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Defense Intelligence Reference Document State Of The Art And Evolution Of High-Energy Laser Weapons

Defense Intelligence Agency · 31 pages · text from the file's own layer

The Defense Intelligence Agency produced this reference document, dated 31 March 2010, under its Advanced Aerospace Weapon System Applications (AAWSA) Program. It reviews the state of the art and likely evolution of high-energy laser weapons, including chemical, solid-state, fiber and free-electron lasers, as well as beam control and the history of DoD laser research. It concludes that electrically powered lasers could make megawatt-class weapons practical and that spacecraft laser weapons are conceivable within 20 years. It also recommends ways to protect spacecraft from laser damage.

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Figure 9. Elements of the 2 kW FEL at Thomas Jefferson National Accelerator Facility
Like chemical lasers, FELs have the potential to produce megawatt class average
power. Unlike chemical lasers, FELs do not rely on potentially hazardous chemical
reactions to generate a beam but they do require an electrically powered RF linear
accelerator which is cooled to superconducting temperatures by a large refrigerator.
Precise control of many megawatts of circulating relativistic electron beam is also
needed. Many large RF linear accelerators have been built around the world for
research purposes but all are laboratory devices. A small particle accelerator has been
ruggedized and flown in space but never used operationally in a military environment.
It remains to be seen if the significant technical issues associated with average power
scale-up can be resolved in the laboratory and then engineered to function in a military
environment such as on-board a ship.
Beam Control and Atmospheric Propagation of Laser
Devices
Referring back to Figure 2, the beam control system includes that portion of the
weapon system which generates the HEL beam inside the laser gain generator, relays
and aligns it through the optical train, expands it using the pointing telescope, and then
focuses it at the range of the target. It also contains the sensors and trackers which
acquire the target and hold it stably in the field of view. Since the HEL beam's spot on
the target is generally much smaller than the target, the beam control system must
identify the desired aim point on the target and place the HEL beam there for a
sufficient duration to inflict damage. If wavefront sensors and deformable mirrors are
used to improve the laser's beam quality (referred to as "local loop" adaptive optics) or
to compensate for atmosphere distortion (referred to as "target loop" adaptive optics),
then they are also part of the beam control system. If the propagation path is
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Report, from the dia collection. The PDF is mirrored here; the original link is above. 31 pages are in the text index: search them above, or from the library's search.