DocumentCode :
45925
Title :
Maximally Permissive Distributed Control of Large Scale Automated Manufacturing Systems Modeled With Petri Nets
Author :
Hesuan Hu ; Yang Liu ; Mengchu Zhou
Author_Institution :
Sch. of Electro-Mech. Eng., Xidian Univ., Xi´an, China
Volume :
23
Issue :
5
fYear :
2015
fDate :
Sept. 2015
Firstpage :
2026
Lastpage :
2034
Abstract :
Ensuring nonblockingness remains challenging for automated manufacturing systems (AMSs) owing to their discrete event dynamics. Both scalability and maximal permissiveness are essential for the synthesis and implementation of their centralized supervisors. Inspired by the divide and conquer philosophy, this brief proposes a partition methodology and distributed control technique for large-scale AMSs. They are represented as interconnected and overlapping subsystems sharing some common components in terms of buffers. For each subsystem, a local supervisor is designed based on its local behavior and neighboring information only. Generalizing the existing results, we develop a condition under which the control law via decomposition promises the maximal permissiveness. Buffer capacities are well designed for the sake of their decomposition into multiple overlapping subsystems. Theoretical results are developed to characterize the behavior compatibility among local controllers. An experimental study illustrates the effectiveness of the proposed method.
Keywords :
Petri nets; control system synthesis; discrete event systems; distributed control; interconnected systems; manufacturing systems; process control; AMSs; Petri nets; buffer capacity; centralized supervisors; discrete event dynamics; interconnected subsystems; large scale automated manufacturing systems; local supervisor design; maximally permissive distributed control technique; multiple overlapping subsystems; partition methodology; Barium; Computer architecture; Decentralized control; Educational institutions; Monitoring; Resource management; Vectors; Automated manufacturing systems (AMSs); Petri nets (PNs); deadlock prevention; discrete event systems; distributed control; maximal permissiveness; supervisor synthesis; supervisor synthesis.;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/TCST.2015.2391014
Filename :
7029080
Link To Document :
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