Statistical damage classification under changing environmental and operational conditions

被引:201
作者
Sohn, H
Worden, K
Farrar, CR
机构
[1] Los Alamos Natl Lab, Los Alamos, NM 87545 USA
[2] Univ Sheffield, Dept Mech Engn, Sheffield, S Yorkshire, England
关键词
damage detection; time series analysis; neural network; hypothesis testing; environmental and operational variations;
D O I
10.1106/104538902030904
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Stated in its most basic form, the objective of damage diagnosis is to ascertain simply if damage is present or not based on measured dynamic characteristics of a system to be monitored. In reality, structures are subject to changing environmental and operational conditions that affect measured signals, and environmental and operational variations of the system can often mask subtle changes in the system's vibration signal caused by damage. In this paper, a unique combination of time series analysis, neural networks, and statistical inference techniques is developed for damage classification explicitly taking into account these ambient variations of the system. First, a time prediction model called an autoregressive and autoregressive with exogenous inputs (AR-ARX) model is developed to extract damage-sensitive features. Then, an autoassociative neural network is employed for data normalization, which separates the effect of damage on the extracted features from those caused by the environmental and vibration variations of the system. Finally, a hypothesis testing technique called a sequential probability ratio test is performed on the normalized features to automatically infer the damage state of the system. The usefulness of the proposed approach is demonstrated using a numerical example of a computer hard disk and an experimental study of an eight degree-of-freedom spring-mass system.
引用
收藏
页码:561 / 574
页数:14
相关论文
共 31 条
[1]  
ALLEN DW, 2002, SPIES 7 ANN INT S ND
[2]  
Box G.E. P., 1994, Time Series Analysis: Forecasting Control, V3rd
[3]  
CAWLEY P, 1997, P DAMAS 97 STRUCT DA, P1
[4]  
CIOARA TG, 2000, EUR COST F3 C SYST I, P333
[5]  
Cybenko G., 1989, Mathematics of Control, Signals, and Systems, V2, P303, DOI 10.1007/BF02551274
[6]  
Farrar C.R., 1994, DYNAMIC CHARACTERIZA
[7]   APPLICATION OF KARHUNEN-LOEVE EXPANSION TO FEATURE SELECTION AND ORDERING [J].
FUKUNAGA, K ;
KOONTZ, WLG .
IEEE TRANSACTIONS ON COMPUTERS, 1970, C 19 (04) :311-&
[8]  
Fukunaga K., 1990, INTRO STAT PATTERN R
[9]  
Ghosh B. K., 1970, SEQUENTIAL TESTS STA
[10]   SEQUENTIAL PROBABILITY RATIO TEST FOR NUCLEAR-PLANT COMPONENT SURVEILLANCE [J].
GROSS, KC ;
HUMENIK, KE .
NUCLEAR TECHNOLOGY, 1991, 93 (02) :131-137