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Low Pressure Thermal Deposition of Metal Matrix Composites

Published online by Cambridge University Press:  21 February 2011

T. N. Meyer
Affiliation:
Aluminum Co. of America, Alcoa Laboratories, Alcoa Center, PA 15069
J. R. Auhl
Affiliation:
Aluminum Co. of America, Alcoa Laboratories, Alcoa Center, PA 15069
A. I. Kahveci
Affiliation:
Aluminum Co. of America, Alcoa Laboratories, Alcoa Center, PA 15069
S. A. Jones
Affiliation:
Aluminum Co. of America, Alcoa Laboratories, Alcoa Center, PA 15069
L. M. Angers
Affiliation:
Aluminum Co. of America, Alcoa Laboratories, Alcoa Center, PA 15069
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Abstract

The combination of broad materials flexibility and rapid solidification rates achievable during controlled thermal deposition processes provide material designers with exciting new opportunities. Titanium and aluminum alloys have been melted and deposited as dense (90%) sheet and foil products in a controlled low pressure, inert atmosphere chamber. A high frequency (rf) plasma torch is used for a wide range of powder feed sizes. Conversions of powder to deposit have exceeded 90% yields. The deposition chamber accommodates a 1.2 m diameter by 1.2 m wide rotating mandrel. The mandrel drive system and torches are controlled to achieve uniform deposit thickness and effective heat extraction.

To produce composite products, the programmable mandrel drive has been coupled with a continuous filament feed system to achieve precise spacing of fiber reinforcements. Initial fiber winding and matrix deposition trials utilized surrogate metal fibers, IN909 and stainless steel, until suitable high strength ceramic fibers became available. The spectrum of materials included metal/metal composites and particulate reinforced matrices. Deposits were characterized with respect to density, composition and metallurgical structure. Aluminum deposits were hot rolled to full density. Preliminary mechanical properties were determined. An overview of Alcoa work to date will be presented and some future composite materials synthesis opportunities will be described.

Type
Research Article
Copyright
Copyright © Materials Research Society 1991

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References

REFERENCES

1. Griffith, W. M., Sanders, R. E. Jr., and Hildeman, G. J., in High Strength Powder Metallurgy Aluminum Alloys, edited by Koczak, M. J. and Hildeman, G. J. (The Metallurgical Society of AIME, 1982), p. 209.Google Scholar
2. Siemers, P. A., Jackson, M. R., Mean, R. L. and Rairden, J. R. III, in Ceramic Engineering and Science Proceedings, Vol.6, No. 7–8, July - August 1985 (The American Ceramic Society), pp. 896–907.Google Scholar
3. Smith, R. W. and Crawmer, D. in Thermal Spray Coating Technology and Application Course, 1990 ASM International Materials Engineering Institute, February 1990.Google Scholar
4. EI-Hage, M., Mostaghami, J. and Boulos, M. I. in Journal of Applied Physics, 65 (11), 1 June 1989, pp. 41784185 Google Scholar
5. Van Vlack, Lawrence H., Elements of Materials Science and Engineering, Addison Wesley, Reading, MA, 1985, p. 270.Google Scholar
6. Kim, Y. W., in Dispersion Strengthened Aluminum Alloys, edited by Kim, Y. W. and Griffith, W. M. (The Metallurgical Society, 1988), p. 157.Google Scholar
7. Ayer, R., Angers, L. M., Mueller, R. R., Scanion, J. C. and Klein, C. F., Met. Trans.A 19A, 1645 (1988).Google Scholar