DP-16QAM超宽带波分复用通信系统性能研究:最优功率考虑

Arwa A. Moosa, R. Fyath
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引用次数: 1

摘要

近年来,人们对利用S+C+L频段提供的18thz带宽来增加光纤通信系统的传输容量越来越感兴趣。这导致了超宽带(UWB)波分复用(WDM)光通信系统的产生。在这些先进的系统中,受激拉曼散射(SRS)导致功率从高频通道转移到低频通道。这种效应导致了UWB-WDM信道间非线性干扰(NLI)的增加。功率优化技术需要平衡波段信道之间的传输功率,从而在增加系统容量的同时增加最大传输距离(MTR)。本文采用增强高斯噪声模型研究了双偏振16-QAM信令下S+C+L波段系统的传输性能。每个DP通道的发射器和接收器使用-偏振激光器,并包含两个相同的配置,一个用于x-偏振状态,另一个用于y偏振状态(SOP)。给出了符号率40和80 GBaud两种值的结果,其中系统分别携带360(=160+80+120)和180(=80+40+60)通道。结果表明,当通道午餐功率分别为-4和-2 dBm时,两种情况下的MTR都等于12 100 km。这项工作还显示了NLI分量作为跨度数、沟道间距和沟道发射功率的函数的影响。结果表明,NLI的交叉相位调制分量随传输距离的增加具有较高的累积值,而自相位调制分量几乎不变。
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Performance Investigation of DP-16QAM Ultra-wideband- Wavelength-Division Multiplexing Communication System: Optimum Power Consideration
Recently, there is increasing interest in using the 18 THz bandwidth offered by S+C+L band to increase the transmission capacity of fiber communication systems. This leads to the generation of ultra-wideband (UWB) wavelength-division multiplexing (WDM) optical communication systems. In these advanced systems, stimulated Raman scattering (SRS) causes a power transfer from high-frequency channels to low-frequency channels. This effect leads to an increase in the nonlinear interference (NLI) between the UWB-WDM channels. Power optimization techniques are required to balance transfer power between band channels, thus increasing the maximum transmission reach (MTR) along with increasing system capacity. In this paper, the transmission performance of S+C+L band system operating with dual-polarization 16-QAM signaling is investigated using enhanced Gaussian noise model. The transmitter and receiver for each DP channel use a -polarized laser and incorporate two identical configurations, one for x- and the other for y-state of polarization (SOP). The results are presented for two values of symbol rate, 40 and 80 GBaud, where the system carries 360 (=160+80+120) and 180 (=80+40+60) channels, respectively. The results revel that the MTR of both cases is equal to 12 100 km-spans when the channel lunch power equals to -4 and -2 dBm, respectively. This work also shows the effect of NLI components as a function of the number of spans, channel spacing, and channel launch power. The results show that the cross-phase modulation component of the NLI has high accumulated value with transmission distance, while the self-phase modulation component is almost constant.
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