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Defense Intelligence Reference Document Negative Mass Propulsion

Defense Intelligence Agency · 43 pages · text from the file's own layer

This Defense Intelligence Reference Document from the Defense Intelligence Agency is dated 3 January 2011. It was produced under the Advanced Aerospace Weapon System Applications (AAWSA) Program as part of a series of advanced technology reports. The report asks whether negative mass exists and whether it could be used for propulsion. It concludes that one route might be an ultra-light form of matter that could have gathered at the Moon's center. Reaching it would take a tunnel dug with thermonuclear shape charges.

UNCLASSIFIED//FIHl 8FFHil.t.k Wfili IH.k\f
m ,f
otp ~ --:yv • ds
' (97)
In the hydrodynamic interpretation suggested by the Planck aether hypothesis, the
phase shifts caused by either the magnetic or the gravitational vector potential result
from a circular flow of the Planck aether. The principle of equivalence can precisely
relate this circular flow to the angular velocity of a rotating platform. According to (93),
one has for the gravitational vector potential in a rotating frame of reference
A= -rocr
with the phase shift given by (97). One can apply (97) to the Sagnac effect for photons
of frequency v. By putting mc2 = hv = 2;rhu, with the result that
2ITI> fo((} = --. v · ds
c- .
~ 2 2;rv
b(f) = 20Jrrr -,-
c
the same as predicted by quantum mechanics.
(97)
We now compute the phase shift (85) by a magnetic vector potential. To make a
comparison with the gravitational vector potential in the Sagnac effect, we consider the
magnetic field produced by an infinitely long cylindrical solenoid of radius R. Inside the
solenoid the field is constant, vanishing outside. If the magnetic field inside the solenoid
is H, the vector potential is
I
A =-Hr,, 2 rR. (98)
According to (85) the vector potential on a closed path leads to the phase shift
27
UNCLASSIFIED/ ,'P81l 81'1'1@111it 1!1!11!! 8HLV

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Report, from the dia collection. The PDF is mirrored here; the original link is above. 43 pages are in the text index: search them above, or from the library's search.