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基于高非线性光纤中的前向布里渊散射实现性能增强的温度和应变同时传感。

Simultaneous sensing of temperature and strain with enhanced performance using forward Brillouin scattering in highly nonlinear fiber.

出版信息

Opt Lett. 2023 Jul 1;48(13):3611-3614. doi: 10.1364/OL.493637.

Abstract

Simultaneous temperature and strain sensing has been demonstrated for the first time to our knowledge by using forward Brillouin scattering (FBS) in a highly nonlinear fiber (HNLF). It is based on different responses of radial acoustic modes R and torsional-radial acoustic modes TR to the temperature and strain. High-order acoustic modes with large FBS gain in an HNLF are chosen to improve the sensitivity. To reduce the measurement error, a method to select the best mode combination with the lowest measurement errors is proposed and demonstrated by both simulation and experiment. Three mode combinations have been used for both temperature and strain sensing, and by using the mode combination (R, TR), the lowest temperature and strain errors of 0.12°C/39 µɛ have been achieved. Compared with sensors using backward Brillouin scattering (BBS), the proposed scheme only requires frequency measurement around 1 GHz, which is cost-effective without the need for a ∼10-GHz microwave source. Moreover, the accuracy is enhanced since the FBS resonance frequency and spectrum linewidth are much smaller than those of BBS.

摘要

据我们所知,首次在高非线性光纤(HNLF)中利用前向布里渊散射(FBS)实现了温度和应变的同时传感。这是基于径向声波模 R 和扭转-径向声波模 TR 对温度和应变的不同响应。选择 HNLF 中具有大 FBS 增益的高阶声波模来提高灵敏度。为了降低测量误差,提出并通过仿真和实验验证了一种选择具有最低测量误差的最佳模式组合的方法。已将三种模式组合用于温度和应变传感,并且通过使用模式组合(R、TR),实现了最低的温度和应变误差 0.12°C/39µɛ。与使用反向布里渊散射(BBS)的传感器相比,该方案仅需要在 1GHz 左右进行频率测量,无需使用约 10GHz 的微波源,因此具有成本效益。此外,由于 FBS 共振频率和光谱线宽远小于 BBS 的频率和光谱线宽,因此精度得到了提高。

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