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High-speed interrogation of multiplexed fiber Bragg grating sensors with similar Bragg wavelength by synthesis of optical coherence function

机译:通过光学相干函数的合成,对具有相似布拉格波长的多路光纤布拉格光栅传感器进行高速询问

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We have reported recently a multiplexed fiber Bragg grating (FBG) strain sensor by using the technique of synthesis of optical coherence function. By modulating the optical frequency of the light source in a sinusoidal waveform, the coherence function is synthesized into a series of periodical peaks in the meaning of time-integration. Using one of the coherence peaks as a measurement window, and sweeping it along a string of FBGs by adjusting the repetitive frequency of the sinusoidal modulation waveform, we can selectively pick up the reflection as interference signal from any one FBG from the string. Therefore, the FBGs are resolved spatially; they are not necessarily different to each other in Bragg wavelength. By sweeping the center frequency of the light source in a sawtooth waveform, the shape of the FBG reflection spectrum can be obtained, and thus the amount of the strain applied to the FBG can be estimated. Up to date, 100-Hz interrogation speed was achieved with this method, and the measurement range is limited to within the coherence length of the light source. In this presentation, novel methods are proposed to enhance the interrogation speed and the measurement range further. The performance-limiting factors on the interrogation speed and the measurement range are evaluated. It is found that the detected interference signal appears at a certain frequency shifted from the heterodyne beat due to the sweeping of the center frequency. By observing at the shifted frequency, 1-kHz interrogation speed and measurement range beyond coherence length of the light source are achieved.
机译:我们最近报道了使用光学相干函数合成技术的多路光纤布拉格光栅(FBG)应变传感器。通过以正弦波形调制光源的光频率,相干函数在时间积分的意义上被合成为一系列周期性的峰值。使用相干峰之一作为测量窗口,并通过调整正弦调制波形的重复频率沿一串FBG对其进行扫描,我们可以选择性地从该串中的任何一个FBG中拾取反射作为干扰信号。因此,FBG在空间上解析;它们在布拉格波长上不一定彼此不同。通过以锯齿波形扫描光源的中心频率,可以获得FBG反射光谱的形状,因此可以估计施加到FBG的应变的量。迄今为止,通过这种方法可以达到100 Hz的询问速度,并且测量范围被限制在光源的相干长度以内。在本演示中,提出了新颖的方法来进一步提高询问速度和测量范围。对询问速度和测量范围的性能限制因素进行了评估。发现由于中心频率的扫频,检测到的干扰信号出现在从外差拍偏移的特定频率处。通过观察偏移的频率,可以获得1-kHz的询问速度和超出光源相干长度的测量范围。

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