电力电缆热波动过程数学模型中局部放电能量的估计

N. Poluyanovich, M. Dubyago, A.A. Shurykin, D. V. Burkov
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引用次数: 0

摘要

文章表明,由于绝缘加热而产生的杂质或氧化产物的存在会导致泄漏电流。得到了泄漏电流有源分量所发出功率的计算公式。考虑内部热源的取值,对电力电缆热过程的基本数学模型进行了改进。获得了一个数学模型,该模型允许计算局部放电的功率,以及确定主绝缘中夹杂物的位置,这是由于泄漏电流的有源成分的功率,当它发生在主电缆绝缘中。考虑夹杂物的热阻,采用分段函数法计算了电缆绝缘层间的热流通量变化。该数学模型与电缆截面内逐层等温线的计算,使确定绝缘材料中夹杂物的存在及其对电缆截面特征点温度分布曲线的影响成为可能。在开发的模型中提出的方法使得根据夹杂物的热尺寸和几何尺寸计算热损失成为可能。这将允许获得电缆线路所有层的温度,从径向距离开始,绝缘芯线电流引起的夹杂物参数,作为主要的温度形成因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Estimation of partial discharge energy in a mathematical model of thermal fluctuation processes of a power cable
The article shows that the presence of impurities or oxidation products resulting from heating in insulation leads to leakage currents. The formula for calculating the power emitted by the active component of the leakage current is obtained. The basic mathematical model of thermal processes of a power cable line was refined by taking into account the values of internal heat sources. A mathematical model was obtained that allows calculating the power of partial discharges, as well as determining the location of the inclusion in the main insulation, due to the power of the active component of the leakage current, when it occurs in the main cable insulation. The calculation of the change in heat flux passing through the layers of cable insulation by the piecewise-specified functions method, taking into account the thermal resistance of the inclusion, is carried out. The mathematical model, along with the layer-by-layer calculation of isotherms in the cable section, makes it possible to determine the presence of inclusions in the insulating material and their influence on the temperature distribution profile at characteristic points of the cable section. The method proposed in the developed model makes it possible to account for heat losses based on the thermal and geometric dimensions of the inclusion. This will allow to obtain the temperature in all layers of the cable line, starting from the radial distances, inclusion parameters caused by the insulation core current, as the main temperature-forming factor.
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