Title :
Nonlinear phase shift scanning method for the optimal design of Raman transmission systems
Author :
Park, Jonghan ; Park, Jaehyoung ; Lee, Duckey ; Kim, Na Young ; Lee, Hansuek ; Park, Namkyoo
Author_Institution :
Sch. of Electr. Eng. & Comput. Sci., Seoul Nat. Univ.
fDate :
3/1/2006 12:00:00 AM
Abstract :
In this paper, an efficient algorithm for the search of optimum design parameters and corresponding transmission quality factor (Q) for a Raman amplified transmission system is presented. Taking the nonlinear phase shift (NPS) as the first-order key design parameter for the determination of the remaining secondary system parameters, and solving the nonlinear Schroumldinger equation (NLSE) as a function of NPS to obtain the optimum (Q) factor, the multiparameter, time-consuming fiber Raman amplifier (FRA) system design process can be reduced to a highly efficient and precise semianalytic one-dimensional optimization problem. As an application example for the suggested optimization algorithm, the authors show the design process for the determination of the system design parameters (input powers to single mode fiber (SMF), dispersion-compensating fiber (DCF), distributed Raman gain, and forward Raman pumping ratio) for a single channel 10-Gb/s 2000-km transmission link. In addition, for the first time within the author´s knowledge, they assess the requirements of pump relative intensity noise (RIN), as a function of the pumping direction/span-length changes, to study the shift in the optimum design parameters. Results show a Q-factor improvement for the system more than 1.16 dB/4.89 dB at a 100-km/200-km span length with their design method, when compared to previous optimization method. Discussion on the application to dense wavelength division multiplexing (DWDM) system is also presented
Keywords :
Q-factor; Raman lasers; Schrodinger equation; nonlinear differential equations; optical fibre amplifiers; optical fibre communication; optical fibre dispersion; optical noise; optical pumping; wavelength division multiplexing; Q-factor; Raman amplified system; Raman transmission systems; dense wavelength division multiplexing; dispersion-compensating fiber; distributed Raman gain; fiber Raman amplifier; forward Raman pumping ratio; nonlinear Schrodinger equation; nonlinear phase shift; nonlinear phase shift scanning; one-dimensional optimization problem; optimization algorithm; optimum design parameters; relative intensity noise; semianalytic optimization problem; single channel transmission link; single mode fiber; transmission quality factor; Algorithm design and analysis; Design methodology; Design optimization; Nonlinear equations; Optimization methods; Process design; Q factor; Stimulated emission; US Department of Transportation; Wavelength division multiplexing; Cross gain modulation (XGM); Raman crosstalk (RC); double Rayleigh scattering (DRS); fiber Raman amplifiers (FRAs); nonlinear phase shift (NPS); optical fiber communications; optimization; relative intensity noise (RIN); self phase modulation (SPM);
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2005.863292