基于光纤布拉格光栅的水声压力传感

Hareesh Kumar, A. Sharan, M. SreeRangaRaju
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引用次数: 1

摘要

水下有大量未开发的资源,几乎覆盖了地球表面的70%。因此,需要开发一种强大而成熟的技术来监测海水中的水下行为和作业。声信号能够以明显更少的延迟进行远距离探测(由于水下声速)。本文介绍了一种光纤光栅传感器的设计与仿真。OFBG具有抗电磁干扰、遥感、恶劣环境稳定性等特性。OFBG传感器由于具有多路复用、高灵敏度和宽动态范围等特性,在传统传感器不适合的环境中使用。OFBG传感器主要用于测量压力、应力和应变变化,通过观察由自然灾害、各种水生生物的存在和反潜运动引起的布拉格波长的变化。GratingMOD设计工具用于分析和合成复杂的光栅轮廓。在模拟过程中,考虑的最高压力变化为39.81 MPa(海底地震)至最低0.56KPa(露脊鲸),以观察传感器上的应变和应力。水下活动产生应力/应变,导致布拉格波长向声信号的到达方向(DOA)移动。海底地震记录的波长变化为1560.86241(nm),露脊鲸记录的波长变化为1550.000153(nm)。
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Underwater Acoustic Pressure Sensing using Optical Fiber Bragg Grating
A large amount of untapped resources lies underwater, which covers almost 70% of the surface of the earth. Therefore, there is a need to monitor the underwater behavior and operations occurring inside seawater by developing a robust and mature technology. Acoustic signals are capable of long-range detection with significantly less latency (due to underwater speed of sound). This paper presents the designing and simulation of an Optical Fiber Bragg Grating (OFBG) sensor. OFBG has properties such as immunity to electromagnetic interference, remote sensing, stability in harsh environments. OFBG sensors are in use in an environment where conventional sensors are unsuitable because of the capabilities such as multiplexing, high sensitivity, and wide dynamic range. Mostly the OFBG sensor is in use to measure pressure, stress, and strain change by observing a shift in Bragg's wavelength caused by natural calamity, presence of a variety of aquatic creatures, and anti-submarine movements. GratingMOD design tool is in use for analyzing and synthesizing complicated grating profiles. During the simulation, the highest-pressure variation considered is 39.81 MPa (undersea earthquake) to lowest 0.56KPa (Right Whale) to observe strain and stress on the sensor. The underwater activity created stress/strain resulting in Bragg's wavelength shift towards the Direction of Arrival (DOA) of the acoustic signal. The recorded wavelength change for Undersea Earthquake is 1560.86241(nm), Right Whale is 1550.000153(nm).
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