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首页> 外文期刊>Journal of Nanoelectronics and Optoelectronics >Optimal Design and Performance Study of Optical Fiber Raman Amplifier with Flat Gain
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Optimal Design and Performance Study of Optical Fiber Raman Amplifier with Flat Gain

机译:具有扁平增益光纤拉曼放大器的最佳设计与性能研究

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Optical fiber communication is favored by many communication manufacturers because of its low interference, large capacity, long distance and low consumption. Extending the transmission distance of optical fiber communication system will result in attenuation loss. Therefore, it is necessary to improve the incident power of the initial optical fiber, but it will be affected by Raman scattering effect, thus reducing the performance of the overall optical fiber communication system. In order to overcome the above problems, Raman amplifier is used to pump high-power short-wavelength light wave and amplify long-wavelength and low-power signals, but the flattening of signal gain needs to be considered. In this study, the working principle of Raman amplifier is introduced, the Raman pump module is optimized, the system architecture of the module is studied, and the module circuit is designed. It mainly covers the structure design, driving circuit design and auxiliary circuit design of the module. In the experimental process, based on the transmission coupling equation of the fiber Raman amplifier, the distribution of pump and signal power on the fiber is calculated by numerical analysis. By optimizing the pump module, the gain flatness of the amplification system is optimized, and the signal gain of the whole fiber communication system is reduced by more than 80%. It proves that the optimal design of fiber Raman amplifier proposed in this study is effective and can achieve the overall stability of signal reception in the application of optical fiber communication system.
机译:由于其低干扰,大容量,长距离和低消耗,许多通信制造商赞成光纤通信。延伸光纤通信系统的传输距离将导致衰减损耗。因此,有必要改善初始光纤的入射力,但是它将受拉曼散射效果的影响,从而降低了整体光纤通信系统的性能。为了克服上述问题,拉曼放大器用于泵浦高功率短波长光波并放大长波长和低功率信号,但需要考虑信号增益的趋势。在这项研究中,引入了拉曼放大器的工作原理,Raman泵模块进行了优化,研究了模块的系统架构,并设计了模块电路。它主要涵盖了结构设计,驱动电路设计和模块的辅助电路设计。在实验过程中,基于光纤拉曼放大器的传输耦合方程,通过数值分析计算泵的分布和光纤上的信号功率。通过优化泵模块,优化放大系统的增益平坦度,并且整个光纤通信系统的信号增益减小超过80%。事实证明,本研究中提出的光纤拉曼放大器的最佳设计是有效的,可以实现光纤通信系统应用中信号接收的整体稳定性。

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