Accurate Measurements of a Wavelength Drift in High-Temperature Silica-Fiber Bragg Gratings

S. Dedyulin, E. Timakova, D. Grobnic, C. Hnatovsky, A. Todd, S. Mihailov
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引用次数: 2

Abstract

Fiber Bragg gratings (FBG) are extensively used to perform high-temperature measurements in harsh environments, however the drift of the characteristic Bragg wavelength affects their long-term stability resulting in an erroneous temperature measurement. Herein we report the most precise and accurate measurements of wavelength drifts available up to date on high-temperature FBGs. The measurements were performed with a set of packaged π-phase-shifted FBGs for high wavelength resolution, in caesium and sodium pressure-controlled heat pipes for stable temperature environment and with a tunable laser for stable wavelength measurements with a 0.1 pm resolution. Using this dataset we outline the experimental caveats that can lead to inconsistent results and confusion in measuring wavelength drifts, namely: influence of packaging; interchangeability of FBGs produced under identical conditions; birefringence of π-phase-shifted FBGs; initial transient behaviour of FBGs at constant temperature and dependence on the previous thermal history of FBGs. In addition, we observe that the wavelength stability of π-phase-shifted gratings at lower temperature is significantly improved upon by annealing at higher temperature. The lowest value of the wavelength drift we obtain is +0.014 pm·h−1 at 600 °C (corresponding to +0.001 °C·h−1) after annealing for 400 h at 1000 °C, the longest annealing time we have tried. The annealing time required to achieve the small drift rate is FBG-specific.
高温硅光纤布拉格光栅波长漂移的精确测量
光纤布拉格光栅(FBG)广泛用于在恶劣环境下进行高温测量,然而,特征布拉格波长的漂移会影响其长期稳定性,从而导致错误的温度测量。在此,我们报告了迄今为止在高温fbg上最精确和准确的波长漂移测量结果。测量采用高波长分辨率的封装π相移fbg,稳定温度环境下的铯和钠压力控制热管,以及0.1 pm分辨率的可调谐激光器。使用此数据集,我们概述了在测量波长漂移时可能导致结果不一致和混淆的实验注意事项,即:包装的影响;相同条件下生产的fbg的互换性;π移相fbg的双折射;fbg在恒定温度下的初始瞬态行为及其与以往热历史的关系。此外,我们还观察到,在较高温度下退火后,π相移光栅在较低温度下的波长稳定性显著提高。在1000℃下退火400 h后,波长漂移最小值为+0.014 pm·h−1(对应于+0.001℃·h−1),这是我们尝试过的最长退火时间。实现小漂移速率所需的退火时间是fbg特有的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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