Effects of Insulation Thickness on Flame Spread over Electrical Copper Wire with Applied AC Electric Fields

IF 0.7 Q4 ENGINEERING, MECHANICAL Journal of the Korean Society of Combustion Pub Date : 2020-12-31 DOI:10.15231/JKSC.2020.25.4.019
Min-Sung Kang, C. Yoo, Jeong Park, S. Chung, O. Kwon
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Abstract

Effects of insulation thickness on flame spread over electrical copper wires with applied AC electric fields were experimentally investigated. The AC volrage and frequency varied in ranges of 0-5 kV and 10-1000 Hz, respectively. A one electrode configuration was used such that the electric potential was applied to one wire end and thus the infinite ambience could be a ground. The results showed that the flame shape and the tilting direction were significantly influnced by applied voltage and frequency. The flame spread rate decreased in an increase of insulation thickness as well as varied sensitively with applied votage and frequency. Additionally, the molten polyethylene (PE) experienced various dynamic behaviors such as dripping of molten PE, electrospray, di-electro-phoresis, and rotation of molten PE, essentially affecting the flame spread rate. These complicated phenomena were systematically analyzed and discussed.
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交流电场作用下绝缘厚度对铜线火焰蔓延的影响
实验研究了交流电场作用下绝缘厚度对铜线火焰蔓延的影响。交流电压和频率的变化范围分别为0 ~ 5kv和10 ~ 1000hz。采用单电极结构,使得电势被施加到导线一端,因此无限的环境可以是一个地。结果表明,施加电压和频率对火焰形状和倾斜方向有显著影响。火焰蔓延速度随绝缘厚度的增加而减小,并随外加电压和频率的变化而敏感。此外,熔融聚乙烯(PE)发生了熔融聚乙烯滴下、电喷雾、双电泳、熔融聚乙烯旋转等多种动态行为,对火焰的蔓延速度有重要影响。对这些复杂的现象进行了系统的分析和探讨。
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