Title :
High frequency guided waves in a 7 wire strand: Warped Frequency Transform for spectro-temporal characterization
Author :
Marzani, A. ; De Marchi, L. ; Speciale, N. ; Rizzo, P.
Author_Institution :
Dept. of Struct. Eng., Univ. of Bologna, Bologna, Italy
Abstract :
The aim of this research is to characterize the guided waves behavior in a seven wire strand with particular interest to the dispersive waves attenuation. Here, a pilot study is carried out on a carbon-fiber-reinforced-polymer (CFRP) wire to test a new signal processing procedure aimed at the extraction of the dispersive waves attenuation. The approach uses a novel time-frequency transform (TFR) capable to isolate the dispersive behavior of a single mode from a multimodal and dispersive recorded time-waveform. This TFR, called ¿Warped Frequency Transform¿ (WFT), is based on a time-frequency domain tiling chosen to match the spectro-temporal structure of the different propagating guided waves. The WFT is used to highlight the energy content of a guided wave traveling along the wire at different locations from which its dispersive attenuation information can be extracted. Here, the longitudinal L(0,1) wave in a single CFRP wire is studied.
Keywords :
carbon fibre reinforced composites; dispersion (wave); nondestructive testing; signal processing; time-frequency analysis; transforms; waveguides; wires; CFRP wire; TFR; WFT; carbon-fiber-reinforced-polymer; dispersive attenuation information; dispersive wave attenuation; high frequency guided waves; nondestructive inspection; signal processing; spectrotemporal characterization; time-frequency domain tiling; time-frequency transform; warped frequency transform; wire strand; Attenuation; Data mining; Dispersion; Inspection; Optical pulse generation; Signal processing; Structural engineering; Testing; Time frequency analysis; Wire; Dispersive Attenuation; Group-delay Covariance; Guided Waves; Warped Frequency Transforms;
Conference_Titel :
Ultrasonics Symposium (IUS), 2009 IEEE International
Conference_Location :
Rome
Print_ISBN :
978-1-4244-4389-5
Electronic_ISBN :
1948-5719
DOI :
10.1109/ULTSYM.2009.5441827