Traditional lightning protection measures can not solve the problem of superimposed lightning strikes.This paper presents a compressing arc extinguishing lightning protection device,which can solve the problem of supe...Traditional lightning protection measures can not solve the problem of superimposed lightning strikes.This paper presents a compressing arc extinguishing lightning protection device,which can solve the problem of superimposed lightning strikes.This device can extinguish the power frequency continuous current arc quickly in 1-2 ms.It is far less than the response time of relay protection,which can avoid lightning trips and improve the reliability of power supply.The computer simulation and engineering practice show that the compressing arc extinguishing device has good protection effect on superimposed lightning strikes.展开更多
为提高输电线路的防雷性能,从灭弧防雷间隙和绝缘子配合时的伏秒特性出发,对爆炸波冲击作用下灭弧装置的灭弧机理进行了研究。基于电弧黑盒模型对暂态电弧进行建模,得出故障电流切除时电弧的电压、电流、电压变化率、电流变化率波形,并...为提高输电线路的防雷性能,从灭弧防雷间隙和绝缘子配合时的伏秒特性出发,对爆炸波冲击作用下灭弧装置的灭弧机理进行了研究。基于电弧黑盒模型对暂态电弧进行建模,得出故障电流切除时电弧的电压、电流、电压变化率、电流变化率波形,并进行了试验验证。结果表明:5 k A故障短路电流在第1次过零点时被切断,在爆炸冲击波作用下电弧在5 ms内经拉伸到变形到断裂直至熄灭,且未出现重燃;仿真结果与试验结果一致。基于该原理的灭弧装置现场试运行良好,验证了灭弧间隙的实用性。展开更多
基金the National Natural Science Foundation of China(No.51467002)Special Projects for Innovation-driven Development(No.2018AA03001Y).
文摘Traditional lightning protection measures can not solve the problem of superimposed lightning strikes.This paper presents a compressing arc extinguishing lightning protection device,which can solve the problem of superimposed lightning strikes.This device can extinguish the power frequency continuous current arc quickly in 1-2 ms.It is far less than the response time of relay protection,which can avoid lightning trips and improve the reliability of power supply.The computer simulation and engineering practice show that the compressing arc extinguishing device has good protection effect on superimposed lightning strikes.
文摘为提高输电线路的防雷性能,从灭弧防雷间隙和绝缘子配合时的伏秒特性出发,对爆炸波冲击作用下灭弧装置的灭弧机理进行了研究。基于电弧黑盒模型对暂态电弧进行建模,得出故障电流切除时电弧的电压、电流、电压变化率、电流变化率波形,并进行了试验验证。结果表明:5 k A故障短路电流在第1次过零点时被切断,在爆炸冲击波作用下电弧在5 ms内经拉伸到变形到断裂直至熄灭,且未出现重燃;仿真结果与试验结果一致。基于该原理的灭弧装置现场试运行良好,验证了灭弧间隙的实用性。