DocumentCode :
1240203
Title :
Modeling and deadlock avoidance of automated manufacturing systems with multiple automated guided vehicles
Author :
Wu, NaiQi ; Zhou, MengChu
Author_Institution :
Dept. of Mechatronics Eng., Guangdong Univ. of Technol., Guangzhou, China
Volume :
35
Issue :
6
fYear :
2005
Firstpage :
1193
Lastpage :
1202
Abstract :
An automated manufacturing system (AMS) contains a number of versatile machines (or workstations), buffers, an automated material handling system (MHS), and is computer-controlled. An effective and flexible alternative for implementing MHS is to use automated guided vehicle (AGV) system. The deadlock issue in AMS is very important in its operation and has extensively been studied. The deadlock problems were separately treated for parts in production and transportation and many techniques were developed for each problem. However, such treatment does not take the advantage of the flexibility offered by multiple AGVs. In general, it is intractable to obtain maximally permissive control policy for either problem. Instead, this paper investigates these two problems in an integrated way. First we model an AGV system and part processing processes by resource-oriented Petri nets, respectively. Then the two models are integrated by using macro transitions. Based on the combined model, a novel control policy for deadlock avoidance is proposed. It is shown to be maximally permissive with computational complexity of O(n2) where n is the number of machines in AMS if the complexity for controlling the part transportation by AGVs is not considered. Thus, the complexity of deadlock avoidance for the whole system is bounded by the complexity in controlling the AGV system. An illustrative example shows its application and power.
Keywords :
Petri nets; automatic guided vehicles; computational complexity; flexible manufacturing systems; industrial robots; materials handling; AGV system control; automated guided vehicle system; automated manufacturing systems; automated material handling system; computational complexity; deadlock avoidance; permissive control policy; resource-oriented Petri nets; versatile machines; Computational complexity; Computer aided manufacturing; Manufacturing systems; Materials handling; Petri nets; Production; System recovery; Transportation; Vehicles; Workstations; Automated guided vehicle; Petri nets; automated manufacturing; deadlock avoidance; Artifacts; Artificial Intelligence; Computer Simulation; Equipment Failure; Equipment Failure Analysis; Models, Theoretical; Motor Vehicles; Robotics; Systems Integration;
fLanguage :
English
Journal_Title :
Systems, Man, and Cybernetics, Part B: Cybernetics, IEEE Transactions on
Publisher :
ieee
ISSN :
1083-4419
Type :
jour
DOI :
10.1109/TSMCB.2005.850141
Filename :
1542265
Link To Document :
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