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Defense Intelligence Reference Document Positron Aerospace Propulsion

Defense Intelligence Agency · 35 pages · text from the file's own layer

This unclassified Defense Intelligence Reference Document from the Defense Intelligence Agency is dated 2 March 2010. It was produced in FY 2009 under the Advanced Aerospace Weapon System Applications (AAWSA) Program. The report reviews work on using positrons as aerospace fuel. It covers air-breathing turbojet and ramjet engines, unmanned aircraft, missiles, single-stage reusable vehicles, positron rockets and a crewed Mars mission, along with how positrons could be produced and stored. It concludes that a first positron-powered flight around the globe could be possible within 10 years.

  • p. 5 …This paper is an anthology of that work and not a general review of antimatter propulsion…
  • p. 7 …Because of the aforementioned performance bounds of combustion engines, the aeronautic industry has worked diligently to…
  • p. 13 …Defense, NASA, and the aerospace industry are working to eliminate multistage rockets for access to low…
  • p. 16 …28 In a solid-core positron rocket, positrons heat a hydrogen working fluid through an attenuating…
  • p. 18 …heated H: • Propellant-heated He • Working fluids for power • Working fluids for power systems - inert gas…
  • p. 21 …was assumed to be parabolic for this work. 38 To make the Sanger photon rocket practical…
  • p. 22 …be possible • Hot-bleed line possible Future work • Efficiency study Gas-Core Sanger Ablation 1000 - 2500…
  • p. 23 …consumption does not dominate rocket positron consumption. ◄ Work 5 Rf'!gf'l'M'rllto.- JC~ ~ 4…
  • p. 31 …What lifetimes might be expected working Figure 22. TEM of Silica Aerogel (courtesy with this material…
UNCLASSIFIED//509 QFFHiI.«1k W!il! 8ULY
Positron Aerospace Propulsion
Introduction
Antimatter is considered an extremely attractive fuel for aerospace propulsion
because of its enormous advantage in energy density over all other known
sources of energy. However, because antimatter does not occur naturally and
is unstable in the presence of matter, no vehicles have ever flown using it.
After a short overview of the various aerospace applications of antimatter, this
paper provides a detailed analysis of air-breathing turbojets and turbo-ramjet
missiles, as well as rockets for manned interplanetary missions. It discusses
new methods of producing and storing large numbers of antielectrons, or
positrons, and compares their costs with those of antiprotons. Finally, the
paper considers the prospects for the first, modest demonstration of positron
propulsive flight within the next 10 years. Interplanetary missions on
positron-propelled spaceships are described in detail, with estimates of
positron requirements for each mission. Standalone positron power systems
are described briefly.
Studies of positrons as a fuel for aerospace propulsion applications have been
sponsored by the Air Force Research Laboratory, Eglin Air Force Base, Florida,
and the NASA Institute for Advanced Concepts, Atlanta, Georgia. This paper is
an anthology of that work and not a general review of antimatter propulsion.
The positron was predicted by Dirac in 19291 and discovered by Anderson in
1932.2 Along with the antiproton, which was discovered in 1954,3 the positron
has the largest specific energy of any known material. Because aerospace
propulsion performance is ultimately limited by specific power, this advantage
was immediately appreciated. However, compared with chemical sources of
energy, positrons presented new and serious production and storage
challenges.
Antimatter has a long history of appearing in science fiction literature, dating
to a 1942 short story in Astounding Science Fiction and the 1949 book Seetee.
It later appeared in the Star Trek television and film series and continues to be
an appealing subject for contemporary books and films, such as Angels and
Demons.
Positron aerospace propulsion is now entering a critical period owing to new
technologies that bear on production and storage issues. To their advantage,
positrons, unlike nuclear fission and anti protons, present no radiation or
environmental safety problems.
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Report, from the dia collection. The PDF is mirrored here; the original link is under it. 35 pages are in the text index: search them above, or from the library's search.