeling uncertainties of various kinds such as unmodeled dynamics and parameter inaccuracies, the biped system will be unstable. For that problems, we are adopting a nonlinear robust control using a sliding mode controller. Under the assumption that the esimation error on the unknown parameters is bounded by a given function, that controller provides a successful way to preserve stability and achieve good performance, despite the presence of strong modeling imprecisions or uncertainties.

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이족보행로봇을 위한 슬라이딩 제어기 설계 (Sliding Mode Controller Design for Biped Robot)

  • 박인규;김진걸;김기식
    • 한국정밀공학회지
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    • 제18권5호
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    • pp.137-146
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    • 2001
  • A robust controller with the sliding mode is proposed for stable dynamic walking of the biped robot in this paper. For the robot system to be controlled, which is modeled as 14 DOF rigid bodies by the method of multi-body dynamics, the joint angle trajectories are determined by the velocity transformation matrix. Also Hertz force model and Hysteresis damping element are utilized for the ground reaction and impact forces during the contact with the ground. The biped robot system becomes unstable since those forces contain highly confused noise components and some discontinuity, and modeling uncertainties such as parameter inaccuracies. The sliding mode control is applied to solve above problems. Under the assumption of the bounded estimation errors on the unknown parameters, the proposed controller provides a successful way to achieve the stability and good performance in spite of the presence of modeling imprecisions of uncertainties.

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수중로봇팔의 동역학 모델링과 동적 조작도 해석 (Dynamic Modeling and Manipulability Analysis of Underwater Robotic Arms)

  • 전봉환;이지홍;이판묵
    • 제어로봇시스템학회논문지
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    • 제11권8호
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    • pp.688-695
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    • 2005
  • This paper describes dynamic manipulability analysis of robotic arms moving in viscous fluid. The manipulability is a functionality of manipulator system in a given configuration under the limits of joint ability with respect to the task required to be performed. To investigate the manipulability of underwater robotic arms, a modeling and analysis method is presented. The dynamic equation of motion of underwater manipulator is derived based on the Lagrange-Euler equation considering with the hydrodynamic forces caused by added mass, buoyancy and hydraulic drag. The hydrodynamic drag term in the equation is established as analytical form using Denavit-Hartenberg (D-H) link coordination of manipulator. Two analytical approaches based oil manipulability ellipsoid are presented to visualize the manipulability of robotic arm moving in viscous fluid. The one is scaled ellipsoid which transforms the boundary of joint torque to acceleration boundary of end-effector by normalizing the torques in joint space, while the other is shifted ellipsoid which depicts total acceleration boundary of end-effector by shifting the ellipsoid as much as gravity and velocity dependent forces in work space. An analysis example of 2-link manipulator with proposed analysis scheme is presented to validate the method.