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Thermal and magnetic analyses of gas-insulated lines

机译:气体绝缘管线的热和磁分析

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This paper presents the factors affecting current rating "ampacity" of buried three-phase, naturally cooled isolated-phase gas-insulated lines (GIL) with flat formation and finite-element simulation of double-circuit, three-phase GIL inside a tunnel to calculate the magnetic-flux and current densities. In the former analysis, the depth of GIL burial, interspacing of phases and soil thermal resistivity are investigated to show their impacts on the GIL ampacity. In the latter analysis, the effects of electrical and physical arrangements of GIL phases on the magnetic-flux density inside and outside the tunnel, and the current density in few installed liquefied natural gas (LNG) pipelines, which run in parallel to the GIL inside the tunnel, are also studied. In any GIL configuration, the magnetic field impact is always extremely low. Localized hot spots along the periphery of the GIL enclosure are found and corrosion can be accelerated due to temperature gradient. Moreover, there is a possibility of galvanic corrosion of the enclosures when they are bonded together and with the gallery steel reinforcement at very short length intervals. The simulation results also give the best location of the LNG pipelines or any cables to have the lowest electromagnetic induction. The configuration that has the best "magnetic behavior" is distant-placed arrangement (DPA) with (abc-cba) phase arrangement. The induced eddy-current density in the LNG pipelines is very low and hence its thermal effects can be neglected.
机译:本文介绍了影响扁平化地埋三相自然冷却隔离相气体绝缘线(GIL)的额定电流“安培数”的因素,以及隧道内双回路三相GIL的有限元模拟。计算磁通量和电流密度。在以前的分析中,研究了GIL埋藏的深度,相的间隔和土壤的热阻率,以显示它们对GIL载流量的影响。在后面的分析中,GIL相的电气和物理布置对隧道内外的磁通密度以及安装的少量液化天然气(LNG)管道中的电流密度的影响,这些管道与GIL的内部平行隧道,也进行了研究。在任何GIL配置中,磁场影响始终非常低。发现沿着GIL外壳外围的局部热点,并且由于温度梯度而加速腐蚀。而且,当将外壳结合在一起并且与通道钢加强件以非常短的长度间隔结合在一起时,外壳可能会发生电化腐蚀。仿真结果还给出了LNG管道或任何电缆的最佳位置,从而具有最低的电磁感应。具有最佳“磁性能”的配置是具有(abc-cba)相排列的远距排列(DPA)。 LNG管道中的感应涡流密度非常低,因此可以忽略其热效应。

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