Lightning protection technology and grounding technology of transmission tower shared equipment

Liang Hong, Kaibin Wu, Mengmeng Yue
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Abstract

For the power transmission tower shared equipment, there are strong current wireless interference and complex grounding environment, which leads to problems such as unstable operation of the shared equipment. Based on the multi-grade surge protector and new grounding technology, through the impulse experiments, we apply simulated lightning current generated from combined wave generator (1.2/50 μs, 8/20 μs) on the modle, and an oscilloscope is used to collect residual voltage and current data to calculate the absorbed energy of the grounding unit. It is concluded that when the impulse voltage is between 300 V and 3500 V, as the impulse voltage increases, after passing through the multi-grade surge protector and grounding unit, the residual voltage and current value continue to increase, and the residual voltage value is 23.4 V–29.6 V increases linearly, and the increase is small; the internal resistance of the grounding unit decreases with the increase of the impulse voltage. The energy absorbed by the grounding unit is positively correlated with the impulse voltage and negatively correlated with the internal resistance, and its energy absorption percentage decays linearly. The multi-grade surge protector can effectively clamp the residual voltage value within a safe value, and its discharge effect is better than that of the traditional protection mode. It provides a theoretical basis and data reference for the lightning protection and anti-interference projects of the actual transmission tower sharing equipment, and has certain practical value.
输电塔共用设备的防雷技术与接地技术
对于输变电塔共享设备,存在较强的电流无线干扰和复杂的接地环境,导致共享设备运行不稳定等问题。基于多级浪涌保护器和新型接地技术,通过脉冲实验,将组合波发生器产生的模拟雷击电流(1.2/50 μs、8/20 μs)施加在模型上,并用示波器采集剩余电压和电流数据,计算接地单元吸收能量。由此得出,当冲击电压在300 V ~ 3500 V之间时,随着冲击电压的增大,通过多级浪涌保护器和接地单元后,残余电压和电流值继续增大,残余电压值为23.4 V ~ 29.6 V线性增大,且增大幅度较小;接地单元的内阻随着冲击电压的增大而减小。接地单元吸收的能量与冲击电压正相关,与内阻负相关,其能量吸收百分比呈线性衰减。多级浪涌保护器能有效箝位剩余电压值在安全范围内,放电效果优于传统保护方式。为实际输电塔共用设备的防雷抗干扰工程提供了理论依据和数据参考,具有一定的实用价值。
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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