Combined electromechanical impedance and fiber optic diagnosis of aerospace structures

被引:1
|
作者
Schlavin, Jon [1 ]
Zagrai, Andrei [1 ]
Clemens, Rebecca [1 ]
Black, Richard J. [2 ]
Costa, Joey [2 ]
Moslehi, Behzad [2 ]
Patel, Ronak [2 ]
Sotoudeh, Vahid [2 ]
Faridian, Fereydoun [2 ]
机构
[1] New Mexico Inst Min & Technol, Dept Mech Engn, 801 Leroy Pl,124 Weir Hall, Socorro, NM 87801 USA
[2] Intelligent Fiber Opt Syst CorpY, IFOS, Santa Clara, CA 95054 USA
关键词
aircraft structural dynamics; electromechanical impedance; aircraft non-destructive evaluation; high frequencies; strain measurements; fiber optic sensors; FBG;
D O I
10.1117/12.2046620
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Electromechanical impedance is a popular diagnostic method for assessing structural conditions at high frequencies. It has been utilized, and shown utility, in aeronautic, space, naval, civil, mechanical, and other types of structures. By contrast, fiber optic sensing initially found its niche in static strain measurement and low frequency structural dynamic testing. Any low frequency limitations of the fiber optic sensing, however, are mainly governed by its hardware elements. As hardware improves, so does the bandwidth (frequency range * number of sensors) provided by the appropriate enabling fiber optic sensor interrogation system. In this contribution we demonstrate simultaneous high frequency measurements using fiber optic and electromechanical impedance structural health monitoring technologies. A laboratory specimen imitating an aircraft wing structure, incorporating surfaces with adjustable boundary conditions, was instrumented with piezoelectric and fiber optic sensors. Experiments were conducted at different structural boundary conditions associated with deterioration of structural health. High frequency dynamic responses were collected at multiple locations on a laboratory wing specimen and conclusions were drawn about correspondence between structural damage and dynamic signatures as well as correlation between electromechanical impedance and fiber optic sensors spectra. Theoretical investigation of the effect of boundary conditions on electromechanical impedance spectra is presented and connection to low frequency structural dynamics is suggested. It is envisioned that acquisition of high frequency structural dynamic responses with multiple fiber optic sensors may open new diagnostic capabilities for fiber optic sensing technologies.
引用
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页数:13
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