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Defense Intelligence Reference Document Laser Lightcraft Nanosatellites

Defense Intelligence Agency · 77 pages · text from the file's own layer

This Defense Intelligence Reference Document from the Defense Intelligence Agency, dated 1 November 2010, was produced under the Advanced Aerospace Weapon System Applications (AAWSA) Program. It describes nanosatellite technologies and proposes launching nanosats into orbit with laser Lightcraft propulsion. It also covers a weapon mission selection study and multi-megawatt laser options. The author recommends that the Department of Defense and NASA bring Lightcraft R&D back to the United States and restart the X-50LR flight demonstration program.

  • p. 2 …b)/3):10 USC 424 !Advanced Aerospace Weapon System Applications (AAWSA) Program.omments or questions pertaining…
  • p. 3 …Laser Lightcraft Weapon Mission Selection Study .................................. 27 Chapter 4: Summary of Multi-Megawatt Laser Study for…
  • p. 31 …Laser Lightcraft Weapon Mission Selection Study The objective of the Froning and Davis 26 study was…
  • p. 52 …Even though 100 kW beam power has long been the proof-of-principle sought for weapons…
  • p. 53 UNCLASSIFIED//F&II. &FFll!IAI! l!l!il! 9Hl:Y achieved by laser weapons with 25…
  • p. 57 …such systems have already been modified for weapons applications with a goal toward achieving > 100 kW…
  • p. 64 …The Naval Sea Systems Command's (NAVSEA) Directed Energy and Electric Weapon Systems (DE&EWS) Program…
  • p. 67 …HEL weapons usually have high-power optical trains containing more than a dozen mirrors. However, these…
  • p. 68 …and deployed by the various directed energy weapons programs that offers reduced complexity and component count…
  • p. 69 …the high precision required for a HEL Weapon, The sensor and Beam Expander must maintain precise…
  • p. 71 …done by the various DoD directed energy weapons/HEL programs can be immediately leveraged for laser…
  • p. 72 …ground/sea- or airborne-launched kinetic kill weapons to shoot down enemy ballistic missiles. Very innovative…
  • p. 73 …explored by the various DoD directed energy weapons programs offer higher electrical-to-optical efficiencies and…
  • p. 76 …E. (2009), Effects of Directed Energy Weapons: High Power Lasers, High Power Microwaves, and Particle Beams…
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spacecraft. This creates coherent RF or optical apertures that are essentially unlimited
in size, which could offer unprecedented high-resolution radiometry, hyperspectral
imaging, radar, and RF interception (for mapping, surveying, MASINT, SIGNIT), etc.
Launching laser-propelled Lightcraft nano-/pico-satellites to LEO requires megawatt-
class lasers. TEXTRON Systems Corporation's proposed 10 MW electron gun-driven
CO2/gas mixture laser is a multi-megawatt-class system that can be implemented now
because this technology requires little or no additional R&D. This system offers realistic
near-term, low-cost Lightcraft launch capability. However, this system is large,
requires a large amount of gas propellant to fuel the laser, and the system
infrastructure will cost over $200 million.
The newly emergent bulk slab solid-state, high-power fiber, and free-electron laser
technologies being explored by the various DoD directed energy weapons programs
offer higher electrical-to-optical efficiencies and overall laser performance, compact and
portable system size, less complexity and smaller weight, all at much lower system and
infrastructure cost. These lasers are scalable to megawatt-class beam power, and so
we roughly estimate that the overall system and infrastructure cost to deploy such laser
systems to launch a Lightcraft to LEO will be from several factors to an order of
magnitude (or more) lower than for the electron gun-driven CO2/gas mixture laser
system.
Removing the waste heat produced by high-power laser systems is an important factor
driving the physical limitations of scaling up the beam output power. An innovative
matched-refractive-index liquid is used to rapidly remove the heat produced by a 150
kW bulk slab solid-state laser weapon while the very high surface area-to-volume ratio
of high-power fiber lasers allows for the rapid removal of heat from the gain medium
without the need for external cooling. Phase-change materials are being explored and
devices using such materials have recently demonstrated the ability to store very large
quantities of the waste heat produced by high-power solid-state lasers, which is a
different way of rapidly removing large amounts of heat from the solid-state gain
medium. Unlike solid-state laser systems, free-electron lasers are not affected by heat
problems while their gain medium (a vacuum) cannot be damaged.
Launching a laser-propelled Lightcraft nanosat/picosat from the ground, sea, or air into
LEO requires controlling and steering the high-energy laser beam, while at the same
time making real-time adjustments to account for platform motion, optical train and
atmospheric effects on beam propagation, so that the beam maintains high quality,
low-loss, precision contact with the Lightcraft during the entire flight. Recent technical
innovations in optical train design and other system architecture have evolved beam
control devices for high-energy laser weapons toward new implementations. New beam
control devices and high-power optical train combinations have a resulting beam line
that is considerably simpler, smaller and lighter than current architectures. Almost
every component in the beam line performs multiple functions, thereby dramatically
reducing the high-power optical component count. This approach also packages all
beam control sensors, processors and drivers into a single turret assembly.
In 2005, the AFRL/PRSP (Edwards AFB, CA) concluded their laser Lightcraft propulsion
R&DTE program before launching a Lightcraft test vehicle into LEO was demonstrated
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Report, from the dia collection. The PDF is mirrored here; the original link is under it. 77 pages are in the text index: search them above, or from the library's search.