DocumentCode :
582730
Title :
A CFD-based test method for control of indoor environment in air-conditioned rooms
Author :
Li, Kangji ; Su, Hongye ; Chu, Jian
Author_Institution :
Inst. of Cyber-Syst. & Control, Zhejiang Univ., Hangzhou, China
fYear :
2012
fDate :
25-27 July 2012
Firstpage :
6933
Lastpage :
6937
Abstract :
Because of the complexity of the indoor dynamic thermal environment, several kinds of simplified surrogate models, such as zone model and proper orthogonal decomposition (POD) based reduced-order model, have been developed for fast simulation and control purpose. To test and calibrate the performance of such models, a computational fluid dynamics (CFD) based test method is presented in this paper. The proposed virtual test model combines a CFD-based air-conditioned room with a single neuron adaptive PID controller, which is programmed using the user-defined function and embedded in the CFD model. Additionally, a space temperature offset model is developed using least squares estimation (LSE). This offset model is used to compensate the temperature difference between actual sensor locations and occupied zones. Test studies not only show the great interoperation between the PID controller and the CFD simulation but also demonstrate the acceptable accuracy of the LSE-based temperature estimation.
Keywords :
adaptive control; air conditioning; compensation; computational fluid dynamics; indoor environment; least squares approximations; neurocontrollers; temperature control; three-term control; CFD simulation; CFD-based air-conditioned room; CFD-based test method; LSE-based temperature estimation; POD based reduced-order model; computational fluid dynamics; indoor dynamic thermal environment; indoor environment control; least squares estimation; proper orthogonal decomposition; single neuron adaptive PID controller; space temperature offset model; temperature control; temperature difference compensation; user-defined function; virtual test model; zone model; Adaptation models; Atmospheric modeling; Equations; Mathematical model; Neurons; Temperature control; Temperature sensors; CFD; PID; single neuron; system simulation; temperature control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control Conference (CCC), 2012 31st Chinese
Conference_Location :
Hefei
ISSN :
1934-1768
Print_ISBN :
978-1-4673-2581-3
Type :
conf
Filename :
6391161
Link To Document :
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