电气工程学报 ›› 2020, Vol. 15 ›› Issue (4): 121-127.doi: 10.11985/2020.04.015

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电缆分布式光纤测温装置校验及温度补偿方法研究 *

刘佳鑫(), 郎业兴, 韦德福, 唐红   

  1. 国网辽宁省电力有限公司电力科学研究院 沈阳 110000
  • 收稿日期:2020-04-09 修回日期:2020-07-28 出版日期:2020-12-25 发布日期:2020-12-25
  • 作者简介:刘佳鑫,男,1985年生,博士,高级工程师。主要从事输变电设备状态检测与评价技术研究。E-mail: liujxldk@163.com
  • 基金资助:
    *国网辽宁省电力有限公司科技资助项目(2019YF-65);*国网辽宁省电力有限公司科技资助项目(2020YF-27)

Research on Calibration and Temperature Compensation of Distributed Optical Fiber Temperature Sensing Device for High Voltage Cable

LIU Jiaxin(), LANG Yexing, WEI Defu, TANG Hong   

  1. State Grid Liaoning Electric Power Research Institute, Shenyang 110000
  • Received:2020-04-09 Revised:2020-07-28 Online:2020-12-25 Published:2020-12-25

摘要:

针对高压电缆分布式光纤测温装置无法系统化开展仪器校验与性能评估的问题,提出了一种电缆分布式光纤测温装置校验方法。基于该方法,研究开发了一套基于自动化温度控制与采集的智能校验平台,利用可编程的循环恒温水浴搭建了分布式光纤测温装置校验环境,同时对系统的温度测量准确度等主要技术指标进行校验。文中采用该校验平台对四台相同配置的电缆分布式光纤测温装置开展测温准确度校验,各台装置测温准确度均小于±1 ℃。通过改变环境温度获得了各台装置的温漂数据,采用三次拟合方法得到了各台装置在5~35 ℃范围内的温度补偿公式。应用温度补偿后,各台DTS装置平均误差下降36%,最大误差下降85%,四台装置测温结果的准确性和一致性明显提高,温漂最大误差对比环境稳定时下降约33%,测温数据稳定性更高。

关键词: 高压电缆, 分布式光纤测温, 在线监测, 温度补偿, 仪器校验, 性能评估

Abstract:

In view of the problem that the distributed optical fiber temperature measuring device of high voltage cable cannot systematically carry out instrument calibration and performance evaluation, a calibration method of distributed optical fiber temperature sensing device is proposed. Based on this method, an intelligent verification platform based on automatic temperature control and acquisition is developed by using a programmable constant temperature water bath for main technical indicator calibration, such as temperature measurement accuracy and so on. The calibration platform is used to test the temperature accuracy of four cable distributed optical fiber temperature sensing devices with the same configuration. The temperature measuring accuracy of each device is less than ±1 ℃. The temperature drift data of each device are obtained by changing the ambient temperature, and the temperature compensation formula of each device in the range of 5-35 ℃ is obtained by using cubic fit. After the application of temperature compensation, the average error of each DTS device decreases 36%, and the maximum error decreases 85%. The accuracy and consistency of the temperature measurement results of each device are significantly improved. The maximum temperature drift error decreases about 33% compared with in stable environment, and the stability of temperature measurement data is higher.

Key words: High voltage cable, distributed optical fiber temperature sensing, online monitoring, temperature compensation, instrument calibration, performance evaluation

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