利用Delta结构对输电线路磁场管理的研究

N. Abdel-Gawad
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引用次数: 7

摘要

电力需求的增加增加了对远距离传输大量电力的需求。高电压、高电流的大型输电线路配置会产生较大的电场和磁场应力值,对地面上的人和附近物体产生影响。这反过来又促进了计算技术文档的增加,以准确预测与所有电压和设计配置的线路耦合的孤立导电体中的场强。架空输电系统需要将狭长的土地设计成路权(R.O.W.)。这些带状土地通常根据某些方面进行评估;其中最重要的是通电线路的运行效应,包括磁场效应和电场效应。因此,确定地表磁场和电场应力的最大值是非常必要和重要的。总是要求将高压(或电流)输电设施的占地面积最小化。这可以通过降低地面的地应力来实现,这也被认为是最大限度地减少这种高压交流输电线路的场效应的努力目标。本文研究了500kv输电线路塔架结构对输电线路周围和附近感应磁场的影响。比较了500kv常规水平(平坦)输电线路与正三角、倒三角、紧凑型正三角和紧凑型倒三角结构的磁场,以及它们对输电线路周围路权距离的影响。结果表明,紧致正三角结构和完全紧致倒三角结构产生的磁场比传统平线结构产生的磁场小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Investigation into Magnetic Field Management under Power Transmission Lines using Delta Configurations
The increase of power demand has increased the need for transmitting huge amount of power over long dis- tances. Large transmission lines configurations with high voltage and current levels generate large values of electric and magnetic fields stresses which affect the humanbeing and the nearby objects located at ground surfaces. This has in turn prompted increased activity in the documentation of calculation techniques to accurately predict field strengths in isolated conducting bodies coupled to lines of all voltages and design configurations. Overhead transmission systems required strips of land to be designed as right-of-ways (R.O.W.). These strips of land are usually evaluated according to some aspects; the most important one is the operating effects of the energized line includ- ing magnetic and electric field effects. Therefore determination of the maximum value of the magnetic and electric field stress at ground surface is very necessary and important. It is always required to minimize the amount of land set for high voltage (or current) transmission facilities. This can be achieved by the reduction of the field stress at ground level which is also considered as the most object of efforts to minimize the field effects of such high voltage AC transmission lines. This paper investigates the effects of the transmission line towers configurations, on the mitigation of the induced mag- netic fields, around and near the transmission lines, of the 500 kV systems. The magnetic fields of the conventional 500 kV normal horizontal (flat) power transmission line configuration are compared with that of the normal delta, inverted delta, compact normal delta and compact inverted delta configurations, and in turn its effects on the right of way (R.O.W) distance around the transmission line. The obtained results show that, for compact normal delta, and full compact inverted delta configurations, the resultant magnetic fields produced are lower than that produced from the conventional flat line configuration.
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