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This Defense Intelligence Reference Document, DIA-08-1004-004, is dated 6 April 2010. The Acquisition Support Division of the Defense Intelligence Agency's Defense Warning Office prepared it as one in a series of advanced technology reports from FY 2009 under the Advanced Aerospace Weapon System Applications Program. It reviews the physics of traversable wormholes and flat-faced "stargate" solutions, and it covers how negative energy might be generated in the laboratory. It concludes that the key technical challenge is identifying and producing exotic matter.
From the source:Release of 2026-09-18 Incident: 4/6/10, Las Vegas, Nevada. Released with redactions. This document is a Defense Intelligence Reference Document (DIRD), a technical reference format used by the Defense Intelligence Agency (DIA) to capture baseline knowledge on a specific topic for later analytic use. DIRDs are best understood as reference and synthesis products rather than as original research. It is one of 38 DIRDs produced under the Advanced Aerospace Weapon System Applications Program (AAWSAP) between 2009 and 2011. Because AAWSAP’s scope permitted a broad range of supporting topics, not every DIRD in the series directly concerns aerospace systems or future threat assessment. The following summary reflects the DIRD’s scope and framing at the time of writing and should not be read as implying current validation of the concepts discussed. This DIRD examines traversable wormholes and “stargates” as hypothetical spacetime structures within general relativity that theoretically offer a means of faster-than-light travel or communication. The report focuses extensively on the requirement for exotic, negative-energy matter to stabilize and keep such geometries open for the passage of macro-scale objects. It reviews standard wormhole models, describes a flat-throated “stargate” variant, and argues that violations of general relativity's standard energy conditions do not physically rule such structures out, citing microscopic, transient negative-energy effects observed in Casimir-type laboratory phenomena. However, the document acknowledges that the transition from microscopic quantum fluctuations to macroscopic engineering is an unresolved barrier. While small-scale negative-energy effects are observable, there is no known mechanism to generate, concentrate, or stabilize the amounts of exotic matter proposed to be required to sustain a traversable macroscopic wormhole. Ultimately, while the paper frames wormhole concepts within accepted relativistic physics, it confirms that the gap between theoretical models and any realizable technology remains enormous.
UNCLASSIFIED/ fFOA OFFI&il.t..k Y&& 8Ptk\f
where p,- is the outward radial pressure required to hold a wormhole throat open. The
Gauss-Bonnet Theorem (discussed in Section II-A) predicted this result beforehand.
Equation (11) is a result that is also due to the intrinsic nonlinearity of the general
relativistic field equation. This nonlinearity also impacts the coupling of a finite
spaceship mass with each side of a wormhole's throat (or the mouth on each side of the
throat) leading to a specialized mass conservation law for the combined system of
spacecraft and wormhole: when finite mass spaceships traverse a wormhole they alter
the (equivalent) mass of the wormhole mouths they pass through (Reference 3). The
entrance mouth absorbing the spacecraft gains ( equivalent) mass while the exit mouth
emitting it loses (equivalent) mass.11 (This mass coupling and conservation law takes
into account the possibility that spaceships traversing the wormhole may lose or gain
some momentum and kinetic energy in the process, and it is assumed that the two
mouths are sufficiently far apart that their mutual gravitational interaction is
negligible.) This unusual result suggests, but does not prove, the possibility of a
fundamental limit on the total mass that can traverse a wormhole. The coupled mass
conservation law shows that for a sufficiently large net transfer of mass the final
(equivalent) mass of the exit mouth becomes negative. This is actually a beneficial
result because ANEC violations are required just to hold the wormhole throat open in
the first place. If it appears that a runaway reaction might occur, then it would be
prudent for wormhole engineers to simply "turn off" the wormhole for a brief moment
and then "turn it back on" (i.e., "reset" the wormhole) to restart space transportation
operations.
It is on the basis of the foregoing discussion that traversable wormholes appear to be
the most viable form of FTL transport. However, one still does not know how to
construct a traversable wormhole because general relativity theory only provides a
recipe for the essential geometric and material ingredients required to open and
maintain one, but not the required assembly instructions. Will one need to pull a
traversable wormhole out of the quantum spacetime foam and enlarge it to
macroscopic scale or will there be need to use extremely large spacetime curvatures to
"punch a hole" through space? Or are there construction techniques yet to be
identified? The author is convinced that the answer can only be found through empirical
studies designed to decide whether the present general relativistic recipe is enough to
work with or an additional construction mechanism will be required.
On physical grounds Equation (10) appears to be the correct negative energy/energy
condition violation quantifier. However, further work is needed to establish whether
Equation (10) is the correct quantifier to use overall and whether all (averaged) energy
condition theorems can be extended to include it.
On another note, Borde et al. (Reference 65) have recast the QI conjecture into a new
program which seeks to study the allowed spatial distributions of negative energy
density in quantum field theory. Their study models free massless scalar fields in flat
two-dimensional Minkowski spacetime. Several explicit examples of spacetime averaged
QI were studied to allow or rule out some particular model (spatial) distributions of
negative energy. Their analysis showed that some geometric configurations of negative
energy can either be ruled out or else constrained by the QI restrictions placed upon
11 Similar coupling and conservation results hold for the case of electrically charged matter that traverse a (charged
or uncharged) wormhole.
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Official release, from the pursue collection. The PDF is mirrored here; the original link is above. 42 pages are in the text index: search them above, or from the library's search.