Analysis of Current and Potential Characteristics of UHVAC GIL Tunnel Project

Xuefang Tong, Xiaohui Dong, Bo Tan
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引用次数: 1

Abstract

In order to master the safety of the GIL shell grounding system of the 1000kV AC UHV GIL tunnel project and support the design and construction of the project, a shell grounding system model consisting of the main grounding grid of connection stations on both sides, the tower grounding grid of overhead ground wires on both sides and the tunnel grounding grid is established. The GIL current and potential distribution under normal operation and short-circuit fault are calculated, and the influence and setting of grounding poles and three-phase connection poles are analyzed. The results show that: under normal operation, the current of connection poles and grounding poles along the GIL presents a U-shaped distribution. In case of short-circuit fault, besides the two ends, the current of the connection poles and grounding poles near the fault point also presents a peak, which can reach hundreds of amperes; and the distribution of potential and potential difference along the GIL also presents a similar U-shaped feature. The spacing of grounding poles can be set within 300m, which can ensure that the potential difference is within the safety limit. The copper bar of 50mm×5mm can be selected for both the grounding pole and the intermediate connecting pole, and the conductor with larger cross section is needed for the connection pole at both ends due to the long-term passing current close to the rated value.
特暖通隧道工程电流、电位特性分析
为了掌握1000kV交流特高压GIL隧道工程GIL壳接地系统的安全性,支持工程的设计和施工,建立了由两侧连接站主接地网、两侧架空接地线塔式接地网和隧道接地网组成的GIL壳接地系统模型。计算了正常运行和短路故障下的GIL电流和电位分布,分析了接地极和三相接地极的影响及设置。结果表明:在正常工作情况下,沿GIL的连接极和接极电流呈u型分布。发生短路故障时,除两端外,故障点附近的连接极和接地极电流也出现峰值,可达数百安培;电势和电位差沿GIL的分布也呈现类似的u型特征。接地极间距可设置在300m以内,可保证电位差在安全限值内。接地极和中间连接极均可选用50mm×5mm铜排,由于长期通过电流接近额定值,两端连接极需选用截面较大的导体。
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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