CYCLIC FATIGUE-CRACK PROPAGATION IN A SILICON-CARBIDE WHISKER-REINFORCED ALUMINA COMPOSITE - ROLE OF LOAD RATIO

Citation
Rh. Dauskardt et al., CYCLIC FATIGUE-CRACK PROPAGATION IN A SILICON-CARBIDE WHISKER-REINFORCED ALUMINA COMPOSITE - ROLE OF LOAD RATIO, Journal of Materials Science, 28(12), 1993, pp. 3258-3266
Citations number
38
Categorie Soggetti
Material Science
ISSN journal
00222461
Volume
28
Issue
12
Year of publication
1993
Pages
3258 - 3266
Database
ISI
SICI code
0022-2461(1993)28:12<3258:CFPIAS>2.0.ZU;2-S
Abstract
The characteristics of subcritical crack growth by cyclic fatigue have been examined in a silicon carbide whisker-reinforced alumina composi te, with specific reference to the role of load ratio (ratio of minimu m to maximum applied stress intensity, R = K(min)/K(max)); results are compared with similar subcritical crack-growth data obtained under co nstant load conditions (static fatigue). Using compact-tension samples cycled at ambient temperatures, cyclic fatigue-crack growth has been measured over six orders of magnitude from approximately 10(-11)-10(-5 ) m cycle-1 at load ratios ranging from 0.05-0.5. Growth rates (da/dN) display an approximate Paris power-law dependence on the applied stre ss-intensity range (DELTAK), with an exponent varying between 33 and 5 0. Growth-rate behaviour is found to be strongly dependent upon load r atio; the fatigue threshold, DELTAK(TH), for example, is found to be i ncreased by over 80% at R = 0.05 compared to R = 0.5. These results ar e rationalized in terms of a far greater dependency of growth rates on K(max) (da/dN is-proportional-to K(max)30 compared to DELTAK(da/dN is -proportional-to DELTAK5), in contrast to fatigue behaviour in metalli c materials where generally the reverse is true. Micromechanisms of cr ack advance underlying such behaviour are discussed in terms of time-d ependent crack bridging involving either matrix grains or unbroken whi skers.