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    RDTS系统中基于拉曼强度动态调节的高空间分辨率温度传感研究

    High Spatial Resolution Temperature Sensing Based on Dynamic Raman Intensity Regulation in RDTS System

    • 摘要: 拉曼分布式温度传感(Raman Distributed Temperature Sensing, RDTS)系统在测准大型结构局部温变区(Temperature Variation Region, TVR)的温度中扮演着重要的角色。目前传统RDTS系统的空间分辨率为米量级,限制了厘米量级TVR的准确温度测量。为了解决这个问题,提出了采用温升曲线的拉曼强度信息实现高空间分辨率的温度传感。首先阐述了脉冲光内不同位置的光通量感知温度时具有不同的线性度,并将计算得到的TVR长度等价于脉冲光内的不同长度的光通量,从而动态获取温升曲线的拉曼强度。实验结果表明该方法可以很好地实现长度30 cm的TVR的温度传感,且温度误差为±3℃。相比较于温升曲线的最大拉曼强度,所提出的方法能够克服采样间距内不同加热区位置下引起的温度波动。该方案可以在RDTS系统上实现温度解调算法的软件升级,极大地促进了RDTS系统在高空间分辨率温度探测如油库火灾早期预警等领域中的应用。

       

      Abstract: Raman distributed temperature sensing (RDTS) systems play an important role in calibrating the temperature in the localized temperature variation region (TVR) of large structures. Currently, the spatial resolution of conventional RDTS systems is on the order of meters, which limits the accurate temperature measurement of TVRs on the order of centimeters. To solve this problem, we propose the Raman intensity information of the temperature rise profile to realize high spatial resolution temperature sensing. Firstly, we elaborate that the luminous fluxes at different positions within the pulsed light have different linearity when sensing temperature, and dynamically obtain the Raman intensity of the temperature rise curve by equating the calculated TVR lengths to the luminous fluxes at different lengths within the pulsed light. The experimental results show that the method can well realize the temperature sensing of TVRs with a length of 30 cm and a temperature error of ±3℃. Compared with the maximum Raman intensity of the temperature rise curve, the proposed method can overcome the temperature fluctuation caused by different heating zone positions within the sampling spacing. The scheme can realize the software upgrade of the temperature demodulation algorithm on the RDTS system, which greatly contributes to the application value of the RDTS system in the field of high spatial resolution temperature detection.

       

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