• 제목/요약/키워드: Automated guided vehicle

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AGV용 배터리 팩 및 관리시스템 (Battery Pack and Management System for Automated Guided Vehicle)

  • 남종하;강덕하;황호석;박찬희;이희관;박민기
    • 전력전자학회:학술대회논문집
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    • 전력전자학회 2011년도 전력전자학술대회
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    • pp.138-139
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    • 2011
  • 무인 운반차(AGV, Automated Guided Vehicle)은 1955년에 개발된 자재 운반용 무인운송 시스템으로 초기에는 제조 현장에서 자재의 운송에 국한되어 사용되었다. 최근에는 창고, 컨테이너 터미널 그리고 지하공간에서의 반복되는 실내/외 운송으로까지 그 사용이 확산되고 있다. AGV는 제조현장에서 제조 공정과 관련된 모든 자재의 이송에 적용되고 반복되는 운송의 형태에 사용되며, 실내 용도로는 수입, 저장, 분류, 반출, 이송과 공정 간의 파레트(Pallet) 이송에 사용되며, 비교적 작은 용량의 AGV가 이러한 제조현장에서 산업용도에 쓰이고 있다. AGV는 실내에서 주로 사용되는 환경적 특성상 배터리를 사용하며, 충전하거나 교환하여야 하며, 이에 소요되는 시간이 시스템의 성능에 큰 영향을 미친다. 대부분의 제조현장이나 배송센터에서 AGV는 비교적 짧은 거리를 운행하므로 대기 시간 중에 배터리를 충전하거나 교환이 가능하다. 하지만 비교적 장거리를 운행하는 시스템에서는 AGV의 가동률을 50% 이하로 유지하거나 온라인 충전 시스템을 구비하여야만 배터리 전압 강하에 의한 시스템의 마비를 예방할 수 있다.

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마이크로 프로세서를 이용한 무인운반차량의 주행제어에 관한 연구 (A Study on the Driving Control for the Automated Guided Vehicle using Microprocessor)

  • 김병기;김진태;김윤상;오현철;이해기;안두수
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1998년도 추계학술대회 논문집 학회본부 B
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    • pp.432-434
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    • 1998
  • Recently, For the material transport is increased, the AGV(Automated Guided Vehicle) is the most important part in the industrial factory. So we treat the navigation control problem and experimental results using microprocessor. In navigation control, we have faced with velocity control problem related to guide path tracking problem. Carefully, In the straight line, the AGV moves at its high speed, but in the curve line, especially when the radian ratio is very big it is difficult to follow guide line. So, Using fuzzy controller we have simulated the guide path following AGV according to the varying velocity and experimented it with microprocessor.(Intel 80C196KC) Now, If we use the AGV industrial factory, we will improve the product and efficiency in spite of changing the factory environment.

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가감속을 고려한 교착없는 AGV 주행경로설정 (Deadlock-free Routing of an ACV in Accelerated Motion)

  • 최이;박태진;류광렬
    • 한국항해항만학회:학술대회논문집
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    • 한국항해항만학회 2006년도 추계학술대회 논문집(제1권)
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    • pp.387-392
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    • 2006
  • 컨테이너 터미널과 같이 다수의 AGV(Automated Guided Vehicle)를 한정된 공간에서 동시에 운용하는 환경에서는 AGV의 작업생산성에 악영향을 주는 충돌, 데드락(deadlock), 라이브락(livelock)이 발생할 확률이 높다. 또한, AGV의 가/감속 운동은 AGV의 주행시간을 예측하기 어렵게 만들기 때문에 AGV 라우팅을 더욱 어렵게 만드는 요인이다 . 본 연구에서는 AGV 사이의 충돌, 데드락, 라이브락을 방지하기 위해 점유영역 예약테이블(Occupancy Area Reservation table; OAR table)을 이용하는 방법과 최적주행경로를 선택하기 위해 가감속 운동을 고려하여 AGV의 주행시간을 추정하는 방법을 제안한다. 시간중심 시뮬레이션(time-driven simulation)을 통해 제안방안을 실험한 결과 제안방안의 효과를 확인하였다.

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자기-자이로 유도 장치를 위한 MEMS형 자이로의 민감도 최적화 (Sensitivity Optimization of MEMS Gyroscope for Magnet-gyro Guidance System)

  • 이인성;김재용;정은국;정경훈;김정민;김성신
    • 로봇학회논문지
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    • 제8권1호
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    • pp.29-36
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    • 2013
  • This paper presents a sensitivity optimization of a MEMS (microelectromechanical systems) gyroscope for a magnet-gyro system. The magnet-gyro system, which is a guidance system for a AGV (automatic or automated guided vehicle), uses a magnet positioning system and a yaw gyroscope. The magnet positioning system measures magnetism of a cylindrical magnet embedded on the floor, and AGV is guided by the motion direction angle calculated with the measured magnetism. If the magnet positioning system does not measure the magnetism, the AGV is guided by using angular velocity measured with the gyroscope. The gyroscope used for the magnet-gyro system is usually MEMS type. Because the MEMS gyroscope is made from the process technology in semiconductor device fabrication, it has small size, low-power and low price. However, the MEMS gyroscope has drift phenomenon caused by noise and calculation error. Precision ADC (analog to digital converter) and accurate sensitivity are needed to minimize the drift phenomenon. Therefore, this paper proposes the method of the sensitivity optimization of the MEMS gyroscope using DEAS (dynamic encoding algorithm for searches). For experiment, we used the AGV mounted with a laser navigation system which is able to measure accurate position of the AGV and compared result by the sensitivity value calculated by the proposed method with result by the sensitivity in specification of the MEMS gyroscope. In experimental results, we verified that the sensitivity value through the proposed method can calculate more accurate motion direction angle of the AGV.

자동화 컨테이너터미널에서 운송장비의 운영방안에 관한 연구 (A Study On Operation Method of Handling Equipments in Automated Container Terminals)

  • 최형림;박남규;박병주;권해경;유동호
    • 산업공학
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    • 제17권2호
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    • pp.233-241
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    • 2004
  • The main subject to become a hub port is automation. The automated container terminal has already operated in advanced ports and it has been planned for the basic planning and operation design in domestic case. The key of automated container terminal is effective operation of both ATC(automated transfer crane) and AGV(automated guided vehicle) which is automated handling equipments. This is essential to productivity of automated container terminal. This study suggests the most optimal method of equipment operation in order to minimize loading time using each three types of effective ATC operation methods and AGV dispatching rules in automated container terminals. As the automated equipment operation causes unexpected deadlocks or interferences, it should be proceeded on event-based real time. Therefore we propose the most effective ATC operation methods and AGV dispatching rules in this paper. The various states occurred in real automated container terminals are simulated to evaluate these methods. This experiment will show the most robust automated equipment operation method on various parameters(the degree of yard re-marshaling, the number of containers and AGV)

무인운반차 기반 물류시스템에서의 이동시간 분석 (Vehicle Travel Time Analysis in Automated Guided Vehicle Systems)

  • 구평회;장재진
    • 한국경영과학회지
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    • 제26권1호
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    • pp.97-108
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    • 2001
  • Design and evaluation of AGV-based material handling systems are very complicated due to the randomness and the large number of variables involved Vehicle travel time is a key parameter for designing and evaluating AGV systems. Although loaded travel time is relatively easy to estimate, determination of empty vehicle travel time is difficult due to the inherent randomness of material handling systems. Most previous studies assume that the empty vehicle travel time is the same as the loaded travel time or assume very specific environments. This paper presents new vehicle travel time models for AGV-based material transport systems. The research effort is focused on the estimation of empty vehicle travel time under various vehicle dispatching policies. Simulation experiments are used to verify the proposed travel time models.

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분산 수동속도장 제어법을 이용한 다중 AGV 시스템의 협조 이송제어 (A Cooperative Object-Transportation Control of Multiple AGV Systems using Decentralized Passive Velocity Field Control Algorithm)

  • 서진호;김영복;이권순
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2005년도 학술대회 논문집 정보 및 제어부문
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    • pp.391-393
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    • 2005
  • Automatic guided vehicle(AGV) in the factory has an important role to advance the flexible manufacturing system. In this paper, we propose a novel object-transportation control algorithm of cooperative AGV systems to apply decentralized control scheme based on virtual-passivity. It is shown that the cooperative AGV systems ensure stability and the convergence to scaled multiple of each desired velocity field for multiple AGV systems. Finally, the application of proposed virtual passivity-based decentralized control algorithm via system augmentation is applied to be the tracking a circle. Also. the simulation results for the object-transportation by two AGV systems illustrate the validity of the proposed control scheme.

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분산 수동속도장 제어법을 이용한 다중 AGV 시스템의 협조 이송제어 (A Cooperative Object-Transportation Control of Multiple AGV Systems using Decentralized Passive Velocity Field Control Algorithm)

  • 서진호;김영복;이권순
    • 대한전기학회논문지:시스템및제어부문D
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    • 제55권6호
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    • pp.261-263
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    • 2006
  • Automatic guided vehicle(AGV) in the factory has an important role to advance the flexible manufacturing system. In this paper, we propose a novel object-transportation control algorithm of cooperative AGV systems to apply decentralized control scheme based on virtual-passivity. It is shown that the cooperative AGV systems ensure stability and the convergence to scaled multiple of each desired velocity field for multiple AGV systems. Finally, the application of p reposed virtual passivity-based decentralized control algorithm via system augmentation is applied to be the tracking a circle. Also, the simulation results for the object-transportation by two AGV systems illustrate the validity of the proposed control scheme.

Aspect-Oriented Approach를 이용한 통합 물류 시스템의 시뮬레이션 설계 및 분석 방법 (The Simulation Design and Analysis Method of Integrated Logistics System using an Aspect Oriented Approach)

  • 김태호;엄인섭;이홍철
    • 산업공학
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    • 제20권4호
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    • pp.438-447
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    • 2007
  • This paper presents an aspect-oriented approach to simulation design and analysis in system design phase for integrated logistics system simulation. The integrated logistics system composed of AS/RS (Automated Storages and Retrieval System), AGVs (Automated Guided Vehicle System), STVs (Sorting Transfer Vehicle System) and Conveyor System is designed by using the aspect-oriented approach and UML (Unified Modeling Language). The multi-factorial design of experiments and regression analysis are used for design parameters of the system and Evolution Strategies is used to verify each parameter. Aspect-oriented approach for the integrated logistics system simulation shows the advantages of code reusability, extendible, modulation, easy improvement and a better design technique.

회전 Laser 슬릿 빔을 이용한 AGV의 위치 및 자세의 검출 (Detection of AGV's position and orientation using laser slit beam)

  • 박건국;김선호;박경택;안중환
    • 한국항해항만학회:학술대회논문집
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    • 한국항해항만학회 2000년도 추계학술대회논문집
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    • pp.219-225
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    • 2000
  • The major movement block of the containers have range between apron and designation points on yard in container terminal. The yard tractor operated by human takes charge of its movement in conventional container terminal. In automated container terminal, AGV(Automated Guided Vehicle) has charge of the yard tractor's role and the navigation path is ordered from upper level control system. The automated container terminal facilities must have the docking system to guide landing line to have high speed travelling and precision positioning. The general method for docking system uses the vision system with CCD camera, infra red, and laser. This paper describes the detection of AGV's position and orientation using laser slit beam to develop docking system.

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