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Concept and design of an FBG Emulator for a Scanning Laser-based Fiber-Optic Interrogator

机译:扫描激光光纤询问器的FBG仿真器的概念和设计

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The Hybrid Sensor Bus is a space-borne temperature monitoring system for telecommunication satellites combining electrical and fiber-optical Fiber Bragg Grating (FBG) sensors. Currently, there is no method available for testing the functionality and robustness of the system without setting up an actual sensor-network implying numerous FBG sensors in which each has to be heated/cooled individually. As a verification method of the mentioned system, FBG reflection based scanning laser interrogator, an FBG-emulator is implemented to emulate the necessary FBG sensors. It is capable of immediate emulation of any given FBG spectrum, thus, any temperature. The concept provides advantages like emulating different kinds of FBGs with any peak shape, variable Bragg-wavelength λ_b, maximal-reflectivity r_(max), spectral-width and degradation characteristics. Further, it facilitates an efficient evaluation of different interrogator peak-finding algorithms and the capability of emulating up to 10000 sample points per second is achieved. In the present paper, different concepts will be discussed and evaluated yielding to the implementation of a Variable Optical Attenuator (VOA) as the main actuator of the emulator. The actuator choice is further restricted since the emulator has to work with light in unknown polarization state. In order to implement a fast opto-ceramic VOA, issues like temperature dependencies, up to 200 V driving input and capacitive load have to be overcome. Furthermore, a self-calibration procedure mitigates problems like attenuation losses and long-term drift.
机译:混合传感器总线是结合了电和光纤光纤光栅(FBG)传感器的,用于电信卫星的星载温度监控系统。当前,没有一种方法可用于测试系统的功能和鲁棒性,而无需建立实际的传感器网络,这意味着需要大量的FBG传感器,每个FBG传感器必须分别进行加热/冷却。作为上述系统的一种验证方法,一种基于FBG反射的扫描激光询问器,即FBG仿真器,用于仿真必要的FBG传感器。它能够立即模拟任何给定的FBG频谱,从而模拟任何温度。该概念具有以下优点:模拟具有任何峰值形状,可变布拉格波长λ_b,最大反射率r_(max),光谱宽度和降级特性的各种FBG。此外,它有助于对不同的询问器峰值查找算法进行有效评估,并具有每秒模拟多达10000个采样点的能力。在本文中,将讨论并评估不同的概念,以实现将可变光学衰减器(VOA)用作仿真器的主要执行器。由于仿真器必须使用未知偏振态的光,因此进一步限制了执行器的选择。为了实现快速的光电陶瓷VOA,必须解决诸如温度依赖性,高达200 V的驱动输入和电容性负载之类的问题。此外,自校准程序可减轻诸如衰减损耗和长期漂移之类的问题。

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