• Title/Summary/Keyword: Climbing Mechanism

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Rope Modeling and Verification for the Robotic Platform of the Wall Cleaning Robot (ROPE RIDE) (외벽청소로봇(ROPE RIDE)의 등강 로봇 플랫폼을 위한 로프 모델링 및 검증)

  • Yoo, Sungkeun;Kim, Taegyun;Seo, Myoungjae;Kim, Hwa Soo;Seo, TaeWon
    • The Journal of Korea Robotics Society
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    • v.14 no.3
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    • pp.191-195
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    • 2019
  • This paper presents a rope modeling and verification for the robotic platform of the wall cleaning robot (ROPE RIDE). ROPE RIDE has the characteristics of climbing up and down using a rope fixed on the roof like traditional workers. In order to perform a stable operation with a wall cleaning robot, it is necessary to estimate the position of the robot in a vertical direction. However, due to the high coefficient of extension and nonlinearity of the climbing rope, it is difficult to predict the behavior of the rope. Thus, in this paper, the mathematical modeling of the rope was carried out through the preliminary experiment. Extensive experiments using different types of rope were used to determine the parameters of the constitutive equation of climbing ropes. The validity of the determined parameters of various ropes was verified through the experiment results.

An Efficient Stair Locomotion Method of Quadruped Robot with Mechanism of Insectile Leg (곤충형 다리 구조를 갖는 4족 로봇의 효율적인 계단 보행 방법)

  • Byun, Jae-Oh;Choi, Yoon-Ho
    • The Journal of the Korea institute of electronic communication sciences
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    • v.10 no.3
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    • pp.395-402
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    • 2015
  • In this paper, we propose an efficient gait trajectory generation method for the static stair climbing of a quadruped robot with mechanism of insectile legs, which has no collision with staris. First, we derive the kinematic and inverse models of a quadruped robot using the algebraic and geometrical methods, respectively. In the proposed method, we generate the stair locomotion trajectory of a sine wave after lifting a leg from the start position, and then determine the coefficient of the generated trajectory to avoid the collision with stairs. In addition, we make the gait sequence for the stable stair locomotion. Finally, we verify the effectiveness and applicability of the proposed stair locomotion method through computer simulations.

Swarm-bot Manufacture and System Control (스웜봇의 제작 및 시스템 제어)

  • Jeong, Su-Yeon;Lee, Seung-Won;Park, Jae-Sun;Kim, Dong-Hwan
    • Journal of Institute of Control, Robotics and Systems
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    • v.13 no.2
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    • pp.163-172
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    • 2007
  • A swarm-bot docking with two independent robots aiming at overcoming obstacles or climbing up/down stairs is introduced how it can be manufactured and controlled. Utilizing the fast mobility of the vehicle robot and cooperating between robots expands the applications of the robot. An algorithm for identifying the partner robot and its generic mechanism enabling the docking of two robots are addressed. The designed swarm-bot has advantages in terms of overcoming obstacle or stair climbing which is not easily implemented by a single robot, increasing the adaptability to the environment.

A New Driving Mechanism to Allow a Rescue Robot to Climb Stairs

  • Lim, Sung-Kyun;Park, Dong-II;Kwak, Yoon-Keun
    • International Journal of Precision Engineering and Manufacturing
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    • v.8 no.3
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    • pp.3-7
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    • 2007
  • There have been numerous studies directed toward the development of driving mechanisms for off-road mobility and rescue robots. To achieve surveillance, reconnaissance, and rescue, it is necessary for robots to have a driving mechanism that can handle off-road environments, We propose a new type of single-track driving mechanism with a variable geometry for a rescue robot, This mechanism has a symmetric configuration so that the robot can advance in two directions and also remain operable when overturned. By transforming its geometry, the robot can reduce energy consumption in steering and rotating as well as maximize its ability to climb obstacles such as stairs. The robot is also designed to have a compact size and low center of gravity to facilitate driving when on a set of stairs. In this paper, we analyzed the design parameters of the robot for the four phases of climbing stairs and determined the specifications needed to enhance its adaptability.

Variable Geometry Single-Tracked Mechanism for Rescue Robot (구조 로봇에 적합한 가변형 단일 트랙 메커니즘)

  • Im, Sung-Kyun;Park, Dong-Il;Kwak, Yoon-Keun
    • Proceedings of the KSME Conference
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    • 2004.11a
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    • pp.720-724
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    • 2004
  • This paper introduces a new type of driving mechanism for rescue robot that has a variable geometry single-track which satisfies the pre-conditions of rescue robot. This mechanism is a symmetric configuration that has dual directions and prepares against overturn. By using transformation, it can reduce the energy consumption in steering and rotating. And also it maximizes the ability to overcome obstacles, like steps. It is designed to make the size of robot compact and to have the low center of gravity in driving on steps. Finally, we optimized the design variables of components determining the shape of reverse-trapezoid frame to enhance the adaptability to 4 phases of climbing steps.

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Development of a wall climbing robot with vacuum caterpillar wheel system (흡착 캐터필러 시스템을 이용한 수직평면 등반로봇 기구부의 개발)

  • Kim Hwang;Kim Dong-Mok;Yang Ho-Joon;Lee Kyou-Hee;Seo Kun-Chan;Chang Do-Young;Kim Jong-Won
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2006.05a
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    • pp.55-56
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    • 2006
  • This paper describes a new concept of the robot that can climb on the vertical plane. The engineering design problem of the main structure is presented and the experimental results regarding a new mechanism of climbing on the vertical wall are discussed. The locomotive motion of the robot is realized by using a series chain of two caterpillar wheels on which 24-suction pads are installed. White each caterpillar wheel rotates on the vertical plane surface, the vacuum pads are activated in sequence based on the sequential opening by specially designed mechanical valves. The detail design feature of the valve is also described in this paper. The overall size of the robot is around 460 mm in width and length, respectively, and 200 mm in height. Its mass is slightly over 14 kg. The main mechanical structure of the robot consists of driving motors, vacuum caterpillar system, steering part, vacuum pump and battery. The performance of the robot is verified on the vertical wall.

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Automatic Stair-Climbing Algorithm of the Planetary Wheel Type Mobile Robot in Nuclear Facilities (원자력시설내에서의 유성차륜형 이동로보트의 자동계단 승월기법)

  • Kim, Byung-Soo;Kim, Seung-Ho;Lee, Jongmin
    • Nuclear Engineering and Technology
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    • v.27 no.5
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    • pp.661-669
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    • 1995
  • A mobile robot, named KAEROT, has been developed for inspection and maintenance operations in nuclear facilities. The main feature of locomotion system is the planetary wheel assembly with small wheels. This mechanism has been designed to be able to go over the stairs and obstacles with stability. This paper presents the inverse kinematic solution that is to be operated by remote control. The automatic stair climbing algorithm is also proposed. The. proposed algorithms generates the moving pathes of small wheels and calculates the angular velocity of 3 actuation wheels. The results of simulations and experiments are given for KAEROT peformed on the irregular stairs in laboratory. It is shown that the proposed algorithm provides the lower inclination angle of the robot body and increases its stability during navigation.

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Inhibitory Effects of Paeonol on Morphine-Induced Locomotor Sensitization and Conditioned Place Preference in Mice

  • Eun, Jae-Soon;Bae, Ki-Hwan;Yun, Yeo-Pyo;Hong, Jin-Tae;Kwon, Han-Na;Oh, Ki-Wan
    • Archives of Pharmacal Research
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    • v.29 no.10
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    • pp.904-910
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    • 2006
  • The inhibitory effects of paeonol, a major compound of Paeoniae radix, on the development of locomotor sensitization, conditioned place preference (CPP) and dopamine receptor supersensitivity induced by the repeated administration of morphine were investigated through behavioral experiments. A single administration of morphine produces hyperlocomotion. Repeated administration of morphine develops sensitization (reverse tolerance), a progressive enhancement of locomotion, which is used as a model for studying the drug-induced drug-seeking behaviors, and CPP, which is used as a model for studying drug reinforcement. Paeonol inhibited morphine-induced hyperlocomotion, sensitization and CPP. In addition, paeonol inhibited the development of postsynaptic dopamine receptors supersensitivity, which may be an underlying common mechanism that mediates the morphine-induced dopaminergic behaviors such as sensitization and CPP. Apomorphine (a dopamine agonist)-induced climbing behaviors also were inhibited by a single direct administration of paeonol. These results provide evidence that paeonol exerts anti-dopaminergic activity, and it is suggested that paeonol may be useful for the prevention and therapy of these adverse actions of morphine.

The design of wall-climbing underwater robot system (수중 벽면 주행 기구의 설계)

  • 김병만;김경훈;박영수;박기용
    • 제어로봇시스템학회:학술대회논문집
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    • 1997.10a
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    • pp.237-240
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    • 1997
  • The design of underwater inspection robot system is presented. This robot system is designed for wall inspection in the nuclear plant facility. This paper describes the major components of the robot and its structures. This robot system is consisted of three parts : mechanical electrical and sensing pail. The main problem of designing mechanical part is to select the mechanism of driving. In this system the propeller driving mechanism is selected which can be move the robot continuously. For reducing the size of robot, we designed the CPU and motor controller board. The sensor system is consisted of two parts. One is environment monitoring part and the other is robot localization system.

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A Study on Improved Vacuum Adsorption Method for Wall Climbing Robot (벽면이동 로봇의 진공흡착방식 개선에 관한 연구)

  • Shin, Dong-Ho;Park, Jae-Min;Kim, Hyeon-Sub;Kim, Sang-Hoon
    • Proceedings of the Korea Information Processing Society Conference
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    • 2019.05a
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    • pp.321-323
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    • 2019
  • 본 논문은 벽면 이동 로봇의 진공흡착을 위한 Mechanism의 개선에 관한 연구로서, 시뮬레이션을 통해 로봇의 무게에 따른 중력을 견딜 수 있도록 흡착의 효율을 높이고, Mechanism의 여러 조건들을 고려하여 실험을 통해 가장 적절히 부합하는 조건을 판단하며 벽의 수직방향으로의 미는 힘과 챔버 내의 저압영역등과의 상관관계를 고려하여 흡착 능력을 개선하기 위한 방법을 판단하기 위해 실험을 진행하였다.