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Effect of Nanoparticle Morphology on Pre-Breakdown and Breakdown Properties of Insulating Oil-Based Nanofluids

机译:纳米颗粒形态对绝缘油基纳米流体预断裂和击穿性能的影响

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摘要

Nanoparticles currently in use are challenged in further improving the dielectric strength of insulating oil. There is a great need for a new type of nanoparticle to promote the application of insulating oil-based nanofluids in electric industries. This paper experimentally investigates the effect of nanoparticle morphology on pre-breakdown and breakdown properties of insulating oil-based nanofluids. The positive impulse breakdown voltage of insulating oil can be significantly increased by up to 55.5% by the presence of TiO2 nanorods, up to 1.23 times that of TiO2 nanospheres. Pre-breakdown streamer propagation characteristics reveal that streamer discharge channels turn into a bush-like shape with much denser and shorter branches in the nanofluid with TiO2 nanorods. Moreover, the propagation velocity of streamers is dramatically decreased to 34.7% of that in the insulating oil. The greater improvement of nanorods on the breakdown property can be attributed to the lower distortion of the electric field. Thus, when compared with nanospheres, pre-breakdown streamer propagation of nanofluid is much more suppressed with the addition of nanorods, resulting in a greater breakdown voltage.
机译:当前使用的纳米颗粒在进一步提高绝缘油的介电强度方面受到挑战。迫切需要一种新型的纳米颗粒,以促进绝缘油基纳米流体在电气工业中的应用。本文实验研究了纳米颗粒形态对绝缘油基纳米流体的预分解和分解特性的影响。 TiO2纳米棒的存在可以使绝缘油的正脉冲击穿电压显着提高至55.5%,是TiO2纳米球的1.23倍。分解前的流光传播特征表明,流光放电通道变成了灌木状的形状,在含有TiO2纳米棒的纳米流体中,分支的密度更高,分支更短。此外,拖缆的传播速度显着降低到绝缘油中的传播速度的34.7%。纳米棒在击穿性能上的更大改进可以归因于电场的较低畸变。因此,当与纳米球相比时,通过添加纳米棒可大大抑制纳米流体在击穿前的流光传播,从而导致更大的击穿电压。

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