• 제목/요약/키워드: 이족보행로봇

검색결과 56건 처리시간 0.028초

이족보행로봇(IWR-III)의 지속적인 몸체 추진을 위한 걸음새 구현 (Gait Implementation of Biped Walking Robot(IWR-III) for continuous trunk motion)

  • 장충렬;최영하;최상호;김진걸
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1998년도 추계학술대회 논문집 학회본부 B
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    • pp.549-551
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    • 1998
  • This paper deals with the new gait implementation of biped walking robot(IWR-III). In the case of using old gait. The trunk should be stopped during the phase changing time. But using new gait, the trunk moves continuously for all walking time. As a result, IWR-III has a walking gait similar to human being, and the motion of balancing joints can be reduced by the trunk ahead effect in the double support phase, moreover, ZMP tracking is improved, therefore the stability of IWR-III is improved. The trajectory is planned with a 5th order spline interpolation and stability of IWR-III is certified with a biped simulator.

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균형점 정형화를 이용한 이족보행로봇 제어 (Control of a Biped Walking Robot using ZMP Formulation)

  • 임선호;김진걸
    • 대한전기학회논문지:전력기술부문A
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    • 제48권8호
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    • pp.1022-1030
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    • 1999
  • This paper is concerned with the balancing motion formulation and the control of ZMP (zero moment point) for a biped walking robot with balancing joints. The balancing equation of a biped robot can be modeled as the second order non-homogeneous differential equation, which makes it possible to plan the desired trajectories for various gaits or motions. Also, the balancing motion can be defined easily by solving the differential equation without pre-processing or heuristic procedures. The actual experiments are performed on biped walking robot system IWR-III, developed in our Automatic Control Lab. The system has the structure of three pitches in each leg, and one roll and one prismatic type in balancing joints. The walking simulations and the experimental results on IWR-III are shown using the proposed formula and control algorithm.

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이족보행로봇(IWR-III)의 통합 저어 환경 구축 (Implementation of Integrated Control Environment for Biped Robot(IWR-III))

  • 노경곤;서영섭;김진걸
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1999년도 하계학술대회 논문집 G
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    • pp.3089-3091
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    • 1999
  • To control IWR-III Biped Waking Robot, those complex modules are necessary that concurrent control multi-axes servo motors, PID & Feedforward gain tuning, initial value calibration, display current status of system, user interface for emergency safety and three-dimensional rendering graphic visualization. It is developed for various-type gait $data^{[1]}$ and for control modes (i.e open/closed loop and pulse/velocity/torque control) that Integrated Control Enviroment with GUI( Graphic User Interface) consist of time-buffered control part using MMC (Multi-Motion Controller) and 3D simulation part using DirectX graphic library.

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이족보행로봇의 걸음세 변화에 관한 최적화 연구 (A Study on the Gait Optimization of a Biped Robot)

  • 노경곤;김진걸
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2003년도 하계학술대회 논문집 D
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    • pp.2405-2407
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    • 2003
  • This study deals with the gait optimization of via points on biped robot. ZMP(Zero Moment Point) is most important index in a biped robot's dynamic walking stability. To stable walking of a biped robot, legs's trajectory and a desired ZMP trajectory is required, balancing weight's movement is solved by FDM(Finite Difference Method). In this study, optimal index is defined to dynamically static walking of a biped robot, and optimization of via points is applied by GA(Genetic Algorithm).

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도립 진자형 이족보행로봇을 위한 안정보행 (Stable Walking for an Inverted Pendulum Type Biped Robot)

  • 강찬수;노경곤;김진걸
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2003년도 학술회의 논문집 정보 및 제어부문 B
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    • pp.456-459
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    • 2003
  • This paper deal with the biped walking stability by inverted pendulum type balancing joints. This model is hard to interpretation for the nonlinearity caused by upper direction movement then conventional model which have roll and prismatic joints. We can interpret this model by a linear approximation or interpolation method. This paper use a linear approximation method that can decide a movement of upper direction. Inverted pendulum type balancing joints have a advantage of less movement for keep stability and similar with human than conventional model and this model can be used for humanoid robot. We can see a stability of biped by ZMP(Zero Moment Point). Genetic algorithm is used for trajectory planning that is important for stable walking of biped.

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허리관절을 가지는 4족보행로봇의 지그재그 걸음새 계획 (Discontinuous Zigzag Gait Planning of Quadruped Walking Robot with an Articulated Spine)

  • 박세훈;하영호;이연정
    • 제어로봇시스템학회논문지
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    • 제10권8호
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    • pp.703-710
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    • 2004
  • This paper presents discontinuous zigzag gait analysis for a newly modeled quadruped walking robot with an articulated spine which connects the front and rear parts of the body. An articulated spine walking robot can move easily from side to side, which is an important feature to guarantee a larger gait stability margin than that of a conventional single rigid-body walking robot. First, we suggest a kinematic modeling of an articulated spine robot which has new parameters such as a waist-joint angle, a rotate angle of a front and rear body and describe characteristics of gait using an articulated spine. Next, we compared the difference of walking motion of newly modeled robot with that of a single rigid-body robot and analyzed the gait of an articulated spine robot using new parameters. On the basis of above result, we proposed a best walking motion with maximum stability margin. To show the effectiveness of proposed gait planning by simulation, firstly the fastest walking motion is identified based on the maximum stride, because the longer the stride, the faster the walking speed. Next, the gait stability margin variation of an articulated spine robot is compared according to the allowable waist-joint angle.

소비 에너지 분석을 통한 이족로봇의 저전력 보행 보정 기법 (Low-Power Walking Compensation Method for Biped Robot Based on Consumption Energy Analysis)

  • 이창석;나두영;김용태
    • 한국지능시스템학회논문지
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    • 제20권6호
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    • pp.793-798
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    • 2010
  • 본 논문에서는 소비 에너지 분석을 통한 이족보행로봇의 저전력 보행 보정 기법을 제안하였다. 먼저 이족 로봇의 보행 기본자세의 각 축별 소비 에너지를 분석하여 소비 에너지를 절감하는 기본 보행 자세를 구현하였다. 이족 로봇의 보행 기본자세를 무릎 구부리는 자세로 정하여 소비에너지를 줄이고, 무게중심을 낮추어 자세 안정성을 향상하였다. 이족로봇의 보행시 모터 전류를 측정하여 좌우 다리의 소비 전력을 분석하고, 이를 바탕으로 좌우 에너지 불균형을 제거하도록 보행 자세를 보정하였다. 보행 기본자세의 좌우 소비 전력을 고르게 분포시키게 자세를 보정함으로서 전체 소비 에너지를 감소시키고, 로봇의 좌우 자세 균형을 맞추어 보행시 안정성을 향상하였다. 제안한 소비 에너지 분석을 통한 저전력 보행 구현 방법은 임베디드시스템 기반의 소형 이족 로봇을 실제 제작하여 보행 실험을 통해 성능을 검증하였다.

이족보행로봇의 횡보행 경로생성을 위한 시뮬레이터 연구 (Study on a Simulator for Generating Side Walking Path of the Biped Walking Robot)

  • 최형식;전창훈;강진일
    • Journal of Advanced Marine Engineering and Technology
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    • 제32권8호
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    • pp.1285-1295
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    • 2008
  • A research on a simulator for a side walking path of a 16 degree-of-freedom (d.o.f) biped walking robot(BWR) which is composed of 4 d.o.f upper-part body and 12 d.o.f lower-part of the body is presented. For generation of stable side walking motion, the kinematics, dynamics and the zero moment of point(ZMP) of the BWR were analyzed analytically and included in the simulator. To operate the motion simulator for stable side walking of the BWR, a graphic user interface program was developed which needs inputs for the side distance between legs, base joint angle, walking type, and walking velocity. The simulator was developed to generate joint angle data of legs for side walking, and the data are transmitted to the BWR for stable side walking. In the simulator, a new path function for smooth walking motion was proposed and applied to the simulator and actual motion of a BWR. Also for actual side walking, an algorithm for estimating backlashes of the actuating joint motors was proposed and included in the simulator. To validate the performance of the proposed motion simulator, the simulator was operated and its side walking data of the simulator were generated for a period of side walking.

척수마비 재활훈련용 이족보행 RGO 로봇의 Dynam ic PLS 생체역학적 특성분석 <응력해석과 FEM을 중심으로> (Analysis of a Dynamic PLS of the Biped Walking RGO-Robot for a Trainning of Rehabilitation)

  • 김명회;장대진;박창일;박영필
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2002년도 춘계학술대회 논문집
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    • pp.136-141
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    • 2002
  • This paper presents a design and a control of a biped walking RGO-robot and dynamic walking simulation for this system. The biped walking RGO-robot is distinguished from other one by which has a very light-weight and a new AGO type with servo motors. The gait of a biped walking RGO-robot depends on the constrains of mechanical kinematics and initial posture. The stability of dynamic walking is investigated by ZMP(Zero Moment Point) of the biped walking RGO-robot. It is designed according to a human wear type and is able to accomodate itself to human environments. The joints of each leg are adopted with a good kinematic characteristics. To test of the analysis of joint kinematic properties, we did the strain stress analysis of dynamic PLS and the study of FEM with a dynamic PLS. It will be expect that the spinal cord injury patients are able to train effectively with a biped walking AGO-robot.

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재활훈련용 이쪽보행 RGO 로봇의 Dynamic PLS 설계와제어 - <응력해석과 FEM을 중심으로> (Design and Control of a Dynamic PLS of the Biped Walking RGO-Robot for a Trainning of Rehabilitation)

  • 김명회;장대진;박창일;박영필
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2002년도 춘계학술대회 논문집
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    • pp.238-243
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    • 2002
  • This paper presents a design and a control of a biped walking AGO-robot and dynamic walking simulation for this system. The biped walking RGO-robot is distinguished from other one by which has a very light-weight and a new RGO type with servo motors. The gait of a biped walking AGO-robot depends on the constrains of mechanical kinematics and initial posture. The stability of dynamic walking is investigated by ZMP(Zero Moment Point) of the biped walking AGO-robot. It is designed according to a human wear type and is able to accomodate itself to human environments. The joints of each leg are adopted with a good kinematic characteristics. To test of the analysis of joint kinematic properties, we did the strain stress analysis of dynamic PLS and the study of FEM with a dynamic PLS. It will be expect that the spinal cord injury patients are able to train effectively with a biped walking RGO-robot.

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