首页|一种提高光纤水听器解调系统噪声传递系数稳定性的多相相位生成载波解调算法

一种提高光纤水听器解调系统噪声传递系数稳定性的多相相位生成载波解调算法

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相位生成载波(PGC)调制解调是干涉型光纤水听器常用的解调方法.首先,分析并建立了 PGC解调系统的噪声传递模型,研究了光源强度噪声对PGC解调输出噪声的影响机理,分析了调制深度和工作点两个参数对PGC解调噪声稳定性的影响.然后,提出了一种基于3×3耦合器的多相PGC解调方案,即在传统PGC解调架构中引入3×3耦合器进行多相检测,利用3×3耦合器的相移特性对三路干涉信号进行融合处理.在不同的调制深度条件下,该方案可以降低水听器工作点变化所引起的光源强度噪声传递系数波动范围.实验结果显示,在常用的调制深度范围(1.7~3.4)内,工作点变化导致的噪声传递系数波动峰谷值小于0.5dB,噪声稳定性相比传统PGC解调系统显著提升.
A Multi-Phase Phase-Generated Carrier Demodulation Algorithm for Stability Improvement of Noise Transfer Coefficient for Fiber Optic Hydrophone
Objective Interferometric fiber optic hydrophone is a relatively mature solution in the current fiber optic hydrophone system and features high sensitivity,large dynamic range,strong anti-interference ability,and easy array formation.Meanwhile,it is suitable for underwater targets and is widely employed in fields such as detection and underwater energy exploration.In recent years,the application scenarios of fiber optic hydrophones have gradually developed into complex scenarios such as far-reaching seawater acoustic detection and mobile platform deployment.These scenarios pose more challenges to the signal detection performance and noise stability of hydrophones.Phase-generated carrier(PGC)demodulation is a commonly adopted signal detection method for interferometric fiber optic hydrophones.Since the operating point and carrier modulation depth are greatly affected by external environmental changes,the PGC demodulation system has unstable output phase signals.In particular,the system's self-noise stability fluctuates greatly with environmental changes.This problem has become an important factor limiting the performance of fiber optic hydrophone systems.Methods Centering on the noise stability of interferometric fiber optic hydrophones based on PGC demodulation,we build a noise transfer model of the interferometric fiber optic hydrophone based on PGC demodulation and focus on analyzing changes in the two parameters of the carrier modulation depth and operating point.Meanwhile,the mechanism of influence on the stability of PGC demodulation noise is studied.A new multi-phase PGC demodulation scheme is proposed,where a 3X3 coupler is introduced into the traditional PGC demodulation architecture for multi-phase detection,and the three interference signals are fused by phase shift characteristics of the coupler.The multi-phase PGC demodulation algorithm performs PGC demodulation on the outputs of three 3X3 couplers respectively,and then averages the demodulation results of the three channels.Since the measured phase signals in the three demodulated output signals are the same,the averaging operation has no effect on them,while the noise signals can be suppressed.Additionally,as the initial phases of the three interference signals differ by 2π/3,the noise influence exerted by the initial phase changes can be minimized by averaging regardless of whether the working point of the interference signals changes or not.Therefore,the demodulation noise can be relatively stable.As the working point of the hydrophone changes,this scheme can reduce fluctuations in the noise transfer coefficient of the light source intensity noise.Results and Discussions We conduct simulation experiments to verify the performance of the multi-phase PGC demodulation algorithm.The simulation results show that sound noise stability can be achieved under different carrier modulation depth(C)values.Under different C values,the fluctuation of the noise transfer coefficient is less than 0.5 dB,and compared with the traditional PGC demodulation algorithm,the stability of demodulation noise of multi-phase PGC demodulation algorithm is significantly improved(Figs.3 and 4).A multi-phase PGC demodulation system based on 3× 3 coupler is built,and the demodulation phase noise performance of the system is experimentally verified.A multi-channel synchronous sampling analog-to-digital converter(ADC)is employed to acquire the three outputs of the coupler.The traditional PGC demodulation method and the multi-phase PGC demodulation algorithm are utilized to demodulate the original data collected by the system.Additionally,we calculate the noise spectrum levels of the demodulated signals of the two methods at 1 kHz frequency separately and analyze the noise fluctuation characteristics of the system.The experimental results show that the self-noise fluctuation obtained by demodulating the three outputs of the 3X3 coupler using the traditional PGC demodulation method is greater than 4.5 dB(Fig.6).The noise spectrum levels obtained by the multi-phase PGC demodulation method are significantly reduced,and the noise fluctuation during the entire test cycle is less than 1.8 dB(Fig.6).The experimental results verify the effectiveness of the multi-phase PGC demodulation algorithm.Conclusions We build a noise transfer model for interferometric fiber optic hydrophones,analyze and derive the noise transfer model of system noise sources on demodulation results,and propose a multi-phase PGC demodulation algorithm.Compared with traditional PGC demodulation algorithm,the proposed algorithm can suppress the fluctuation of light intensity noise transfer coefficient under the changing operating point,and improve the noise stability of demodulation results.Simulation and experimental results are consistent with the theoretical analysis results of the model.In applications such as deep-sea exploration and long-distance target detection which have increasingly stringent noise performance requirements for fiber optic hydrophones,the noise transfer model and the multi-phase PGC demodulation algorithm based on 3X 3 coupler proposed in our study have research and practical significance.

interferometric fiber optic hydrophonephase-generated carrier demodulationnoise stability3×3 demodulation

侯庆凯、姚琼、陈虎、熊水东

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国防科技大学气象海洋学院深海科学技术研究所,湖南长沙 410073

干涉型光纤水听器 相位生成载波解调 噪声稳定性 3×3解调

2024

光学学报
中国光学学会 中国科学院上海光学精密机械研究所

光学学报

CSTPCD北大核心
影响因子:1.931
ISSN:0253-2239
年,卷(期):2024.44(2)
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