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Improvement of Thermal Interruption Capability in Self-Blast Interrupting Chamber for New 245-kV 50-kA GCB

机译:新型245 kV 50 kA GCB自爆式灭弧室的热中断能力提高

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摘要

Current zero measurements are performed for 245 kV-50 kA-60 Hz short line fault (L90) interruption tests with a self-blast interrupting chamber (double-volume system) which has the interrupting capability up to 245 kV-50 kA-50 Hz L90. Lower L90 interruption capability is observed for longer arcing time although very high pressure rise is obtained. It may be caused by higher blowing temperature and lower blowing density for longer arcing time. Interruption criteria and an optimization method of the chamber design are discussed to improve L90 interruption capability with it. The new chambers are designed at 245 kV-50 kA-60 Hz to improve gas density in thermal volume for long arcing time. 245 kV-50 kA-60 Hz L90 interruptions are performed with the new chamber. The suggested optimization method is an efficient tool for the self-blast interrupting chamber design although study of computing methods is required to calculate arc conductance around current zero as a direct criterion for L90 interruption capability with higher accuracy.
机译:使用自爆式中断室(双容积系统)对245 kV-50 kA-60 Hz短线路故障(L90)中断测试执行电流零测量,该中断室的中断能力高达245 kV-50 kA-50 Hz L90。尽管获得了很高的压力上升,但是对于较长的电弧放电时间,观察到较低的L90中断能力。较长的电弧时间可能是由于较高的吹炼温度和较低的吹炼密度引起的。讨论了中断标准和腔室设计的优化方法,以提高L90的中断能力。新的腔室设计为245 kV-50 kA-60 Hz,以提高热容中的气体密度,延长电弧放电时间。使用新腔室进行245 kV-50 kA-60 Hz L90中断。尽管需要对计算方法进行研究来计算电流零附近的电弧电导率,以作为更高精度的L90中断能力的直接标准,但建议的优化方法是自爆中断室设计的有效工具。

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