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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. 3 …Free-Electron Laser Electron Beam Phase-Space Evolution ....................... 59 Figure 31. Recirculating-Beam FEL System ........................................................... 60…
  • p. 4 …HEL Beam Pointer/Tracker ................................................................... 65 Figure 35. Basic Shared Aperture Beam Control System ......................................... 66 Figure 36…
  • p. 7 …This can only be achieved via laser propulsion in which the laser beam energy that is…
  • p. 15 …By launching spacecraft on a beam of electromagnetic radiation, researchers will have developed the first new…
  • p. 16 …The laser beam's pulse interacts with the mirror, spreading out and focusing into an annular…
  • p. 17 …1) power supply; 2) high-power (megawatt-class) laser beam generator/transmitter using novel beam optics…
  • p. 20 …is to the right and the laser beam strikes the stretched-out parabolic mirror/propulsion section…
  • p. 21 …It requires a beam power of 0.1 to 1 MW per kg of vehicle mass…
  • p. 22 …The ground-based megawatt-class laser beam generator is state-of-the-art technology. The cost…
  • p. 25 …Figure 8 illustrates the adverse beam propagation geometry associated with ETO laser propulsion by means of…
  • p. 26 …Attenuation Effects on Captured Laser Beam Power 261. 0.4 0.J 0.2 0.1…
  • p. 27 …Unfortunately the demonstrated laser beam power levels for the attractive 1.62 μm wavelength, which suffered…
  • p. 28 …Beam combining of several 1 MW (or higher) FELs can achieve a total combined beam output…
  • p. 31 …Appropriate rotation of a high-energy laser beam, emanating from a ground/sea-based laser, guides…
  • p. 32 …Appropriate rotation and translation of a high-energy laser beam, emanating from a moving aircraft, guides…
  • p. 33 …But multiple target interception within allowable time is limited by relatively long beam- riding time needed…
  • p. 37 …In this case, it is envisioned that the high- pulsed power within high-energy laser beams…
  • p. 39 …In this case, airborne laser beams at 12 km altitude will not suffer the significant propagation…
  • p. 41 …sidelobes, creates multiple beams, and steers the ensemble of the individual beams anywhere on Earth. The…
  • p. 42 …Each picosat is gravity- gradient stable, has a dipole array facing Earth, and a broader beam…
  • p. 43 …Commands for beam sweep delays are superimposed on the time delays of each nanosat. Each nanosat…
  • p. 44 …piezoelectric membrane kept flat by an electron beam in response to an optical figure sensor. MEMS…
  • p. 46 …technical issues include large wavelength and atmospheric absorption of the laser beam. • Carbon Monoxide (CO) Laser…
  • p. 47 …125 Hz@ 20μs. • Laser power, P = 2.5 MW/beam x 4 beams = 10 MW. • Laser…
  • p. 50 …Each power oscillator optics module transmitting a 2.5 MW beam of 10.6 μm wavelength…
  • p. 52 …Adding an eight amplifier chain that the system was designed for will increase the beam power…
  • p. 53 …However, BSSSL beam power can be scaled up further by improving presently known gain media and…
  • p. 54 …scalable to 1 MW beam power within 2 years. Typical solid-state lasers have the following…
  • p. 55 …A new technology that enables the scaling-up of BSSSL beam power is a recently developed…
  • p. 56 …at the same time increasing the average beam power. Figure 21. Phase Change Materials Allow Storage…
  • p. 57 …This exponential growth in beam output power is the result of many factors, including the parallel…
  • p. 58 …Microlens -O _ ,:1 Incoherent Beam Combining 'Ind1vidually Incoherent Gaussian Beams i=L Controlled /_/Steering • ... o~bined…
  • p. 59 …Neodymium Thulium (Tm 3+), Holmium - Range of beam wavelengths(),) produced: 0.48 μm to 2.9…
  • p. 61 …Multlmode Fiber Lasers 50kW Multimode Output beam quality BPP-1 o M"2-33 DC EDE…
  • p. 62 …The resulting laser beam photon energy depends on the electron energy, the undulator period, and (weakly…
  • p. 63 UNCLASSIFIED/ /F8~ 8FFl&I.«1k WliEii a,.klf electron beam ( \ I,:--- ■■>ti■-- undulator ) resonator mirror 0…
  • p. 64 …The superconducting accelerator gives good efficiency and gradient while recirculation of the electron beam recovers beam…
  • p. 65 UNCLASSIFIED/ /F&~ 8FFHiil.«1k 1!181! &••kY - K"' 1.5.t • Electron Beam: - Photocathode injector creates…
  • p. 66 …HIGH ENERGY LASER BEAM CONTROL ··costs could be reduced to as low as $20 per kg…
  • p. 67 …The typical HEL beam control system includes:++ 1) a gimbaled beam director, 2) tracking and pointing…
  • p. 68 UNCLASSIFIED//F&II. &FFiii,111!! l!llili &HI!¥ A novel new HEL beam control architecture being…
  • p. 69 …HEL Beam Pointer/Tracker (courtesy of the Directed Energy Professional Society). In summary, this new architecture…
  • p. 70 …The BILL is a solid-state, kilowatt-class laser that measures atmospheric conditions, allowing the beam…
  • p. 71 …All of these HEL beam control innovations can be quickly adapted to laser propulsion applications with…
  • p. 72 …The entire Lightcraft launch system is comprised of a ground, sea, or airborne laser beam generator…
  • p. 73 …New beam control devices and high-power optical train combinations have a resulting beam line that…
  • p. 75 …N. (1983), "Advanced Beamed-Energy and Field Propulsion Concepts," BDM/W-83-225-TR, BDM Corp…
  • p. 76 …N. (2001), "World Record Flights of Beam-Riding Rocket Lightcraft: Demonstration of 'Disruptive' Propulsion Technology," AIAA…
  • p. 77 …of the 6 th Int'! Symposium on Beamed Energy Propulsion, edited by C. R. Phipps, AIP…
UNCLASSIFIED//F&II. &FFiii,111!! l!llili &HI!¥
storage device capable of cooling DEW systems. Their 3 MJ device is the first large-
scale module capable of storing heat at a high rate as required for DEW systems, and it
stores heat at an average rate of 230 kW. Heat is stored in a 35 kg module by melting
a wax-type phase change material (see Figure 21). These materials, by themselves,
cannot support the high heat transfer rate and must be combined with other materials
to enhance their thermal properties in order to make them work. Thermal
management is one of the many challenges of the high-power BSSSL devices used in
DEW systems, which produce tremendous amounts of waste heat. Rejecting heat from
these systems in real time is not practical, making thermal energy storage a necessity.
The cost of BSSSL systems and related infrastructure are becoming competitive with
that of the proposed 10 MW electron gun-driven CO2/gas mixture lasers. BS SSL costs
are continuously decreasing as their technology matures and as more systems become
widely available for testing and operational deployment. The HELLADS matched-index-
of-refraction liquid cooling technique and General Atomics' advanced thermal energy
storage device will also dramatically improve the cost competitiveness of BSSSL
systems compared to all chemical and gas dynamic laser systems by producing greater
efficiencies in solid-state lasing operation while at the same time increasing the average
beam power.
Figure 21. Phase Change Materials Allow Storage of Large Intermittent Heat Loads While
Slow Regeneration Removes Heat from Aircraft (courtesy of P. Saunders, AFRL/RDS,
Kirtland AFB, NM).
High Power Fiber Laser
From 2006 to 2009, a newly emergent class of solid-state lasers, called high-power
fiber lasers (HPFLs), has undergone transformational innovations resulting in a 10-fold
increase in near diffraction-limited beam output power of a single-fiber laser operating
with broadband output in the 1 μm wavelength region with 90% optical efficiency, >
52
UNCLASSIFIED//F&~ 8FFI&I.«1k W&liii SUlklf

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