Title :
Dispersion compensation dense wavelength division multiplexing (DC DWDM) for nonlinearity analysis at various propagation distance and input power
Author :
Nawawi, N.M. ; Anuar, M.S. ; Rashidi, C.B.M. ; Aljunid, S.A. ; Rahman, A.K. ; Junita, M.N. ; Abdullah, S.R.
Author_Institution :
Opt. Res. Group, Univ. Malaysia Perlis (UNIMAP), Arau, Malaysia
Abstract :
Dense wavelength division multiplexing system is a system for coupling and transmitting the optical signals at different wavelength through the single fiber. Such technology is important in order to increase the capacity in optical communication system and to meet the growing demands of bandwidth. However, there are some limiting factors related to the data rate and capacity in this system. These limiting factors can be linear or nonlinear. Theoretically, the nonlinearities in fiber arise as the number of data channel, transmission length, data rate and input power level increase. In this project, the objective is focused towards analyzing on the nonlinearities effect by compensating the linear effect in the fiber. Dispersion Compensation Fiber (DCF) and linear loss EDFA compensation have been used in single mode fiber (SMF) channel to ensure the communication quality for the design. The proposed dispersion compensation DC-DWDM transmission system with 16 and 32 channels for 10Gbps with a channel spacing of 0.8nm was designed and simulated. The BER performance with various input power levels in the range of -10dBm up to 10dBm, and fiber length greater than 50km are analyzed. It has been shown that for fixed length of the fiber, the only variable that can be manipulated to lower the nonlinear contribution is the input power. The higher the input power the higher the nonlinear contribution. However, if the input power is low, the bit rate should be low to maintained transmission at the expected BER (BER <; 10-12).
Keywords :
channel spacing; error statistics; light propagation; optical communication; optical fibre dispersion; optical fibre networks; wavelength division multiplexing; BER; DC-DWDM transmission system; DCF; EDFA compensation; SMF; channel spacing; data channel; data rate; dispersion compensation dense wavelength division multiplexing; dispersion compensation fiber; nonlinearity analysis; optical communication system; optical signals; propagation distance; single mode fiber; transmission length; wavelength 0.8 nm; Optical fiber amplifiers; Optical fiber dispersion; Optical fiber networks; Wavelength division multiplexing; bit error rate; dense wavelength division multiplexing; dispersion compensation; nonlinearity;
Conference_Titel :
Computer, Communications, and Control Technology (I4CT), 2015 International Conference on
Conference_Location :
Kuching
DOI :
10.1109/I4CT.2015.7219595