Recent Advances in Microwave and Millimeter-Wave Processing of Materials
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Published:2007-03
Issue:
Volume:539-543
Page:3249-3254
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ISSN:1662-9752
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Container-title:Materials Science Forum
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language:
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Short-container-title:MSF
Author:
Lewis III D.1, Imam M. Ashraf2, Fliflet Arne W.2, Bruce Ralph W.2, Kurihara L.K.2, Kinkead A.K.3, Lombardi M.3, Gold Steven H.2
Affiliation:
1. Naval Research Laboratory 2. U.S. Naval Research Laboratory 3. Icarus Research Inc.
Abstract
We are using 2.45 GHz (S-Band) microwave systems and an 83-GHz, gytrotron-based,
millimeter-wave beam system in material processing and other areas. We use one 2.45 GHz system
in preparation of nanophase metals, metal mixtures and metal oxides, via the patented continuous
microwave polyol process, with potential for large scale, low cost production. Of interest are
precious metals, mixtures of magnetic and nonmagnetic metals, and mixed metal oxides for ceramic
precursors. The other S-Band systems are used to develop repair techniques for ceramic matrix
composites where the repairs are heated to 200-1000°C. A portable, battery-powered system is
being developed for field repairs, and promises to be much more practical than alternative
approaches (e.g., heating blankets). The 83-GHz system is being used in rapid sintering of
polycrystalline ceramic materials intended for use in high power solid state lasers, where the
requirement if for sintering to transparency with high optical quality and good lasing efficiency.
Transparent Yb-doped yttria has been produced with hybrid conventional/millimeter-wave sintering
of nanophase powders, as well as theoretically dense YAG. Another application for the millimeterwave
beam system is in consolidation and bonding of hard coatings to light alloys, such as SiC on
titanium, where the beam system allows heating of the coating to very high temperatures without
overheating the metallic substrate. Finally, the millimeter-wave system is being used in the
development of millimeter-wave plasma-assisted diamond deposition, where the quasi-optical
system has significant advantages over conventional microwave plasma-assisted diamond
deposition. Results for these various areas will be presented and discussed.
Publisher
Trans Tech Publications, Ltd.
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science
Reference19 articles.
1. D. Lewis III, L. K. Kurihara, R. W. Bruce, R. L. Bruce, A. W. Fliflet and S. H. Gold, Continuous Production of Nanophase Metals, Metal Oxides and Mixtures Using a Microwave-Driven Polyol Process, 294-301 in Bridging Science, Technology and Applications, Proc. of the 4th World Congress on Microwave and Radio Frequency Applications, Ed. R. Schulz and D. Folz, Microwave Working Group, Arnold, MD (2005). 2. R. W. Bruce, R. L. Bruce, D. Lewis III, S. H. Gold, M. Kahn, A. K. Kinkead and A. W. Fliflet, Reactive Oxide Braze Joining of Ceramic Tubes with a High-Power 83-GHz Millimeter-Wave Beam System, Ibid 133-141. 3. D. Lewis, R. W. Bruce, A. W. Fliflet, S. H. Gold, A. K. Kinkead, M. Lombardi, R. L. Bruce and G. M. Briggs, Microwave Curing of Ceramic Composite Repair Materials, " to be published in Proceedings of the 29 th Annual Conference on Advanced Ceramics and Composites, The American Ceramic Society Inc., Westerville, OH, 2005. 4. L. K. Kurihara, R. W. Bruce, A. W. Fliflet, and D. Lewis, "Processing of Nanocrystalline Metallic Powders and Coatings Using the Polyol Process, U. S. Patent No. 6, 746, 510 (2004). 4. D. Lewis, A. W. Fliflet, R. W. Bruce, Removing Radar Absorbing Coatings, U. S. Patent No. 6, 802, 907 (2004). 5. D. Lewis, R. W. Bruce, A. W. Fliflet, S. H. Gold, and L. K. Kurihara, "Microwave-Assisted Continuous Synthesis of Nanocrystalline Powders and Coatings Using the Polyol Process, U. S. Patent No. 6, 833, 019 (2004).
Cited by
9 articles.
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