Integrity evaluation of glass-fiber composites with varied fiber/matrix interfacial strength using acoustic emission

Citation
H. Suzuki et al., Integrity evaluation of glass-fiber composites with varied fiber/matrix interfacial strength using acoustic emission, NDT E INT, 33(3), 2000, pp. 173-180
Citations number
18
Categorie Soggetti
Material Science & Engineering
Journal title
NDT & E INTERNATIONAL
ISSN journal
09638695 → ACNP
Volume
33
Issue
3
Year of publication
2000
Pages
173 - 180
Database
ISI
SICI code
0963-8695(200004)33:3<173:IEOGCW>2.0.ZU;2-0
Abstract
An advanced acoustic emission analysis method was used to study the dynamic s and sequence of microfractures in uni-directional glass-fiber reinforced plastics (UD-GFRPs). UD-GFRPs (60 wt% fiber) with different interfacial qua lities were prepared by adding a small amount (4 or 8 wt%) of paraffin wax into vinylester matrix without affecting much the mechanical properties of the matrix. The orientation dependence of both the P-wave velocity and atte nuation were accurately measured by the laser ultrasonic method, and incorp orated into the acoustic emission analysis of visco-elastic media. The anal ysis iteratively compares the acoustic emission signals (measured as out-of -plane displacements) with theoretical waveforms calculated assuming the ti me history and type of an acoustic emission source. The waveform simulation allows us to estimate the fracture dynamics and the sequence of the Mode-I fiber fracture (Type 1), Mode-I debonding (Type 2) and Mode-II disbonding (Type 3). The fiber fracture in UD-GFRPs without wax started at 0.1% strain . The initiation strain increased to 0.25 and 0.3% in the specimens with wa x. The specimens with lower interfacial strength showed rapid succession of microfractures at higher stresses (above 100-200 MPa). Fracture dynamics s howed distinct differences by wax addition. Using the present analysis meth od, we can determine quantitatively effects of interfacial quality on the m icrofracture processes and assess the integrity of UD-GFRPs. (C) 2000 Elsev ier Science Ltd. All rights reserved.