Metrological Characterization of a CO2 Laser-Based System for Inscribing Long-Period Gratings in Optical Fibers

Q3 Physics and Astronomy Instruments Pub Date : 2022-11-27 DOI:10.3390/instruments6040079
Sebastian Valencia-Garzón, E. Reyes-Vera, J. Galvis-Arroyave, José P Montoya, N. Gómez-Cardona
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引用次数: 1

Abstract

A CO2 laser-based system was studied and implemented to produce asymmetric long period fiber gratings (LPFG) with a large attenuation peak, high reproducibility, and high stability. The first half of this study provides a mathematical uncertainty model of the CO2 laser-based approach that takes into account various mechanical and thermal effects that impact this production technique. This is the first time that metrological analysis and modeling are performed on the CO2 laser-based engraving technique. Following that, the engraved system’s quality was assessed using a microscopic approach to confirm mechanical characteristics such as grating period, engraved spot width, and penetration depth, demonstrating that, if the thermal and mechanical components of the overall system are correctly managed, it is feasible to have very low inaccuracy. Lastly, the LPFG performance as temperature and strain sensors was tested, and the findings show that they had good linearity in both circumstances. Thus, the temperature sensor had a maximal sensitivity of 58 pm/°C when measuring temperature changed from 20 to 97 °C, but the strain sensor had sensitivity of 43 pm/με when measuring strain variations from 5.59 to 25 με. As a result, the model and results presented in this paper can be utilized to create a platform for the metrological management of lengths involved in the process of manufacturing LPFGs, devices that are widely employed in the creation of sensors and communications devices.
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基于CO2激光的光纤长周期光栅刻录系统的计量特性
研究并实现了一种基于CO2激光的非对称长周期光纤光栅(LPFG)系统,该系统具有大衰减峰、高再现性和高稳定性。本研究的前半部分提供了基于CO2激光方法的数学不确定性模型,该模型考虑了影响该生产技术的各种机械和热效应。这是第一次对CO2激光雕刻技术进行计量分析和建模。随后,使用微观方法评估雕刻系统的质量,以确定光栅周期,雕刻光斑宽度和穿透深度等机械特性,表明如果正确管理整个系统的热和机械组件,则可以实现非常低的不准确性。最后,对LPFG作为温度传感器和应变传感器的性能进行了测试,结果表明LPFG在两种情况下都具有良好的线性。因此,温度传感器在20 ~ 97℃范围内的最大灵敏度为58 pm/°C,应变传感器在5.59 ~ 25 με范围内的最大灵敏度为43 pm/με。因此,本文中提出的模型和结果可用于创建一个平台,用于制造LPFGs过程中涉及的长度的计量管理,这些设备广泛用于传感器和通信设备的创建。
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来源期刊
Instruments
Instruments Physics and Astronomy-Instrumentation
CiteScore
2.60
自引率
0.00%
发文量
70
审稿时长
11 weeks
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