DocumentCode
884066
Title
Characterizing System Health Using Modal Analysis
Author
Scott, Andrew R.
Author_Institution
Dept. of Electr. Eng., Alabama A&M Univ., Huntsville, AL
Volume
58
Issue
2
fYear
2009
Firstpage
297
Lastpage
302
Abstract
In support of the condition-based maintenance (CBM) philosophy, a theoretical framework and algorithmic methodology for obtaining useful diagnostic and prognostic data from small-scale electromechanical systems is developed. The methods are based on vibration and modal analyses of the physical components. To illustrate the concept of the derived process, an example circuit card is considered. Models are created using finite-element analysis (FEA) techniques and analyzed to determine fundamental mode shapes and vibration frequencies. Simulations are initially conducted on an unadulterated benchmark model. Various fault conditions and cracks that are typical of the modeled circuit card are inserted. Additionally, cracks of increasing length are introduced to simulate dynamic crack growth, representing a deteriorating system. The simulation results yielded vibration modes characteristic of undamaged, faulty, and deteriorating systems. The altered natural frequency response signatures derived from each test signal vector for systems with existing faults and under progressive cracking are compared with the normal operation benchmark signature. An O(NmiddotlogN) correlation technique is utilized for discrimination. Application of the developed techniques proved useful in characterizing system health by identifying both faulty and deteriorating conditions of the example component.
Keywords
acoustic signal processing; condition monitoring; cracks; fault diagnosis; finite element analysis; modal analysis; vibrations; circuit card; condition-based maintenance; correlation technique; deteriorating system; dynamic crack growth; finite-element analysis techniques; modal analysis; natural frequency response signatures; progressive cracking; small-scale electromechanical systems; system health characterization; vibration frequencies; Diagnostic expert systems; finite-element methods; maintenance; modeling; signal processing; simulation;
fLanguage
English
Journal_Title
Instrumentation and Measurement, IEEE Transactions on
Publisher
ieee
ISSN
0018-9456
Type
jour
DOI
10.1109/TIM.2008.2005961
Filename
4639476
Link To Document