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Fibre segment interferometry using code-division multiplexed optical signal processing for strain sensing applications

机译:使用码分复用光信号处理的光纤段干涉仪,用于应变传感应用

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摘要

A novel optical signal processing scheme for multiplexing fibre segment interferometers is proposed. The continuous-wave, homodyne technique combines code-division multiplexing with single-sideband modulation. It uses only one electro-optic phase modulator to achieve both range separation and quadrature interferometric phase measurement. This scheme is applied to fibre segment interferometry, where a number of long-gauge length interferometric fibre sensors are formed by subtracting pairs of signals from equidistantly placed, weak back reflectors. In this work we give a detailed account of the signal processing involved and, in particular, explore aspects such as electronic bandwidth requirements, noise, crosstalk and linearity, which are important design considerations. A signal bandwidth of ±20 kHz permits the resolution of phase change rates of 2.5 × 10~4 rad s~(-1) for each of the four 16.5 m long segments in our setup. We show that dynamic strain resolutions below 0.2 nanostrain Hz~(-0.5) at 2 m sensor gauge length are achievable, even with an inexpensive diode laser. When used in applications that require only relative strain change measurements, this scheme compares well to more established techniques and can provide high-fidelity yet cost-effective measurements.
机译:提出了一种新型的光纤段干涉仪光信号处理方案。连续波零差技术将码分复用与单边带调制相结合。它仅使用一个电光相位调制器即可实现距离分离和正交干涉式相位测量。此方案适用于光纤段干涉测量,其中通过从等距放置的弱后向反射器中减去信号对来形成许多长规格的干涉式光纤传感器。在这项工作中,我们详细介绍了所涉及的信号处理,尤其是探讨了电子带宽要求,噪声,串扰和线性度等重要的设计考虑因素。 ±20 kHz的信号带宽允许在我们设置中的四个16.5 m长段中的每个段上,相变速率的分辨率为2.5×10〜4 rad s〜(-1)。我们表明,即使使用便宜的二极管激光器,在2 m传感器标距长度下,动态应变分辨率也可以达到低于0.2纳米应变Hz〜(-0.5)。当在仅需要相对应变变化测量的应用中使用时,该方案可以与更成熟的技术进行比较,并且可以提供高保真但经济高效的测量。

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