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Novel dual-Brillouin-frequency optical fiber for distributed temperature sensing

机译:用于分布式温度传感的新型双布里渊频率光纤

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We present an approach to distributed fiber-optic temperature sensing utilizing a dual-Brillouin-frequency optical fiber. Traditional distributed sensor systems employ a heterodyne detection scheme to measure a temperature-dependent microwave frequency Stokes' shift. Our approach toward realizing an RF, rather than microwave, detection scheme is the development of an optical fiber engineered to have two gain-equalized Brillouin frequencies (dual-Brillouin-frequency fiber, or DBFF). The design goal is that the two acoustic modes respond differently to temperature variations, and thus the detection of their beat signal (in the RF) would provide temperature data. One approach is to structure the core to have two or more dissimilar layers that are 'quasi-independent' such that their resulting Brillouin frequencies have a dissimilar dependence on temperature. Proper tailoring of the overlap integrals with the optical mode results in gain equalization between resulting acoustic modes. A slightly different approach is presented, where two Brillouin frequencies are achieved through core-cladding Brillouin-gain equalization via the reduction of Brillouin gain in the core. Temperature sensing is then accomplished by the direct detection of the RF beat frequency between them (~175 MHz). A linear temperature dependence of-1.07 MHz/C was measured for the beat frequency of a tailored fiber.
机译:我们提出了一种利用双布里渊频率光纤进行分布式光纤温度感测的方法。传统的分布式传感器系统采用外差检测方案来测量温度相关的微波频率斯托克斯位移。我们实现RF(而不是微波)检测方案的方法是开发一种光纤,该光纤具有两个增益均衡的布里渊频率(双布里渊频率光纤或DBFF)。设计目标是,两种声学模式对温度变化的响应不同,因此,检测它们的拍频信号(在RF中)将提供温度数据。一种方法是将磁芯构造为具有两个或两个以上“准独立”的不相似层,以使它们产生的布里渊频率对温度的依赖程度不同。用光学模式对重叠积分进行适当的调整会导致所得声学模式之间的增益均衡。提出了一种略有不同的方法,其中通过降低纤芯中的布里渊增益,通过纤芯包层布里渊增益均衡来获得两个布里渊频率。然后,通过直接检测它们之间的RF拍频(〜175 MHz)来完成温度感测。对于定制光纤的拍频,测量到的线性温度依赖性为1.07 MHz / C。

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