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The effect of delay line on the performance of a fiber optic interferometric sensor

机译:延迟线对光纤干涉传感器性能的影响

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The optical fiber has the features of low loss and wide bandwidth; it has replaced the coaxial cable as the mainstream of the communication system in recent years. Because of its high sensitivity characteristic, the interferometer is usually applied to long distance, weak signal detection. In general, if the area to be monitored is located far away, the weak signal will make it uneasy to detect. An interferometer is used for phase detection. Thus, the hydrophone which is based on interferometric fiber optic sensor has extremely high sensitivity. Sagnac interferometric hydrophone has low noise of marine environment, which is more suitably used to detect underwater acoustic signal than that of a Mach-Zehnder interferometer. In this paper, we propose the configuration of dual Sagnac interferometer, and use the mathematical methods to drive and design optimal two delay fiber lengths, which can enlarge the dynamic range of underwater acoustic detection. In addition, we also use software simulation to design optimal two delay fiber lengths. The experimental configuration of dual Sagnac interferometer with two optical delay line is shown as Fig. 1. The maximum and minimum measurable phase signal value of dual Sagnac interferometer (L2=2 km, L4=222.2 m), shown in Fig. 3. The fiber optic sensor head is of mandrel type. The acoustic window is made of silicon rubbers. It was shown that we can increase their sensitivities by increasing number of wrapping fiber coils. In our experiment, the result shows that among all the mandrel sensor heads, the highest dynamic range is up to 37.6 ± 1.4 dB, and its sensitivity is -223.3 ±1.7 dB re V / 1μ Pa. As for the configuration of the optical interferometers, the intensity of the dual Sagnac interferometer is 20 dB larger than its Sagnac counterpart. Its dynamic range is above 66 dB where the frequency ranges is between 50 ~ 400 Hz, which is 24 dB larger than that of the Sagnac interferometer with the sensitivity of -192.0 dB re V / l μPa. In addition, by using software simulation to design optimal lengths of delay fibers, we can increase the dynamic range of interferometer on underwater acoustic detection. This paper verifies that, by means of adjusting the length of these two delay fibers, we can actually increase the dynamic range of acoustic signal detection.
机译:光纤具有低损耗和宽带宽的特点;它已将同轴电缆置换为近年来通信系统的主流。由于其高灵敏度特性,干涉仪通常应用于长距离,弱信号检测。通常,如果要监控的区域远离,则弱信号将使检测不安。干涉仪用于相位检测。因此,基于干涉纤维光学传感器的水听筒具有极高的灵敏度。 SAGNAC干涉管水听器具有低噪音的海洋环境,这更适合地检测水下声信号,而不是马赫Zehnder干涉仪。在本文中,我们提出了双锯齿干涉仪的配置,并使用数学方法来驱动和设计最佳的两个延迟纤维长度,这可以扩大水下声学检测的动态范围。此外,我们还使用软件仿真来设计最佳的两个延迟光纤长度。具有两个光学延迟线的双锯齿干涉仪的实验配置如图1所示。双锯齿干涉仪(L2 = 2km,L4 =​​ 222.2M)的最大和最小可测量相位信号值,如图1所示。光纤传感器头部是心轴型。声学窗口由硅橡胶制成。结果表明,我们可以通过越来越多的包装光纤线圈增加它们的敏感性。在我们的实验中,结果表明,在所有心轴传感器头中,最高动态范围高达37.6±1.4 dB,其灵敏度为-223.3±1.7 dB Re V /1μPa。对于光学干涉仪的配置,可以实现。光学干涉仪的配置,双凸角干涉仪的强度比其SAGNAC对应物大20 dB。其动态范围高于66dB,其中频率范围在50〜400Hz之间,比Sagnac干涉仪的敏感性大于24dB,具有-192.0dB ReV /LμPa的灵敏度。此外,通过使用软件模拟来设计最佳的延迟纤维的长度,我们可以增加水下声学检测的干涉仪的动态范围。本文通过调整这两个延迟纤维的长度来验证,我们实际上可以提高声学信号检测的动态范围。

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