Title :
Incoherent Combining and Atmospheric Propagation of High-Power Fiber Lasers for Directed-Energy Applications
Author :
Sprangle, Phillip ; Ting, Antonio ; Peñano, Joseph ; Fischer, Richard ; Hafizi, Bahman
Author_Institution :
Naval Res. Lab., Washington, DC
Abstract :
High-power fiber lasers can be incoherently combined to form the basis of a directed high-energy laser system which is highly efficient, compact, robust, low-maintenance and has a long operating lifetime. This approach has a number of advantages over other beam combining methods. We present results of the first field demonstration of incoherent beam combining using kilowatt-class, single-mode fiber lasers. The experiment combined four fiber lasers using a beam director consisting of individually controlled steering mirrors. Propagation efficiencies of ~90%, at a range of 1.2 km, with transmitted continious-wave power levels of 3 kW were demonstrated in moderate atmospheric turbulence. We analyze the propagation of combined single-mode and multimode beams in atmospheric turbulence and find good agreement between theory, simulations and experiments.
Keywords :
atmospheric optics; atmospheric turbulence; fibre lasers; laser beam applications; mirrors; optical design techniques; atmospheric turbulence; beam director; continious wave power; controlled steering mirrors; directed-energy applications; high-power fiber lasers atmospheric propagation; incoherent beam combining; power 3 kW; single-mode fiber laser; Analytical models; Atmospheric modeling; Fiber lasers; High power fiber lasers; Laser beams; Laser modes; Mirrors; Optical control; Optical propagation; Robustness; Fiber lasers; laser beam combining; laser propagation;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2008.2002501