Investigation of Partial Discharge Activity of a Conducting Particle in Nanofluid under Composite Voltages

K. Swati, R. Sarathi
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Abstract

In the present work, an attempt has been made to obtain stable nanofluids by dispersing an appropriate amount of titania nanoparticles in transformer oil as base oil. The surfactant added in appropriate amount helps in achieving consistent dispersion of the nanoparticles in colloidal solution. A set of experiments were done for understanding the discharge trait because of particle movement in nanofluid and pure transformer oil. It is noted that the particle levitation voltage in nanofluids achieves an increment as compared to base transformer oil. It is realised that partial discharges are generated because of movement of particle in nanofluid which emits UHF signals with 0.9 GHz as major frequency content. The partial discharge trait in nanofluid is studied under AC, DC and composite voltages. The acquired UHF signals are fed to spectrum analyser to realise number of discharges that occurs on application of supply voltage. The number of discharges are noted to be lesser in nanofluids compared to transformer oil. For investigating the phase of supply where discharges are generated because of particle movement, Phase Resolved Partial Discharge (PRPD) studies were done for the motion of conducting particle in nanofluid on application of AC and composite voltages.
复合电压下纳米流体中导电粒子局部放电活性的研究
本文尝试在变压器油中分散适量的纳米二氧化钛作为基础油,以获得稳定的纳米流体。加入适量的表面活性剂有助于纳米颗粒在胶体溶液中的均匀分散。为了解纳米流体和纯变压器油中粒子运动对放电特性的影响,进行了一系列实验研究。值得注意的是,与基础变压器油相比,纳米流体中的粒子悬浮电压实现了增量。由于纳米流体中粒子的运动而产生局部放电,纳米流体发射以0.9 GHz为主要频率的超高频信号。研究了纳米流体在交流、直流和复合电压下的局部放电特性。采集到的超高频信号被送入频谱分析仪,以实现施加电源电压时发生的放电次数。与变压器油相比,纳米流体中的放电次数较少。为了研究微粒运动产生放电的电源相位,对纳米流体中导电微粒在交流电压和复合电压作用下的运动进行了相分辨局部放电(PRPD)研究。
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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