Calculation method of hot spot temperature of isolation switch based on improved heat path model

Xing Fan, Qiaogen Zhang, Yi Zhao, Zhehao Pei, Weijiang Chen, Tao Wen, Yu Zhang, Jiahui Yang
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Abstract

The isolation switch is one of the most commonly used high-voltage electrical equipment in the power grid, and its stability and service life directly affect the operation of the power grid. The fast calculation method of the hot spot temperature for isolation switch is an important contents of online monitoring. However, the numerical calculation method of the thermal field distribution commonly used currently has a slow calculation speed, complicated modeling and change calculation conditions, and is difficult to apply. Therefore, this paper proposes an improved method for calculating the hot spot temperature of an isolating switch based on a thermal circuit model, which can better balance the accuracy and calculation speed. This article analyzes the GW16-550 outdoor high-voltage AC isolating switch. The calculation results show that the hot spot is located at the contact point of the contact. Under the rated conditions, the hot spot temperature is about 20 K higher than the ambient temperature. The hot spot temperature decreases with the increase of wind speed, and changes significantly at low wind speeds. Hot spot temperature is directly proportional to ambient temperature and service life. This research provides support for the research of hotspot temperature for isolation switch, and has certain practical value.
基于改进热路模型的隔离开关热点温度计算方法
隔离开关是电网中最常用的高压电气设备之一,其稳定性和使用寿命直接影响电网的运行。隔离开关热点温度的快速计算方法是在线监测的重要内容。然而,目前常用的热场分布数值计算方法存在计算速度慢、建模复杂、计算条件变化等问题,难以应用。因此,本文提出了一种基于热电路模型的隔离开关热点温度计算改进方法,可以更好地平衡计算精度和计算速度。本文对GW16-550室外高压交流隔离开关进行了分析。计算结果表明,热点位于接触面的接触点处。在额定工况下,热点温度比环境温度高约20k。热点温度随风速的增大而减小,在低风速下变化显著。热点温度与环境温度和使用寿命成正比。本研究为隔离开关热点温度的研究提供了支撑,具有一定的实用价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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