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Defense Intelligence Reference Document High-Frequency Gravitational Wave Communications

Defense Intelligence Agency · 57 pages · text from the file's own layer

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.

  • p. 5 …with the advantage that they cannot be shielded or shadowed by planetary masses. Plasma interference seen…
  • p. 21 …The PPF signal can be intercepted by electromagnetic-interference-shielded microwave receivers located on the x…
  • p. 25 …High-sensitivity shielded microwave receivers are located at each end of the x-axis each about…
  • p. 37 …for solar monitoring, whereas L2 is permanently shielded from the sun. 4.0 Future Potential 4…
  • p. 38 …being able to pierce the protective plasma shielding that may in the future be routinely used…
  • p. 39 …aid for interplanetary missions (with no planetary shielding) by mapping geoids in interplanetary space via long…
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3.4.1 Propagating Signals From Optical Lattice Clocks for Timing
The 1 part in 10 18 measurement precision of optical lattice clocks will be affected by
general relativity effects, in other words propagation delays due to gravitational field
gradients will be readily measureable. "It will make us think a little harder about what
we really mean by time," Kleppner (2008). In effect, measuring the propagation delays
at this level allows very fine measurement of the "geoids," or surfaces of constant
gravity, surrounding planets and inhabiting interplanetary and interstellar space. The
delay experienced by RF waves could therefore be precisely compared with the
propagation delay experienced by gravitational waves, which are not as strongly
affected by the presence of mass. Such a differential propagation delay comparison
(between RF & GW) could lead to an important new technology in the mapping of
geoids, which could for instance be applied to the problem of mapping the positions of
the Lagrangian points, which vary slightly over time.
3.4.2 In Navigating and Mapping Interplanetary Geoids
The importance of locating and navigating to Lagrangian points is well established
(Baker, 1967). See Figure 23 for a depiction of the Earth's Lagrangian points and their
uses.
Gravity holes
The Earth and 5un'5 gravitational field5 balance at five Lagrangian point5, Ll to LS. Later this year the~ TEREO A and B
5pacecraft will explore the L4 and L5 region5 for the fir5t time
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Figure 23. The Earth's Associated Lagrangian Points [New Scientist, 9Feb09 and Baker (1967), p.128, Figure
2.2]
31
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Report, from the dia collection. The PDF is mirrored here; the original link is under it. 57 pages are in the text index: search them above, or from the library's search.