DocumentCode
3176489
Title
Building temperature control: A passivity-based approach
Author
Mukherjee, Sayan ; Mishra, Shivakant ; Wen, John T.
Author_Institution
Comput. & Syst. Eng. Dept., Rensselaer Polytech. Inst., Troy, NY, USA
fYear
2012
fDate
10-13 Dec. 2012
Firstpage
6902
Lastpage
6907
Abstract
This paper focuses on the temperature control in a multi-zone building. The lumped heat transfer model based on thermal resistance and capacitance is used to analyze the system dynamics and control strategy. The resulting thermal network, including the zones, walls, and ambient environment, may be represented as an undirected graph. The thermal capacitances are the nodes in the graph, connected by thermal resistances as links. We assume the temperature measurements and temperature control elements (heating and cooling) are collocated. We show that the resulting input/output system is strictly passive, and any passive output feedback controller may be used to improve the transient and steady state performance without affecting the closed loop stability. The storage functions associated with passive systems may be used to construct a Lyapunov function, to demonstrate closed loop stability and motivates the construction of an adaptive feedforward control. A four-room example is included to illustrate the performance of the proposed passivity based control strategy.
Keywords
Lyapunov methods; adaptive control; building management systems; closed loop systems; cooling; feedback; feedforward; graph theory; stability; temperature control; temperature measurement; thermal resistance; walls; Lyapunov function; adaptive feedforward control; ambient environment; building temperature control; closed loop stability; control strategy; graph nodes; input-output system; lumped heat transfer model; multizone building; passive output feedback controller; passivity-based control strategy; steady state performance; storage functions; system dynamics; temperature control elements; temperature measurements; thermal capacitances; thermal network; thermal resistance; transient improvement; undirected graph; walls; Buildings; Capacitance; Heat transfer; Resistance heating; Steady-state; Thermal resistance;
fLanguage
English
Publisher
ieee
Conference_Titel
Decision and Control (CDC), 2012 IEEE 51st Annual Conference on
Conference_Location
Maui, HI
ISSN
0743-1546
Print_ISBN
978-1-4673-2065-8
Electronic_ISBN
0743-1546
Type
conf
DOI
10.1109/CDC.2012.6426676
Filename
6426676
Link To Document