Strength Prediction of Ceramic Components Under Complex Stress States
Author:
Peralta A. D.1, Wu D. C.1, Brehm P. J.1, Cuccio J. C.1, Menon M. N.1
Affiliation:
1. AlliedSignal Engines, Phoenix, AZ 85034
Abstract
The capability to perform accurate fast-fracture strength predictions for ceramic components under complex stress states must be available in order to transition the use of advanced, high-strength ceramic materials from the laboratory to the high-strength/high-temperature applications they are intended for. Multiaxial strength prediction theories have provided the prediction capabilities, but only limited testing of these theories under complex states of stress and stress gradient conditions has been performed previously. Presented here are comprehensive test results and strength predictions for ceramic components subjected to complex states of stress and stress gradient conditions. The results show excellent agreement of the predictions from the multiaxial theories with test results for volumetrically distributed flaws. An important finding of this work is the problem that arises in performing component surface strength predictions from database-type specimens. Database-type specimens and component surface properties are not necessary correlated, and in many cases it may be completely inaccurate to use database-type specimen surface properties for component surface strength predictions.
Publisher
ASME International
Subject
Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering
Reference14 articles.
1. Batdorf
S. B.
, and CroseJ. G., 1974, “A Statistical Theory for the Fracture of Brittle Structures Subjected to Nonuniform Polyaxial Stresses,” ASME Journal of Applied Mechanics, Vol. 41, pp. 459–464. 2. Batdorf
S. B.
, and HeinischH. L., 1978, “Weakest Link Theory Reformulated for Arbitrary Failure Criterion,” Journal of the American Ceramic Society, Vol. 61, Nos. 7–8, pp. 355–358. 3. Cox, D. R., and Oakes, D., 1984, Analysis of Survival Data, Chapman and Hall, NYC, Chapter 3.3. 4. Cuccio, J. C., Peralta, A. D., Wu, D. C., Fang, H. T., Brehm, P. J., Menon, M., N., Strangman, T., Meade, W., and Wade, J., 1994, Life Prediction Methodology for Ceramic Components of Advanced Heat Engines Phase I Final Report, Dept. of Energy/Oak Ridge Natl. Laboratory Report No. ORNL/Sub/89-SC674/1/V1 and V2, March 1995; Report No. 31-11591 (two volumes), AlliedSignal Engines, Phoenix, Arizona, Mar. 1. 5. Efrom
B.
, and TibshiriamiR., 1986, “Bootstrap Methods for Standard Errors, Confidence Intervals, and Other Measures of Statistical Accuracy,” Statistical Science, Vol. 1, pp. 54–57.
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