• 제목/요약/키워드: Walking Robot of 4 legs

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Walking Robot With 4 Legs

  • Jang, Sung-Hwan;Lee, Ja-Yong;Kang, Hoon
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 2001년도 ICCAS
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    • pp.123.4-123
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    • 2001
  • This paper explains the walking robot with 4 legs. One leg is composed of 4 dc server motors and have 4 d.o.f. This walking robot has simple structure using "the principle of lever". The structure of robot models the 4 legs´ animal such as dog. The walking patterns is various and complex. With inspecting the walking dogs, the walking motions implemented by patterns. The center of mass is important of this type robot. The significant issue of walking is weight. As the weight is lighter, so the robot well walks. The method of walking is patterns.

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4족 보행 로봇 (Walking robot with 4 legs)

  • 장성환;강훈
    • 한국지능시스템학회:학술대회논문집
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    • 한국퍼지및지능시스템학회 2001년도 추계학술대회 학술발표 논문집
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    • pp.125-128
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    • 2001
  • This paper explains the walking robot with 4 legs. One leg is composed of 4 dc server motors and have 4 d.o.f. This walking robot has simple structure using the principle of lever. The structure of robot models the 4 legs animal such as dog. The walking patterns is various and complex. With Inspecting the walking dogs, the walking motions implemented by patterns. The center of mass is important of this type robot. The significant issue of walking is weight. As the weight is lighter, so the robot well walks. The method of walking is patterns.

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보행공간과 안정성 향상을 위한 병렬기구 보행로봇의 설계 (Design of Parallel Typed Walking Robot for Improvement of Walking Space and Stability)

  • 김치효;박근우;김태성;이민기
    • 대한기계학회논문집A
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    • 제32권4호
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    • pp.310-318
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    • 2008
  • This paper presents a parallel typed walking robot to improve walking space and stability region. The robot is designed by inserting an intermediate mechanism between upper leg mechanism and lower leg mechanism. The leg mechanism is composed of three legs and base, which form a parallel mechanism with ground. Seven different types of walking robot are invented by combining the leg mechanisms and an intermediate mechanism. Topology is applied to design the leg mechanism. A motor vector is adopted to determine Jacobian and a wrench vector is used to analyze dynamics of the robot. We explore the stability region of the robot from the reaction force of legs and compute ZMP including the holding force to contact the foot to a wall. This investigates a walking stability when the robot walks on the ground as well as on the wall. We examine the walking space generated by support legs and by swing legs. The robot has both a large positional walking space and a large orientational walking space so that it can climb from a floor up to a wall.

빠른 보행이 가능한 6족 로봇 (A Hexapod Robot that can Walk Fast)

  • 서현세;성영휘
    • 전기학회논문지
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    • 제62권4호
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    • pp.536-543
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    • 2013
  • In this paper, we propose a new type of hexapod robot that can walk fast. Most of the conventional hexapod robots are either rectangular type of hexagonal type. Those robots have drawbacks in the speed and stability of walking. The proposed robot has six legs, one fore leg, one hind leg, two left legs and two right legs. The proposed robot forms relatively wide supporting polygons along the walking direction, so it can walk very fast stably. We implemented the proposed hexapod robot and showed the feasibility of the robot by 3+3 walking experiment and 2+4 walking experiment.

4지 로봇의 최적 머니퓰레이션에 관한 연구 (A Study on the Optimal Solution for the Manipulation of a Robot with Four Limbs)

  • 이지영;성영휘
    • 전기학회논문지
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    • 제64권8호
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    • pp.1231-1239
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    • 2015
  • We developed a robot that has four limbs, each of which has the same kinematic structure and has 6 degrees of freedom. The robot is 600mm high and weighs 4.3kg. The robot can perform walking and manipulating task by using the four limbs selectively. The robot has three walking patterns. The first one is biped walking, which uses two rear limbs as legs and two front limbs as arms. The second one is biped walking with supporting arms, which is basically biped walking but uses two arms as supporting legs for increasing stability of the robot. The last one is quadruped walking, which uses all the four limbs as legs. When a task for the robot is given, the robot approaches the task point by selecting an appropriate walking pattern among three walking patterns and performs the task. The robot has many degrees of freedom and is a redundant system for a three dimensional task. We propose a redundancy resolution method, in which the robot’s translational move to the task point is modeled as a prismatic joint and optimal solutions are obtained by optimizing some performance criteria. Several simulations are performed for the validity of the proposed method.

6족 보행 로봇에서의 최적 머니퓰레이션 (Optimal Manipulation for a Hexapod Walking Robot)

  • 서현세;성영휘
    • 융합신호처리학회논문지
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    • 제16권4호
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    • pp.168-174
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    • 2015
  • 보행 로봇의 궁극적인 목적은 원하는 장소로 이동한 후에 적절한 작업을 수행하는 데 있다. 보행 로봇이 임의의 작업을 수행하기 위해서는 보행을 위한 다리뿐만 아니라 별도의 머니퓰레이터를 갖추고 있어야 하지만 작업의 난이도가 높지 않은 특정 작업을 수행하는 데에는 굳이 머니퓰레이터를 갖추지 않더라도 보행에 사용하는 다리를 이용하여 작업을 수행할 수도 있다. 다리를 가지고 이동하는 보행 로봇 중에서 6족 보행 로봇은 안정적이고 빠른 보행이 가능한 장점이 있으며 다리의 수가 상대적으로 많으므로 로봇의 보행 및 정지 시 균형 유지를 용이하게 할 수 있고 균형 유지에 사용되지 않는 여분의 다리를 이용하여 특정 작업을 수행할 수 있는 장점이 있다. 본 연구에서는 6족 보행 로봇이 3차원 공간상에서 주어지는 공의 위치로 이동하여 공을 잡는 작업을 여유자유도 로봇 문제로 재구성하고 이를 해석하여 최적해를 구하는 방법을 제안한다.

6족 보행로봇에 관한 기초연구 (A Basic Study of Hexapod Walking Robot)

  • 강동현;민영봉;반전훈구;매전간웅
    • Journal of Biosystems Engineering
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    • 제32권5호
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    • pp.339-347
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    • 2007
  • A hexapod walking robot had been developed for gathering information in the field. The developed robot was $260{\times}260{\times}130$ ($W{\times}L{\times}H$, mm) in size and 14.7 N in weight. The legs had nineteen degrees of freedom. A leg has three rotational joints actuated by small servomotors. Two servomotors placed at ankle and knee played the roles of vertical joint for up and down motions of the leg and the other one placed at coxa played the role of horizontal joint for forward and backward motions. In addition, a servomotor placed at thorax between the front legs and the middle legs played the role of vertical joint for pumping the two front legs to climb stair or inclination. Walking motion of the robot was executed by tripod gait. The robot was controlled by manual remote-controller communicated by an infrared ray. Two controllers were equipped to control the walking of the robot. The sub-controller using PIC microcomputer (Microchips, PIC16F84A) received the 16 bit command signal from the manual remote controller, decoded it to 8bit and transmitted it to the main microcomputer (RENESAS, SH2/7045), which controlled the 19 servomotors using the PWM command signals. Walking speeds were controlled by adjusting the period of command cycle and the stride. Forward walking speed were within 100 cm/min to 300 cm/min. However, experimental walking speed had the error of 4-40 cm/min to compare with the theoretical one, because of slippage of the leg and the circular arc motion of servomotor of coxa.

4각 보행로봇의 동적 걸음새 평가 (Feasibility test for dynamic gait of quadruped walking robot)

  • 김종년;홍형주;윤용산
    • 대한기계학회논문집
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    • 제14권6호
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    • pp.1455-1463
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    • 1990
  • In this study the feasibility of a dynamic gait for a given quadruped walking robot is investigated through a computer simulation of the walking with certain drivings of the actuators. Two planar inverted pendulums are used to represent the dynamic model of the leg of the walking robot. It's gait motion is assumed to be periodic and symmetric between left and right sides only with half cycle delay. The dynamics of the walking robot is simplified by introducing two virtual legs to produce two planar inverted pendulums in two orthogonal planes and on the basis that certain legs in pair act as one. The feasibility of the dynamic gait motion is established from the following two necessary conditions:(1) The position and velocity of a foot must satisfy the stroke and velocity requirements.(2) The gait motion should be periodic without falling down. The gait feasibility test was applied to a walking robot design showing the specific acceptable speed range of the robot in trot. Also it showed that the higher body height may produce the faster trot gait.

지능형 제어기법 및 센서 인터페이스를 이용한 이족 보행 로봇의 동적보행 제어 (Dynamic Walking Control of Biped Walking Robot using Intelligent Control Method and Sensor Interface)

  • 고재원;임동철
    • 전기학회논문지P
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    • 제56권4호
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    • pp.161-167
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    • 2007
  • This paper introduces a dynamic walking control of biped walking robot using intelligent sensor interface and shows an intelligent control method for biped walking robot. For the dynamic walking control of biped walking robot, serious motion controllers are used. They are main controller(using INTEL80C296SA MPU), sub controller(using TMS320LF2406 DSP), sensor controller(using Atmega128 MPU) etc. The used sensors are gyro sensor, tilt sensor, infrared sensor, FSR sensor etc. For the feasibility of a dynamic walking control of biped walking robot, we use the biped walking robot which has twenty-five degrees of freedom(D.O.F.) in total. Our biped robot is composed of two legs of six D.O.F. each, two arms of five D.O.F. each, a waist of two D.O.F., a head of one D.O.F.

로드셀을 이용한 4족 보행로봇의 자세제어 평가 (Estimation of Attitude Control for Quadruped Walking Robot Using Load Cell)

  • 엄한성
    • 한국정보통신학회논문지
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    • 제16권6호
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    • pp.1235-1241
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    • 2012
  • 본 논문에서는 4족 보행로봇 TITAN-VIII의 모든 관절각과 로봇 본체의 자세각을 계측하여 발바닥의 위치를 추정하고 각 관절의 구동모터를 제어하였다. 네 발바닥에 로드셀을 설치하여 주기, 한주기당 이동거리와 발바닥이 들어 올려지는 높이를 변경하여 8가지 서로 다른 조건에서 보행실험을 수행하고 보행 중 발바닥에 가해지는 힘과 각 관절을 구동하는 모터의 소비전력을 구한 후 비교 분석하여 자세제어의 타당성을 평가하였다. 분석결과 새로운 주기가 시작되는 구간에서 발바닥이 지면을 늦게 떠나는 슬립현상을 확인했는데 이것은 관절각과 본체의 자세각을 계측하여 발바닥의 위치를 추정하고 보행계획을 수립하여 제어하는 것만으로 보행 중 발생하는 로봇 본체의 기울어짐과 기계적인 에러를 완벽하게 극복하지 못함을 확인했다.