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Defense Intelligence Reference Document Antigravity For Aerospace Applications

Defense Intelligence Agency · 44 pages · text from the file's own layer

This Defense Intelligence Reference Document (DIA-08-1003-018), dated 30 March 2010, was produced by the Defense Intelligence Agency as part of its FY 2009 Advanced Aerospace Weapon System Applications (AAWSA) Program. It reviews theoretical approaches to antigravity for aerospace propulsion, drawing on Newtonian physics, general relativity, cosmological dark energy and quantum vacuum effects. The report notes that no current technology can actively control gravity and that many concepts are far from practicable engineering.

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Calloni et al. further point out that a real Casimir cavity is an isolated system in which
the actual (total) resulting force is the Newtonian force on the sum of the rest-Casimir
energy and rest-mechanical mass whereby the contribution of the vacuum ZPF leads to
a gravitational repulsion (FcGcxp) on the Casimir device that is given by (Reference 62):
(25)
which is the force that should be experimentally tested. Equation (25) takes into
consideration that the contribution to the total force on a real cavity resulting from the
spatial part of the stress-energy tensor is balanced by the contribution from the
mechanical stress-energy tensor. Given that the typical dimensions of a Casimir device
are very small, it appears that Fcce,p will be very difficult, if not impossible, to measure
using present-day lab technology.
However, Calloni et al. propose an experimental device that could significantly magnify
the repulsive force up to a measurable scale. Their proposed device is a multilayered
series of rigid Casimir cavities with each cavity consisting of two thin metallic disks that
are separated by a dielectric material which is inserted to maintain rigidity. They
suggest Si02 for the dielectric material because it is an efficient dielectric with low
absorption over a wide range of frequencies, and it is an inexpensive material that is
easy to fabricate into layers. The introduction of the dielectric material is equivalent to
enlarging the optical path length by the refractive index n so that the cavity plate
separation d and. The Casimir Effect has been tested down to plate separations ~ 60
nm while separations:,; 10 nm is possible with present technology. But at:,; 10 nm
distances dielectric absorption and finite conductivity are expected to decrease the
effective Casimir pressure compared to a cavity comprised of perfect mirrors. For
example, a plate separation of 6.5 nm corresponds to a decreasing factor(:;) of 0.07 for
plates made of aluminum. Finite temperature and plate surface roughness could also
introduce additional corrections to the Casimir pressure. Calloni et al. propose to
magnify the total force by using N1 = 10 6 layers of rigid cavities with each cavity having
a diameter of 35 cm and thickness of 100 nm, for a total device thickness of 10 cm.
All these engineering factors taken together led Calloni et al. to recast Fccc,,p into the
following new form (Reference 62):
(26)
in Newtons. Calloni et al. also suggest that a feasible experiment will require
modulating Fccexr in order to obtain a measurable force. They are investigating the
possibility of modulating ½by varying the temperature in order to induce a periodic
transition from conducting state to superconducting state. They estimate that doing this
could achieve i;"'·"'"" 0.5, and thus produce a force Fccc,p ~ 10 14 Nat a modulation
20
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Report, from the dia collection. The PDF is mirrored here; the original link is above. 44 pages are in the text index: search them above, or from the library's search.