Documents / Report
This Defense Intelligence Reference Document was prepared by the Defense Intelligence Agency under its Advanced Aerospace Weapon System Applications (AAWSA) program, is dated 6 April 2010 and is part of a series of advanced technology reports produced in FY 2009. It reviews proposed laboratory generators and detectors of high-frequency gravitational waves for communications. It favors an infrared-excited molecules transmitter and the Li-Baker detector, estimating about 1.9 million bits per second over 7,000 km through the Earth. It also discusses timing standards and interplanetary navigation uses.
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UNCLASSIFIED//F811. 8FFll!l1Ue l!l!II!! 8111!lf Li, F. Y. and Baker, R. M L, Jr. (2007), "Detection of High-Frequency Gravitational Waves by Superconductors," 6th International Conference on New Theories, Discoveries and Applications of Superconductors and Related Materials, Sydney, Australia, January 10; International Journal of Modern Physics 21, Nos. 18-19, pp. 3274-3278. Li F.Y., Baker R. M Land Fang Z. (2007), "Coupling of an open cavity to a microwave beam: a possible new scheme for detecting high-frequency gravitational waves," after peer review accepted for the Proceedings of the AIP Space Technology and Applications Int. Forum, Albuquerque, New Mexico 880, 1139-1147. Li F. Y., Baker R. M L, Jr., Fang Z., Stephenson G.V. and Chen, Z. (2008), "Perturbative Photon Fluxes Generated by High-Frequency Gravitational Waves and Their Physical Effects," European Phys. J. C 22, Nos. 18-19, 30 July; available at http://www.d rrobertba ker. com/docs/Li-Baker% 20Ch i nese% 20 H FGW%20 Detector. pdf http://www.gravwave.com/docs/Li-Baker%206-22-08.pdf (please see Appendix C). Li, Fangyu and Yang Nan (2009), "Phase and Polarization State of High-Frequency Relic Gravitational Waves," Journal of Chinese Physics Letters (in press). Misner, C. W. Thorne, K. and Wheeler, J. A. (1973), Gravitation, W. H. Freeman and Company, New York. Ottaway, D. l. et al (1998), "A Compact Injection-Locked Nd:YAG Laser for Gravitational Wave Detection," IEE Journal of Quantum Electronic 34, Number 10, October 9. Pegoraro, F., Radicati, L.A., Bernard, .Ph. and Picasso, E. (1978), Phys. Rev. Letters A 68, p. 165. Pinto, I. P. and Rotoli, G. (1988), "Laboratory generation of gravitational waves?" Proceedings of the 8 th Italian Conference on General Relativity and Gravitational Physics, Cavlese (Trento), August 30 to September 3, World Scientific-Singapore, pp. 560-573. Romero, F. Band Dehnen, H. (1981), "Generation of gravitational radiation in the laboratory," Z. Naturforsch 36a, pp. 948-955. Rudenko, V. N. and Sazhin, M. V. (1980), "Laser interferometer as a gravitational wave detector," Sov. J. Quantum Electron 10, November, pp. 1366-1373. Rudenko, V. N. (2003), "Optimization of parameters of a coupled generator-receiver for a gravitational Hertz experiment," paper HFGW-03-113, Gravitational-Wave Conference, The MITRE Corporation, May 6-9. Shannon, C. B. (1948), Bell Systems Technical Journal, Volume 27, Number 379, p. 623. Shawhan, P. S. (2004), "Gravitational Waves and the Effort to Detect them," American Scientist 92, 356. (Explains why UGO cannot detect HFGWs.) Stephenson, G. V. (2009a), "Lessons for Energy Resonance HFGW Detector Designs Learned from Mass Resonance and Interferometric LFGW Detection Schemes," Space, Propulsion and Energy Sciences International Forum (SPESIF), 24-27 February, ed. G. 42 UNCLASSIFIED/ ,'1"91t 91"1"1!11111! l!l!il! 8111!¥
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Report, from the dia collection. The PDF is mirrored here; the original link is above. 57 pages are in the text index: search them above, or from the library's search.