DocumentCode :
26126
Title :
Global Asymptotic Stabilization of Large-Scale Hydraulic Networks Using Positive Proportional Controls
Author :
Jensen, Tom Norgaard ; Wisniewski, Rafael
Author_Institution :
Dept. of Electron. Syst., Aalborg Univ., Aalborg, Denmark
Volume :
22
Issue :
6
fYear :
2014
fDate :
Nov. 2014
Firstpage :
2417
Lastpage :
2423
Abstract :
An industrial case study involving a large-scale hydraulic network underlying a district heating system subject to structural changes is considered. The problem of controlling the pressure drop across the so-called end-user valves in the network to a designated vector of reference values under directional actuator constraints is addressed. The proposed solution consists of a set of decentralized positively constrained proportional control actions. The results show that the closed-loop system always has a globally asymptotically stable equilibrium point independently on the number of end-users. Furthermore, by a proper design of controller gains the closed-loop equilibrium point can be designed to belong to an arbitrarily small neighborhood of the desired equilibrium point. Since there exists a globally asymptotically stable equilibrium point independently on the number of end-users in the system, it is concluded that structural changes can be implemented without risk of introducing instability. In addition, structural changes can be easily implemented due to the decentralized control architecture.
Keywords :
asymptotic stability; closed loop systems; decentralised control; district heating; hydraulic systems; pressure control; proportional control; closed-loop equilibrium point; closed-loop system; decentralized control architecture; decentralized positively constrained proportional control actions; directional actuator constraints; district heating system; end-user valves; global asymptotic stabilization; large-scale hydraulic networks; pressure drop cotrol; reference value vector; Actuators; Asymptotic stability; Closed loop systems; Decentralized control; Nonlinear systems; Robust control; Valves; Decentralized control; hydraulic networks; nonlinear systems; robust control; robust control.;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/TCST.2014.2306990
Filename :
6762894
Link To Document :
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