特高压电气设备施工中屏蔽系统的效率问题

L. Zhorniak, A. Afanasiev, Vitaliy Schus, Oleksandr Levchenko
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摘要

在这篇文章中,作者提出了一种估算电负荷参数的方法,用于计算轴对称充气高压设备固体绝缘结构的电场强度分布。这种结构由支架和绝缘汇流排组成,内部充有作为绝缘介质的 SF6 气体。这项技术可以根据设备的设计特点和用于平衡电场的屏蔽系统,评估电气负载的参数(电压和电场强度)。在设计和改进单个设计方案时,所提出的方法可以评估充气高压设备(互感器、避雷器、避雷器等)保护系统设计参数的影响效果。考虑到实际运行条件和外部因素的影响,计算结果与实验研究数据以及通过监测绝缘结构运行情况获得的统计信息非常吻合。采用这种技术,我们可以考虑到外部因素的影响以及互感器和浪涌抑制器固有的运行特性。例如,在所提出的方法中,我们考虑了在最不利条件下运行的支撑绝缘涂层,如外部污染、湿气及其组合、各种来源的过电压等。以 OПН-500 系列浪涌抑制器的支撑绝缘罩为例,计算结果证实了理论结论。通过对特定绝缘结构进行一系列额外的计算和实验测试,可以更准确地确定所提出的方法在屏蔽系统影响下预测场强分布参数的有效性。因此,结论是所获得的结果可用于评估浪涌抑制器和充气式互感器的外部绝缘特性,以及开关设备和变电站类似高压设备在超高压和变电站超高压条件下的外部绝缘特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
To the problem of the shielding systems efficiency in constructions of extra-high voltage electrical apparatus
In the article, the authors proposed a method for estimating the electric load parameters to calculate the distribution of the electric field strength of the solid insulating structure of gas-filled high-voltage devices with axial symmetry. This structure consists of a support and insulating busbar filled with SF6 gas as an internal insulating medium. This technique allows to evaluate the parameters of the electrical load (voltage and field strength) depen-ding on the design features of the device and the shielding system used to equalize the electric field. The proposed methodology allows to evaluate the effectiveness of the influence of design parameters of the protection system for gas-filled high-voltage equipment (instrument transformers, arresters, surge arresters, etc.) when designing and improving individual design solutions. The calculation results are in good agreement with the data of experimental studies and statistical information obtained as a result of monitoring the operation of insulating structures, taking into account actual operating conditions and the influence of external factors. The implementation of this technique allows us to take into account the influence of external factors and operational characteristics inherent in instrument transformers and surge suppressors. In the proposed methodology, as an example, we consider a supporting insulating coating that is in operation under the most unfavorable conditions, such as external pollution, moisture and their combination, overvoltage of various origins, etc. The theoretical conclusions are confirmed by the results of calculations using the example of the support-insulating cover of the surge suppressor of the OПН-500 series. A more accurate determination of the effectiveness of the proposed methodology for predicting the field strength distribution parameters under the influence of a shielding system can be achieved by conducting an additional series of calculations and experimental tests of specific insulating structures. Thus, it was concluded that the obtained results can be used to evaluate the external insulation characteristics of both surge suppressors and gas-filled instrument transformers, as well as similar high-voltage equipment of switchgears and transformer substations in conditions of ultra- and transformer substations ultra-high voltages
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