Characteristics of the insulation resistance of the cable according to high temperature environment and temperature increase in the melting furnace process

IF 3.6 3区 工程技术 Q2 ENGINEERING, CHEMICAL
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Abstract

In this study, the process environment temperature and insulation resistance were measured through the investigation on actual condition on cables of 2.5㎟ for Oil Pump #A, 6㎟ for Oil Pump #B, and 10㎟ for Heater CV, which are exposed to high temperature environments among the eight melting furnace processes. Based on this, the experiment was conducted in a facility that simulated the high temperature conditions in the process, and the effect of high temperature on insulation resistance was analyzed using the Arrhenius equation. Oil Pump #A showed a maximum temperature of 105 °C when the melting furnace was in operation, and 70 °C when it was stopped. Additionally, the insulation resistance maintained 100㏁ for up to 7 years, but then showed a rapid decrease of 50% to 50㏁ after one year. The experiments based on the actual condition and the application of the Arrhenius equation indicated that the insulation resistance decreased sharply at 80 °C, with the Arrhenius equation showing similar results. Therefore, applying the Arrhenius equation presented in this study can predict the insulation resistance of cables in high-temperature environments, thus preventing cable fires in places where it is difficult to measure and manage insulation resistance due to a high temperature environment.

电缆绝缘电阻在高温环境和熔炉过程中温度升高时的特性
在本研究中,通过对 8 个熔炼炉工艺中暴露于高温环境中的油泵 #A、油泵 #B 和加热器 CV 的 2.5㎟、6㎟ 和 10㎟ 电缆的实际情况进行调查,测量了工艺环境温度和绝缘电阻。在此基础上,在模拟工艺中高温条件的设备中进行了实验,并使用阿伦尼斯方程分析了高温对绝缘电阻的影响。A 号油泵在熔化炉运行时的最高温度为 105 °C,停止运行时的最高温度为 70 °C。此外,绝缘电阻在长达 7 年的时间里保持在 100̱,但在一年后迅速下降 50%至 50̱。根据实际情况和应用阿伦尼乌斯方程进行的实验表明,绝缘电阻在 80 °C 时急剧下降,阿伦尼乌斯方程也显示出类似的结果。因此,应用本研究提出的阿伦尼乌斯方程可以预测高温环境下电缆的绝缘电阻,从而防止在因高温环境而难以测量和管理绝缘电阻的地方发生电缆火灾。
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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来源期刊
CiteScore
7.20
自引率
14.30%
发文量
226
审稿时长
52 days
期刊介绍: The broad scope of the journal is process safety. Process safety is defined as the prevention and mitigation of process-related injuries and damage arising from process incidents involving fire, explosion and toxic release. Such undesired events occur in the process industries during the use, storage, manufacture, handling, and transportation of highly hazardous chemicals.
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