Journal
AUTOMATION IN CONSTRUCTION
Volume 43, Issue -, Pages 49-58Publisher
ELSEVIER SCIENCE BV
DOI: 10.1016/j.autcon.2014.03.002
Keywords
AHU; BAS; Fault detection and diagnostics; Pattern Matching; Principle Component Analysis; HVAC
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This paper presents a hybrid air handling unit (AHU) fault detection strategy based on Principal Component Analysis (PCA) method and Pattern Matching method. The basic idea of the pattern matching method is to locate periods of operation from a historical data set whose operational conditions are similar to the target operating condition. The proposed Pattern Matching-PCA method uses two similarity factors, PCA similarity factors and Distance similarity factors, to characterize the degree of similarity between historical data window and current snapshot data. PCA model is then built using the historical AHU operation dataset that are identified to be similar to current snapshot operation data. The method is validated by operational data of an AHU system in real building. The results show that the sensibility of PCA models is enhanced by preprocessing the training data with the Pattern Matching method. (C) 2014 Elsevier B.V. All rights reserved.
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