DocumentCode :
1405191
Title :
Analysis of dynamic pump-loss controlled gain-locking system for erbium-doped fiber amplifiers
Author :
Karasek, M. ; van der Plaats, J.C.
Author_Institution :
Inst. of Radio Eng. & Electron., Czechoslovak Acad. of Sci., Prague, Czech Republic
Volume :
10
Issue :
8
fYear :
1998
Firstpage :
1171
Lastpage :
1173
Abstract :
Amplified multiwavelength optical communication networks are prone to substantial cross-gain modulation induced signal power fluctuations when channels are turned on/off or rerouted. This perturbs amplifier gains at other wavelengths and can cause service impairment not known in electronically switched networks. In this letter, we analyze the recently proposed and experimentally tested inversion and gain-locking technique for erbium-doped fiber amplifiers (EDFAs), based on pump power loss monitoring. A large-signal numerical model which incorporates time variation effects, the downstream propagation of signal and pump and both the downstream and upstream propagation of amplified spontaneous emission has been used for the analysis. It follows from the theoretical investigation that the surviving channel power excursion in a single 20-dB gain EDFA can be reduced to 0.3 dB in case of addition/removal of six channels in an eight-channel multiwavelength system when the pump power feedback parameters are appropriately selected.
Keywords :
erbium; fibre lasers; laser theory; optical communication equipment; optical fibre losses; optical fibre networks; optical pumping; superradiance; 0.3 dB; 20 dB; EDFA; amplified multiwavelength optical communication networks; amplified spontaneous emission; amplifier gains; downstream signal propagation; dynamic pump-loss controlled gain-locking system; eight-channel multiwavelength system; electronically switched networks; erbium-doped fiber amplifiers; inversion and gain-locking technique; large-signal numerical model; pump power feedback parameters; pump power loss monitoring; rerouted channels; substantial cross-gain modulation induced signal power fluctuations; surviving channel power excursion; time variation effects; Communication switching; Communication system control; Control systems; Erbium-doped fiber amplifier; Fluctuations; Monitoring; Numerical models; Optical amplifiers; Optical fiber communication; Optical fiber testing;
fLanguage :
English
Journal_Title :
Photonics Technology Letters, IEEE
Publisher :
ieee
ISSN :
1041-1135
Type :
jour
DOI :
10.1109/68.701540
Filename :
701540
Link To Document :
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