Center for Optics Research and Engineering, Shandong University, Qingdao 266237, China.
Key Laboratory of Laser and Infrared System of Ministry of Education, Shandong University, Qingdao 266237, China.
Sensors (Basel). 2023 Jan 22;23(3):1277. doi: 10.3390/s23031277.
High temperature detection is a constant challenge for condition monitoring under harsh environments in optical fiber sensors research. In this study, the temperature response characteristics of guided acoustic wave Brillouin scattering (GAWBS) spectra in silica single-mode fiber (SMF) up to 800 °C are experimentally investigated, demonstrating the feasibility of the method for high-temperature monitoring. With increasing temperature, the resonance frequency of GAWBS spectra increases in a nearly linear manner, with linearly fitted temperature-dependent frequency shift coefficients of 8.19 kHz/°C for mode and 16.74 kHz/°C for mode. More importantly, the linewidth of the GAWBS spectra is observed to narrow down with increasing temperature with a linearly fitted rate of -6.91 × 10/°C for modes and -8.56 × 10/°C for modes. The signal-to-noise ratio of the GAWBS spectra induced by both modes increase by more than 3 dB when the temperature rises from 22 °C to 800 °C, which indicates that the proposed sensing scheme has better performance in high-temperature environments, and are particularly suitable for sensing applications in extreme environments. This study confirms the potential of high-temperature sensing using only GAWBS in silica fibers without any complex micromachining process, which has the advantages of strong mechanical strength, simple structure, easy operation, and low cost.
高温检测是光纤传感器研究中恶劣环境条件监测的一个难题。在这项研究中,我们实验研究了高达 800°C 时二氧化硅单模光纤(SMF)中导声波布里渊散射(GAWBS)光谱的温度响应特性,证明了该方法用于高温监测的可行性。随着温度的升高,GAWBS 光谱的共振频率呈近线性增加,模式的线性拟合温度相关频率位移系数为 8.19 kHz/°C,模式的线性拟合温度相关频率位移系数为 16.74 kHz/°C。更重要的是,随着温度的升高,GAWBS 光谱的线宽观察到变窄,模式的线性拟合速率为-6.91×10/°C,模式的线性拟合速率为-8.56×10/°C。当温度从 22°C 升高到 800°C 时,两种模式引起的 GAWBS 光谱的信噪比均提高了 3dB 以上,这表明所提出的传感方案在高温环境下具有更好的性能,特别适用于极端环境中的传感应用。这项研究证实了在没有任何复杂微加工工艺的情况下,仅使用 GAWBS 在二氧化硅光纤中进行高温传感的潜力,该方法具有强度高、结构简单、操作方便和成本低等优点。