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Recent Developments in Microwave Joining

Published online by Cambridge University Press:  29 November 2013

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Ceramic joining has become an area of widespread and increasing engineering importance as the aerospace, automotive, chemicals, metals, and utilities industries seek improved performance at higher temperature and in more corrosive service environments. The brittle nature of ceramics, the difficulty of fabricating near net-shape components, the expense of ceramic machining (requiring diamondtipped cutting tools), and the lack of reliable in-process nondestructive evaluation (NDE) methods have driven the development of a variety of joining techniques. This article discusses recent advances in ceramic joining using microwave energy as a fast, efficient means to obtain joints indistinguishable from as received material.

Ceramic materials of engineering interest include oxides such as Al2O3 and Al6Si2O13 (mullite), Si3N4, and SiC. Joining applications include attachment of components such as piston liners, combustor cans and turbine rotors in high-efficiency engines; fabrication of tube assemblies for high-temperature, high-pressure heat exchangers and temperature and corrosion resistant radiant burners; and installation of hermetic seals for vacuum system components. The most common joints are mechanical attachments which take advantage of the coefficient of thermal expansion (CTE) difference between ceramics and metals. Ceramic-ceramic and ceramicmetal joining methods using metallic, glassy, and glass-ceramic interlayers and diffusion bonding have also been successfully demonstrated in recent years.

The ability to provide rapid and volumetric heating of the parts to be joined makes microwave joining attractive. The feasibility and simplicity of this approach was first demonstrated at Los Alamos National Laboratory in 1985 by Meek and Blake, who used a home microwave oven to join Al2O3 to itself and to metal with a borosilicate glass interlayer.

Type
Microwave Processing of Materials
Copyright
Copyright © Materials Research Society 1993

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References

1.Schwartz, M.M., Ceramic Joining (ASM International, Materials Park, OH, 1990).Google Scholar
2.Watkins, R.D., in Engineered Materials Hand-book, Volume 4: Ceramics and Glasses (ASM International, Materials Park, OH, 1991) p. 478.Google Scholar
3.Palaith, D. and Silberglitt, R., Ceram. Bull. 68 (9) (1989) p. 1601.Google Scholar
4.Mizuhara, H., Huebel, E., and Oyama, T., in Reference 3, p. 1594.Google Scholar
5.Bates, C.H., Foley, M.R., Rossi, G.A., Sundberg, G.J., and Wu, F.J., Ceram. Bull. 69 (3) (1990) p. 350.Google Scholar
6.Loehman, R.E. and Tomsia, A.J., Ceram. Bull. 67 (2) (1988) p. 375.Google Scholar
7.DeLeeuw, D., J. Am. Ceram. Soc. 75 (3) (1992) p. 725.CrossRefGoogle Scholar
8.Intrater, J., Machine Design Magazine 61 (24) (1989) p. 95.Google Scholar
9.Meek, T.T. and Blake, R.D., U.S. Patent Nos. 4,529,856 and 4,529,857 (July 16, 1985).Google Scholar
10.Palaith, D., Silberglitt, R., Wu, C.C.M., Kleiner, R., and Libelo, E.L., in Microwave Processing of Materials, edited by Sutton, W.H., Brooks, M.H., and Chabinsky, I.J. (Mater. Res. Soc. Symp. Proc. 124, Pittsburgh, PA, 1988) p. 255.Google Scholar
11.Fukushima, H., Yamanaka, T., and Matsui, M., in Reference 10, p. 267.Google Scholar
12.Bertaud, A.J. and Badot, J.C., J. Microwave Power 11 (4) (1976) p. 315; J.C. Badot, PhD thesis, L'université Pierre et Marie Curie, 1977.CrossRefGoogle Scholar
13.Sa'adaldin, H.S., Black, W.M., Ahmad, I., and Silberglitt, R., in Microwave Processing of Materials III, edited by Beatty, R.L., Sutton, W.H., and Iskander, M.F. (Mater. Res. Soc. Symp. Proc. 269, Pittsburgh, PA, 1992) p. 91.Google Scholar
14.Sa'adaldin, H.S., Black, W.M., Tian, Y.L., Ahmad, I., and Silberglitt, R., in Microwaves:Theory and Application in Materials Processing II, edited by Clark, D.E., Laia, J.R., and Tinga, W. (Am. Ceram. Soc., Ceram. Trans. 36, Westerville, OH, October, 1993).Google Scholar
15.A.S. De, , Ahmad, I., Whitney, E.D., and Clark, D.E., in Microwaves: Theory and Application in Materials Processing, edited by Clark, D.E., Gac, F.D., and Sutton, W.H. (Am. Ceram. Soc., Ceram. Trans. 21, Westerville, OH, 1991) p. 319.Google Scholar
16.Prochazka, S., in Proceedings of the Conference on Ceramics for High Performance Applications, edited by Burke, J.J., Gorum, A.E., and Katz, R.M. (Brook Hill, 1975) p. 239.Google Scholar
17.Iseki, T., Kameda, T., and Maruyama, T., J. Mater. Sci. 19 (1984) p. 1692.CrossRefGoogle Scholar
18.Silberglitt, R., Palaith, D., Black, W.M., Sa'adaldin, H.S., Katz, J.D., and Blake, R.D., in Microwaves: Theory and Application in Materials Processing, edited by Clark, D.E., Gac, F.D., and Sutton, W.H. (Am. Ceram. Soc., Ceram. Trans. 21, Westerville, OH, 1991) p. 487.Google Scholar
19.Yiin, T-Y., Varadan, W., Varadan, V.K., and Conway, J.C., in Reference 18, p. 507.Google Scholar
20.Ahmad, I., Black, W.M., and Silberglitt, R., Ceram. Eng. Sci. Proc. 13 (7,8) (1992) p. 520.Google Scholar
21.Ahmad, I., Silberglitt, R., Black, W.M., Sa'adaldin, H.S., and Katz, J.D., in Reference 13, p. 271.Google Scholar
22.Ahmad, I., Silberglitt, R., Black, W.M., Sa'adaldin, H.S., Tian, Y.L., and Katz, J.D., in Reference 14 (in press).Google Scholar