风作用下OPGW电缆温度、热应变和热机械力形成的光纤分布式传感

Abdurrahman Gunday, S. E. Karlik
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引用次数: 8

摘要

光地线(OPGW)一般用于保护架空电力电缆的相导体免受雷击造成的大放电电流和短路、击穿造成的瞬时电流增大的影响,并为通信提供数据传输。OPGW电缆暴露在风、雨、湿度和雪等环境因素的影响下,以及短路和相位导体瞬时电流增加的冷却/加热效应下。当OPGW电缆受到这些影响时,电缆绝缘会及时发生变形。在本研究中,利用基于拉曼效应的光纤分布式温度传感(DTS)方法,分析了OPGW电缆沿线因环境条件,特别是风速和风向而发生的温度和热应变变化,并进行了仿真。此外,发生在OPGW电缆上的热机械力已被表示为温度变化和杨氏模量变化的函数。热机械力的温度和热应变依赖性也得到了推导。利用理论分析结果,模拟了考虑风效应的传感光纤的热-机械力变化。建立了工作波长为1550 nm的单模光纤中心松管型OPGW电缆的仿真模型。风速在5.3 m/s ~ 10.3 m/s范围内,电缆表面温度变化范围为26.86℃~ 22.41℃,最小热应变变化范围为184 με ~ 64.67 με。仿真结果表明,热机械力的温度敏感性是热应变敏感性的26倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optical fiber distributed sensing of temperature, thermal strain and thermo-mechanical force formations on OPGW cables under wind effects
Optical ground wire (OPGW) is generally used to protect the phase conductors of the overhead power cables from high discharge currents due to lightning strikes and instantaneous current increase due to short-circuits or breakdowns as well as to provide data transmission for telecommunication purposes. OPGW cables are exposed to effects of environmental factors such as wind, rain, humidity and snow as well as cooling/heating effects of short-circuits and instantaneous current increases occurring on the phase conductor. When the OPGW cable is exposed to those effects, deformations occur on the cable insulation in time. In this study, using Raman effect based optical fiber distributed temperature sensing (DTS) method, temperature and thermal strain variations occurring along the OPGW cable due to environmental conditions, in particular wind speed and wind direction, have been analyzed and simulations have been performed. Furthermore, thermo-mechanical forces occurring on the OPGW cable have been expressed as a function of temperature change and Young modulus variations. Temperature and thermal strain dependencies of thermo-mechanical forces have also been derived. Using results of the theoretical analysis, simulations of thermo-mechanical force variations along the sensing fiber have also been performed considering the wind effect. The simulation model has been built up for central loose tube type OPGW cable containing single mode optical fiber operating at 1550 nm. For wind speed variations between 5.3 m/s and 10.3 m/s, minimum temperature detected on the cable varies between 26.86 °C and 22.41 °C, respectively, minimum thermal strain varies between 184 με and 64.67 με, respectively. Simulation results show that temperature sensitivities of thermo-mechanical forces are 26 times greater than thermal strain sensitivities.
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