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首页> 外文期刊>Dielectrics and Electrical Insulation, IEEE Transactions on >Corona discharge activity in nanoparticle dispersed transformer oil under composite voltages
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Corona discharge activity in nanoparticle dispersed transformer oil under composite voltages

机译:复合电压下纳米颗粒分散变压器油的电晕放电活性

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摘要

Titania (TiO2) nanoparticles with cetyl trimethyl ammonium bromide (CTAB) surfactant dispersed in transformer oil has higher corona inception voltage than the normal transformer oil, under AC, DC, and composite AC and DC voltages. It is observed that corona inception voltage is lower under composite voltages compared to AC and DC voltages. The corona activity radiates ultra high frequency (UHF) signals with its dominant frequency near 1 GHz. Operating a spectrum analyzer in zero span mode, the UHF signals generated from the corona activity, the number of discharges is observed to be more under composite voltages than under AC voltages, both at inception and at higher voltages. A reduction in interfacial tension and an improvement in flash point is observed in nano-titania with surfactant dispersed transformer oil. The addition of surfactant reduces the turbidity of the nanofluid. Phase Resolved Partial Discharge (PRPD) analysis with UHF signals measured, indicates that corona discharge activity occurs around the peak and the pre-peak rising portions of the supply voltage. It is observed that more discharges occur in the positive half cycle for AC superimposed with positive DC voltage and in the negative half cycle for AC superimposed with negative DC voltage. The magnitude of UHF signals formed due to corona activity is less with nanofluid, irrespective of voltage profiles.
机译:二氧化钛(TiO n 2 n)在交流​​,直流以及复合交流和直流电压下,分散在变压器油中的十六烷基三甲基溴化铵(CTAB)表面活性剂的纳米粒子具有比普通变压器油更高的电晕起始电压。可以看出,在复合电压下,电晕起始电压比交流和直流电压低。电晕活动辐射其主频接近1 GHz的超高频(UHF)信号。在零跨距模式下运行频谱分析仪,从电晕活动产生的UHF信号在初始电压和更高电压下观察到的复合电压下的放电次数要多于交流电压下的放电次数。在表面活性剂分散的变压器油中的纳米二氧化钛中观察到界面张力的降低和闪点的改善。表面活性剂的添加降低了纳米流体的浊度。用UHF信号测量的相分辨局部放电(PRPD)分析表明,电晕放电活动发生在电源电压的峰值和峰前上升部分附近。可以看出,对于交流叠加有正直流电压的正半周和反交流叠加有负直流电压的负半周,会有更多的放电。不论电压分布如何,使用纳米流体,由于电晕活性而形成的UHF信号的强度都较小。

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