共查询到18条相似文献,搜索用时 125 毫秒
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以Y波导集成光学调制器保偏型干涉式光纤陀螺作为研究对象,根据各光学元器件的参数建立了各器件的琼斯矩阵以及光路传输模型,在此基础上进行了光路偏振误差的理论分析。通过推导,得到了保偏型干涉式光纤陀螺的偏振误差表达式,并首次分析了光源偏振度对光纤陀螺零漂的影响。借助光源尾纤输出的光谱,对由0%~3%之间呈线性变化的偏振度以及对经实验测试的光源偏振度的实际值引起的偏振模式耦合误差的零漂值进行了仿真计算。结果表明,当光路中其它参数不变时,由光源偏振度变化引起的零漂值为0.001°/h,满足了高精度光纤陀螺的精度要求。 相似文献
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针对保偏光纤陀螺静态参数受光路偏振串扰误差的影响而使陀螺精度受到制约的问题,从实际应用的角度,研究了保偏光纤陀螺光路中由于各光学器件不理想和熔接点对轴角度误差等因素引起偏振串扰误差的机制。基于琼斯矩阵和相干矩阵,并引入随温度变化的保偏光纤双折射变量,建立了变温环境下保偏光纤陀螺的光路传输模型,对变温环境下偏振串扰误差对保偏光纤陀螺零漂和随机游走的影响进行了理论分析和估算。同时开展了变温环境下光纤环偏振串扰对其静态参数影响的相关实验。实验结果与模型分析结果基本一致,表明该模型是合理的。 相似文献
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基于保偏光纤的琼斯矩阵,建立了保偏光纤线圈的Faraday非互易相移模型,利用该模型进行计算发现:线圈保偏光纤的慢轴与快轴的Faraday非互易相移大小近似相等,但符号相反。并进一步提出了偏振环行干涉型保偏光纤陀螺(PCPM-IFOG),它能使顺时针(CW)和逆时针(CCW)光在保偏光纤线圈中沿慢和快轴分别传输一次,因此顺时针和逆时针光总的Faraday非互易相移等于0,实现了Faraday非互易相移的完全抑制。500m保偏光纤线圈的偏振环行干涉型保偏光纤陀螺的实验结果显示其输出与地球磁场无关,而对于相同传感线圈的干涉型保偏光纤陀螺,当磁场方角发生变化时,陀螺有约±0.3°/h的Faraday零偏漂移。 相似文献
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与入射线偏振光振动方向无关的低偏振度消偏器 总被引:1,自引:0,他引:1
消偏器是光纤传感器、光放大器等偏振敏感性光学系统中的关键器件,用于减小输入光的偏振度(DOP).设计了一种与入射线偏振光振动方向无关的低偏振度消偏器,该器件中利用人为的偏振相关延迟代替了保偏光纤的双折射,并在偏振相关型消偏器前增加了一个1/4波片,从而对任意方向振动的线偏振光具有相同的消偏能力,结构紧凑.对消偏性能随波片阶数、入射光中心波长和振动方向的变化作了数值计算.实验中采用半峰全宽为0.13 nm的光源,入射线偏振光在任意方向振动时,输出光偏振度小于2.6%,消偏器的插入损耗为0.6 dB,损耗起伏小于0.11 dB.实验和数值计算结果表明,该消偏器具有低偏振度、低插入损耗和适合于宽光谱应用的优点. 相似文献
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偏振噪声是谐振式光纤陀螺谐振腔中较为严重的光学噪声之一。基于琼斯矩阵的方法建立完整的光路传输模型,对谐振腔顺时针和逆时针两路光传输进行分析,得到环境温度在-40℃~80℃范围内变化时偏振噪声导致的陀螺误差。结果表明,在线起偏器消光比为30 dB时,耦合器直通端对准角度误差小于2.78°,耦合系数为0.05,双90°熔接点两侧光纤长度差容错值在0.207 m以内,使得陀螺输出误差小于0.01 (°)/h。基于此,当陀螺系统工作导致内部温度分布非均匀时,谐振腔上每相邻两段光纤间温度分布差需小于3.122℃。各影响因素的参数选择可为变温环境下由于偏振噪声导致的误差分配设计提供理论指导。 相似文献
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与人射线偏振光振动方向无关的低偏振度消偏器 总被引:2,自引:0,他引:2
消偏器是光纤传感器、光放大器等偏振敏感性光学系统中的关键器件,用于减小输入光的偏振度(DOP)。设计了一种与入射线偏振光振动方向无关的低偏振度消偏器,该器件中利用人为的偏振相关延迟代替了保偏光纤的双折射,并在偏振相关型消偏器前增加了一个1/4波片,从而对任意方向振动的线偏振光具有相同的消偏能力,结构紧凑。对消偏性能随波片阶数、入射光中心波长和振动方向的变化作了数值计算。实验中采用半峰全宽为0.13 nm的光源,入射线偏振光在任意方向振动时,输出光偏振度小于2.6%,消偏器的插入损耗为0.6 dB,损耗起伏小于0.11 dB。实验和数值计算结果表明,该消偏器具有低偏振度、低插入损耗和适合于宽光谱应用的优点。 相似文献
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Bias thermal stability of a fiber-optic gyroscope using polarization-maintaining photonic crystal (PM-PCF) was studied. The thermal sensitivity of birefringence in PM-PCF and polarization cross talking in fiber coil was measured. Using an OCDP method, the polarization cross talking causing phase error of the fiber-optic gyroscope (FOG) was analyzed. The contrast experiment result of the FOGs with the PM-PCF coil and PMF coil showed that using PM-PCF instead of PMF can improve the FOG’s bias thermal stability by about 50 %. 相似文献
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Fundamentals of the interferometric fiber-optic gyroscope 总被引:1,自引:0,他引:1
Hervé C. Lefèvre 《Optical Review》1997,4(1):A20-A27
This paper reviews the basics of the interferometric fiber-optic gyroscope: fundamental principle based on Sagnac effect,
importance of reciprocity and single-mode propagation, analysis of coherence and polarization problems, signal processing
techniques. It also describes the technological progresses of guided-wave components (single-mode optical fiber, semi-conductor
diode source, integrated optics, in-line fiber components). Finally, recent trends like multi-axis configurations and rare-earth
doped fiber source are presented. 相似文献
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In this paper, the structure and the fundamental principle of a three-axis Time Division Multiplexing (TDM) fiber optic gyroscope system are presented. The design of TDM fiber-optic gyroscope system is mathematically analyzed. An effective modulation approach is developed, the bias stability compared with that of a normal fiber-optic gyroscope is theoretically given and the system dynamic character is presented. In order to test the correctness of the approach, the dynamic simplified model is introduced and the simulation is conducted. The experimental result matches the simulation, indicating that the TDM modulation approach is feasible. 相似文献
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The dual-interference fiber optical gyroscope (DIFOG) is a novel gyroscope that makes use of both birefringent axes in a polarization maintained fiber to generate two Sagnac interferometers. The Sagnac effect is doubled in the DIFOG, resulting in the same precision for a smaller fiber coil and shorter fiber, so it has some potential applications in miniaturized and low-cost situations. The mechanism of polarization nonreciprocity (PNR) in the DIFOG is investigated and the influence of PNR is analyzed theoretically. Simulation results based on the theoretical analysis indicate that PNR error causes the bias of interference signals and the output of the DIFOG to vary with the inherent nonreciprocal phase that arises from the optical configuration. The experiment verifies the theoretical and simulation results. 相似文献
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