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물류 로봇을 위한 무인 자동 운송 플랫폼 연구

A Study on the Automated Guided Vehicle Platform for a Logistics Robot

Journal of the Korean Society for Precision Engineering 2021;38(2):153-160.
Published online: February 1, 2021

1 경상대학교 기계융합공학과

1 Department of Mechanical Convergence Engineering, Gyeongsang National University

#E-mail: wschu@gnu.ac.kr, TEL: +82-55-250-7302
• Received: October 13, 2020   • Revised: December 14, 2020   • Accepted: December 14, 2020

Copyright © The Korean Society for Precision Engineering

This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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A Study on the Automated Guided Vehicle Platform for a Logistics Robot
J. Korean Soc. Precis. Eng.. 2021;38(2):153-160.   Published online February 1, 2021
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J. Korean Soc. Precis. Eng.. 2021;38(2):153-160.   Published online February 1, 2021
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A Study on the Automated Guided Vehicle Platform for a Logistics Robot
Image Image Image Image Image Image Image Image Image
Fig. 1 Diagram displaying the major components of demo factory and sensors of logistics robot
Fig. 2 Process flow and information exchange between the demo factory and the logistics robot
Fig. 3 Schematic diagram of a logistics robot and geometric relationship for Eq. (1)
Fig. 4 Modeling of friction force with viscous friction, stiction and coulomb friction
Fig. 5 Block diagram for MATLAB Simulink
Fig. 6 Line tracing performance of PID control under external disturbances
Fig. 7 Line tracing performance of PID control with friction compensation under external disturbances
Fig. 8 The overall layout of a demo factory and the guideline for a logistics robot
Fig. 9 Demonstration of the logistics robot running inside the demo factory Refer to the demo video by J. Y. Jeong (September 1, 2020) https://www.youtube.com/watch?v=1xzqRBplMbw
A Study on the Automated Guided Vehicle Platform for a Logistics Robot
Components Model Specifications
Line tracer TCRT5000 Black: Datalow = 1
White: Datahigh = 0
Infrared sensor (N/A) Measuring distance: 2-15 cm
Color sensor ISL29125 Detecting RGB
Bluetooth module HM-10 Bluetooth V4.0
DC geared motor (N/A) 20 : 1 and 250 RPM
Robot arm (N/A) 6 DOF
Parameters Value Units
Jw 4.84·10-5 kg·m2
Bw 6.76·10-2 N·/m [rad/sec]
rw 4.4·10-2 m
mw 5.05·10-2 kg
Jf 2.13·10-3 kg·m2
l 6.2·10-2 m
lw 5.4·10-2 m
Controller PID Gains Failure Speed ratio [%]
PID alone Kp = 7
Ki = 2
Kd = 5
6 100
PID +
Friction
compensator
Kp = 2.7
Ki = 3.3
Kd = 40
1 107
Table 1 Components of demo factory and logistics robot
Table 2 Parameters used for determining the transfer function Gdev(s) in Eq. (1)
Table 3 Controller performance comparison