Documents / Report
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.
UNCLASSIFIED//F8A 8FFHil.l1k WE&i a••k>/ Introduction The purpose of this report is to provide an overview of the current state-of-the-art and potential evolution of megawatt (MW) class high-energy laser (HEL) weapons. Implications for space vehicles in or beyond earth orbit will be addressed. It is rare today to find an individual who doesn't have some concept of a laser weapon. From Orson Wells's Martian invaders in War of the Worlds, who used them with chilling efficiency, to the now-classic Star Wars movies, the capabilities attributed to such devices have grown with time and with writers' imagination. While most fictional depictions of laser weapons (and many news stories) are without sound basis, these devices do offer the potential for a whole new class of weapons and capabilities which may complement (but not replace) existing kinetic energy (KE) weapons and electronic warfare. BASIC ATTRIBUTES OF KINETIC ENERGY AND HEL WEAPONS KE weapons (bullets, shells, missiles, bombs, and so forth) require a finite period of time to reach the target but are then able to destroy it instantly. They can deliver immense quantities of explosive energy and destroy large areas. This makes KE weapons most effective at engaging hardened, large, or stationary targets. Collateral damage concerns, such as a desired target next to a hospital, enemy forces near friendly forces, or a sniper target in a crowd can significantly limit the opportunity to use KE weapons. Randomly moving targets also present a challenge for KE weapons due to difficulties in predicting the target's location at the future time of arrival or in tracking the target with sufficient accuracy. High Energy Laser (HEL) weapons, by contrast, begin delivering the laser beam's energy to the target at the speed of light. However, they require a finite dwell time to accumulate enough thermal energy (heat) on the aim point to achieve the desired effect (similar to a blowtorch). The strength of an HEL weapon is its ability to precisely deliver a limited quantity of energy to a small spot with little collateral damage to nearby objects or people. The instantaneous measure of a focused laser beam's effectiveness is called "irradiance" and is measured in power per unit area over the laser spot (typically watts/cm 2). The beam's ability to inflict damage, by heating during a time interval, is called "fluence" and is typically measured in joules/cm 2 . Fluence is simply irradiance x time and one joule is equal to one watt for one second. Speed-of-light energy transfer, coupled with precision tracking, allows HEL weapons to efficiently engage softer targets which are highly maneuverable, only visible for short periods of time, or at extremely long range. Although the initial cost of a laser weapon might be high, the logistics trail is short and the cost per shot is comparatively inexpensive since the only major expendables are laser chemicals or electricity. Figure 1 compares the relative strengths and weaknesses of KE & HEL weapons for different classes of potential targets. Just as there is a wide variety of KE weapons (ranging from bullets to precision guided munitions to nuclear weapons) for different types of applications, one could envision a range of future HEL weapons at different power levels, wavelengths, weights, volumes, and costs which would be best suited for specific applications. 1 UNCLASSIFIED/ /f81il 8ffl&I.«1k WE&i &••k¥
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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.