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Adsorption and Kinetic Effects on Crack Growth in MnZn Ferrites

Published online by Cambridge University Press:  31 January 2011

M. A. H. Donners
Affiliation:
Laboratory of Solid State and Materials Chemistry, Eindhoven University of Technology, P.O. Box 513, 5600 MB, Eindhoven, The Netherlands
L. J. M. G. Dortmans
Affiliation:
TNO Institute of Applied Physics, P.O. Box 595, 5600 AN, Eindhoven, The Netherlands
G. de With*
Affiliation:
Laboratory of Solid State and Materials Chemistry, Eindhoven University of Technology, P.O. Box 513, 5600 MB, Eindhoven, The Netherlands
*
b)Address all correspondence to this author.
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Abstract

The variation of the fracture toughness of MnZn ferrite ceramics with varying loading rate and humidity was determined with the aid of the single edge notched beam (SENB) test. A strong decrease with increasing humidity and decreasing loading rate was observed. A model for subcritical crack growth incorporating kinetic and adsorption effects was formulated to analyze the data. The value of the adsorptioncontrolled fracture toughness was determined independently by double torsion experiments and agreed favorably with the values as determined from the SENB data using the model. The strength of the material was determined, and analysis showed a strength behavior similar to the fracture toughness behavior, as predicted by the model. The analysis presented can be used to assess the subcritical crack growth behavior using a limited number of SENB specimens.

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Articles
Copyright
Copyright © Materials Research Society 2000

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References

REFERENCES

1.Donners, M., Dortmans, L., de With, G., and de Graaf, M., J. Eur. Ceram. Soc. 17, 1591 (1997).CrossRefGoogle Scholar
2.Donners, M., de With, G., and Niemantsverdriet, J. (unpublished).Google Scholar
3.Adamson, A.W., Physical Chemistry of Surfaces (Interscience Publishers, New York, 1967).Google Scholar
4.Pollet, J-C. and Burns, S.J., Int. J. Fract. 13, 667 (1977).CrossRefGoogle Scholar
5.Krausz, A.S. and Krausz, K., Fracture Kinetics of Crack Growth (Kluwer Academic Publishers, Dordrecht, 1988).CrossRefGoogle Scholar
6.Glasstone, S., Laidler, K.J., and Eyring, H., The Theory of Rate Processes (McGraw-Hill, New York, 1941).Google Scholar
7.Lawn, B., Fracture of Brittle Solids, Second edition (Cambridge University Press, Cambridge, United Kingdom, 1993).CrossRefGoogle Scholar
8.Srawley, J.E., Int. J. Fract. 12, 475 (1976).CrossRefGoogle Scholar
9.Brown, W.F. and Srawley, J.E., ASTM Spec. Tech. Publ. 410, 12 (1966).Google Scholar
10.Fuller, E.R., ASTM Spec. Tech. Publ. 678, 3 (1979).Google Scholar
11.Pletka, B.J., Fuller, E.R., and Koepke, B.G., ASTM Spec. Tech. Publ. 678, 19 (1979).Google Scholar
12.Williams, D.P. and Evans, A.G., J. Test. Eval. 1, 264 (1973).CrossRefGoogle Scholar
13.Virkar, A.V. and Johnson, D.L., J. Am. Ceram. Soc. 59, 197 (1976).CrossRefGoogle Scholar
14.Bruce, J.G. and Koepke, B.G., J. Am. Ceram. Soc. 60, 284 (1977).CrossRefGoogle Scholar
15.Li, L., Weick, J.M., and Pabst, R.F., Ber. Dt. Keram. Ges. 57, 5 (1980).Google Scholar
16.Kadouch, O., Ph.D. Thesis, ENSR Paris, France (1993).Google Scholar
17.Pabst, R.F. and Weick, J.M., J. Mater. Sci. Lett. 16, 836 (1981).Google Scholar
18.Duncan, W.J., Beales, K.J., Cooper, D.M., Dunn, P.L., Herman, M., Rush, J.D., and Thomas, G.R., in Fiber Optics in Adverse Environments (Proceedings of SPIE, Bellingham, WA, 1984), Vol. 2 pp. 134138.CrossRefGoogle Scholar
19.Armstrong, J.L., Matthewson, M.J., and Kurkjian, C.R., in Abstract Book, 100th Annual Meeting, American Ceramic Society, Abstract SXVII-004–98 (1998).Google Scholar
20.Sakaguchi, S. and Kimura, T., J. Am. Ceram. Soc. 64, 259 (1981).CrossRefGoogle Scholar
21.Muraoka, M., Ebata, K., and Abé, H., J. Am. Ceram. soc. 76, 1545 (1993).CrossRefGoogle Scholar
22.Mood, A.M., Graybill, F.A., and Boes, D.C., Introduction to the Theory of Statistics, 3rd ed. (McGraw-Hill, New York, 1974).Google Scholar
23.Leerers, P.S., J. Mater. Sci. 17, 2469 (1982).CrossRefGoogle Scholar
24.Beauchamp, E.K. and Monroe, S.L., J. Am. Ceram. Soc. 72, 1179 (1989).CrossRefGoogle Scholar
25.Takahashi, H., Iwaya, H., and Yamasaki, T., in Ferrites, Proceedings of the 6th International Conference on Ferrites (ICF6) (The Japan Society of Powder and Powder Metallurgy, Tokyo, 1992, p. 309.Google Scholar