• 제목/요약/키워드: Motion trajectory

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자유낙하하는 판의 fluttering 특성 연구 (Fluttering Characteristics of Free-falling Plates)

  • 홍슬기;채석봉;김주하
    • 한국가시화정보학회지
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    • 제15권2호
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    • pp.33-40
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    • 2017
  • Abstract In the present study, the characteristics of kinematics and dynamics in the fluttering motion of free-falling plates are investigated at Reynolds number of $10^5$. We record quasi-two-dimensional trajectories of free-falling plates with and without superhydrophobic coating using high-speed camera, and compute the drag and lift forces by trajectory analysis. Translational and angular velocities are modeled as harmonic functions with specific phase differences. In particular, periodic mass elevations near turning points are explained using the suggested models. At each turning point, a sudden drop in lift and a rapid increase in drag occur simultaneously due to fast increase in angle of attack. However, the lift is increased over the buoyancy-corrected weight of plate during gliding flight, resulting in periodic mass elevations near turning points. Superhydrophobicity is shown to increase lift but to reduce drag on a fluttering plate, resulting in the decrease of mean descent speed.

HMM인식기 상에서 방향, 속도 및 공간 특징량에 따른 제스처 인식 성능 비교 ((A Comparison of Gesture Recognition Performance Based on Feature Spaces of Angle, Velocity and Location in HMM Model))

  • 윤호섭;양현승
    • 한국정보과학회논문지:소프트웨어및응용
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    • 제30권5_6호
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    • pp.430-443
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    • 2003
  • 본 논문은 카메라로부터 획득된 영상 시퀀스로부터 얻어진 제스처 궤적 정보를 바탕으로 가장 기본적인 방향, 속도 및 공간 특징을 추출한 후, 각각의 특징 정보들의 인식 결과를 비교하여 어떠한 정보가 가장 유용한지 평가한다. 이를 위해 제스처 궤적 추적을 위해선 컬러 정보 및 모션 정보를 사용하였고, 인식모델로는 시간 데이타 처리에 적합한 HMM을 구성하였다. 실험을 위한 제스처 DB로는 인식하고자 하는 그래픽, 숫자, 알파벳모양의 48개 제스처에 대해 20명으로부터 5개씩 총 4800개의 데이타를 구축하였다.

Analysis of dynamic performance of redundant manipulators using the concept of aspects

  • Chung, W.J.;Chung, W.K.;Youm, Y.
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 1991년도 한국자동제어학술회의논문집(국제학술편); KOEX, Seoul; 22-24 Oct. 1991
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    • pp.1664-1670
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    • 1991
  • For kinematically redundant manipulators, conventional dynamic control methods of local torque optimization showed the instability which resulted in physically unachievable torque requirements. In order to guarantee stability of the null space vector method which resolves redundancy at the acceleration level, Maciejewski[1] analyzed the kinetic behavior of homogeneous solution component and proposed the condition to identify regions of stability and instability for this method. 'In this paper, a modified null space vector method is first presented based on the Maciejewski's condition which is a function of a manipulator's configuration. Secondly, a new control method which is based on the concept of aspects is proposed. It was shown by computer simulations that the modified null space vector method and the proposed method have a common property that a preferred aspect is preserved during the execution of a task. It was also illustrated that both methods demonstrate a drastic reduction of torque loadings at the joints in the tracking motion of a long trajectory when compared with the null space vector method, and thus guarantee the stability of joint torque.

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고고도 발사체용 전기유압식 구동장치시스템 개발 (Development of Electrohydraulic Actuation System for High Altitude Launch Vehicle)

  • 민병주;최형돈;강이석
    • 한국항공우주학회지
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    • 제34권12호
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    • pp.82-89
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    • 2006
  • 본 논문에서는 고도 300 km 이상의 고고도 고진공 우주환경에서 발사체의 피치 및 요방향 자세 및 궤적제어를 추력벡터제어 방식으로 수행하는 전기유압식 구동장치시스템의 개발 결과를 기술한다. 성층권 이하에서 운용하는 저고도 발사체용 전기유압식 구동장치시스템과 비교하여 강화된 개발 요구규격 및 이를 충족시키기 위한 신규 설계 및 제작 기술, 성능 검증을 위한 시험장치의 개발 및 이를 사용한 시험 수행 결과를 본 논문에 요약하였다. 시스템 자체 성능 검증을 위한 시험 및 평가가 성공적으로 완료된 구동장치시스템은 관련 시스템과의 접속 및 통합 적합성 검증 후 KSLV-I 발사체에 탑재될 예정이다.

포텐셜 함수와 슬라이딩 모드 제어기법을 이용한 무인기 군집비행 제어기 설계 (UAV Swarm Flight Control System Design Using Potential Functions and Sliding Mode Control)

  • 한기훈;김유단
    • 한국항공우주학회지
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    • 제36권5호
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    • pp.448-454
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    • 2008
  • 본 논문에서는 포텐셜 함수와 슬라이딩 모드 제어기법을 이용한 행동양식 기반의 분산형 군집비행 제어구조를 제안하였다. 군집비행 행동양식을 위해 각 개체의 상호작용을 포텐셜 함수로 표현하였으며, 군집형태를 유지하며 기준궤적을 추종하기 위해 군집중심점 제어기법을 제안하였다. 시스템의 불확실성과 임무환경에 의한 포텐셜 함수 변화에 대해 강건한 성능을 유지하기 위해 슬라이딩 모드 제어기법을 적용하여 제어기를 구성하고 안정성을 평가하였다. 또한 예상하지 못한 장애물에 대한 군집 회피기동을 위해 비행경로 수정기법을 제시하였다. 수치 시뮬레이션을 통해 제안한 군집비행 제어기법의 성능을 평가하였다.

보행형 이동 로봇의 동적 걸음 계획 (Dynamic Walking Planning for a Legged Moving Machine)

  • 유승환;김정훈;김영배
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2005년도 춘계학술대회 논문집
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    • pp.1780-1783
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    • 2005
  • In this paper ZMP was considered in order to get a walking stability, so the gait in the stable domain was realized through putting the stability margin in the sole domain of a foot. It is assumed that the robot's legs have 12 joints to operate a open-loop drive and there was no external disturbance under walking phases, additionally, the robot is walking on the flat plane. It was observed that the robot's walking trajectory, locus of COM and ZMP after imposing the motion to each joint. For realizing the simulation considering ZMP and movement of mass center, it was checked if it is stable for the constraint robot model to walk in stability and the feasibility was estimated about its dynamic gait. Eventually it was shown that a constraint gait algorithm is able to realize. To verify the proper walking process, ZMP(Zero Moment Point) theory is applied and the simulation has been done by ADAMS.

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양팔 로봇의 협조제어를 위한 최적 경로 설계 (Optimal Trajectory Planning for Cooperative Control of Dual-arm Robot)

  • 박치성;하현욱;이장명
    • 제어로봇시스템학회논문지
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    • 제16권9호
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    • pp.891-897
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    • 2010
  • This paper proposes a cooperative control algorithm for a dual-arms robot which is carrying an object to the desired location. When the dual-arms robot is carrying an object from the start to the goal point, the optimal path in terms of safety, energy, and time needs to be selected among the numerous possible paths. In order to quantify the carrying efficiency of dual-arms, DAMM (Dual Arm Manipulability Measure) has been defined and applied for the decision of the optimal path. The DAMM is defined as the intersection of the manipulability ellipsoids of the dual-arms, while the manipulability measure indicates a relationship between the joint velocity and the Cartesian velocity for each arm. The cost function for achieving the optimal path is defined as the summation of the distance to the goal and inverse of this DAMM, which aims to generate the efficient motion to the goal. It is confirmed that the optimal path planning keeps higher manipulability through the short distance path by using computer simulation. To show the effectiveness of this cooperative control algorithm experimentally, a 5-DOF dual-arm robot with distributed controllers for synchronization control has been developed and used for the experiments.

인공신경망을 이용한 2진 로봇 매니퓰레이터의 역기구학적 해석 (Inverse Kinematic Analysis of a Binary Robot Manipulator using Neural Network)

  • 류길하;정종대
    • 한국정밀공학회지
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    • 제16권1호통권94호
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    • pp.211-218
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    • 1999
  • The traditional robot manipulators are actuated by continuous range of motion actuators such as motors or hydraulic cylinders. However, there are many applications of mechanisms and robotic manipulators where only a finite number of locations need to be reached, and the robot’s trajectory is not important as long as it is bounded. Binary manipulator uses actuators which have only two stable states. As a result, binary manipulators have a finite number of states. The number of states of a binary manipulator grows exponentially with the number of actuators. This kind of robot manipulator has some advantage compared to a traditional one. Feedback control is not required, task repeatability can be very high, and finite state actuators are generally inexpensive. And this kind of robot manipulator has a fault tolerant mechanism because of kinematic redundancy. In this paper, we solve the inverse kinematic problem of a binary parallel robot manipulator using neural network and test the validity of this structure using some arbitrary points m the workspace of the robot manipulator. As a result, we can show that the neural network can find the nearest feasible points and corresponding binary states of the joints of the robot manipulator

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Stability Analysis for the Deployment of Unmanned Surface Vehicles

  • Dharne, Avinash G.;Lee, Jaeyong
    • Journal of Advanced Marine Engineering and Technology
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    • 제39권2호
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    • pp.159-165
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    • 2015
  • Motion control schemes are generally classified into three categories (point stabilization, trajectory tracking, and path following). This paper deals with the problem which is associated with the initial deployment of a group of Unmanned Surface Vehicle (USVs) and corresponding point stabilization. To keep the formation of a group of USVs, it is necessary to set the relationship between each vehicle. A forcing functions such as potential fields are designed to keep the formation and a graph Laplacian is used to represent the connectivity between vehicle. In case of fixed topology of the graph representing the communication between the vehicles, the graph Laplacian is assumed constant. However the graph topologies are allowed to change as the vehicles move, and the system dynamics become discontinuous in nature because the graph Laplacian changes as time passes. To check the stability in the stage of deployment, the system is modeled with Kronecker algebra notation. Filippov's calculus of differential equations with discontinuous right hand sides is then used to formally characterize the behavior of USVs. The stability of the system is analyzed with Lyapunov's stability theory and LaSalle's invariance principle, and the validity is shown by checking the variation of state norm.

이족 보행로봇의 균형추 형태에 따른 안정성 해석 (A Stability Analysis of a Biped Walking Robot about Balancing Weight)

  • 노경곤;김진걸
    • 한국정밀공학회지
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    • 제22권1호
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    • pp.89-96
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    • 2005
  • This paper is concerned with a balancing motion formulation and control of the ZMP (Zero Moment Point) for a biped-walking robot that has a prismatic balancing weight or a revolute balancing weight. The dynamic stability equation of a walking robot which have a prismatic balancing weight is conditionally linear but a walking robot's stability equation with a revolute balancing weight is nonlinear. For a stable gait, stabilization equations of a biped-walking robot are modeled as non-homogeneous second order differential equations for each balancing weight type, and a trajectory of balancing weight can be directly calculated with the FDM (Finite Difference Method) solution of the linearized differential equation. In this paper, the 3dimensional graphic simulator is developed to get and calculate the desired ZMP and the actual ZMP. The operating program is developed for a real biped-walking robot IWRⅢ. Walking of 4 steps will be simulated and experimented with a real biped-walking robot. This balancing system will be applied to a biped humanoid robot, which consist legs and upper body, as a future work.