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Experimental study on breakdown characteristics of propylene carbonate-based nano-fluids under microsecond pulses

机译:微秒脉冲下丙烯碳酸亚碳酸亚烃基纳米液分解特性的实验研究

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As an alternative to water, propylene carbonate (PC) has a good application prospect in the compact pulsed power sources for its breakdown strength higher than that of water, resistivity bigger than 10 Ω·m and low freezing temperature (-49 °C). In this paper, the investigation into dielectric breakdown of PC and PC-based nano-fluids (NFs) subjected to high amplitude electric field is presented with microsecond pulses applied to a 1 mm gap full of PC or NFs between spherical electrodes. One kind of NFs is composed of PC mixed with 0.5-1.4 vol% BaTiO (BT) nano-particles at mean diameter ≈100 nm and another is mixed with 0.3-0.8 vol% BT nano-particles at mean diameter ≈30 nm. The experimental results demonstrate the rise of permittivity and improvement of the breakdown strength of NFs compared with PC. Moreover, it is found that there exists an optimum fraction for these NFs corresponding to tremendous surface area in nano-composites with finite mesoscopic thickness. In concrete, the dielectric breakdown voltage is 33% higher than that of PC as the volume concentration of nano-particles with 100 nm average diameter is 0.9%, and the breakdown voltage is 40% higher as the volume concentration of nano-particles with 30 nm average diameter is 0.6%. The possible reason of these phenomena is the interfaces between nano-fillers and PC matrices providing myriad trap sites for charge carriers, which play a dominant role in the breakdown performance of NFs.
机译:作为水的替代方案,碳酸丙酯(PC)在紧凑的脉冲电源中具有良好的应用前景,其击穿强度高于水,电阻率大于10Ω·m和低冷冻温度(-49°C)。在本文中,通过将微秒脉冲施加到满融PC或球形电极之间的PC或NFS的1mm间隙的微秒脉冲对PC和​​基于PC基纳米流体(NFS)的介电击穿的研究。一种NFS由在平均直径为0.5-1.4Vol%BATIO(BT)纳米颗粒的PC组成,在均值为0.5-1.4Vol%(BT)纳米颗粒,另一个在平均≈30nm的0.3-0.8vol%bt纳米颗粒中混合。实验结果表明,与PC相比,NFS的介电常数的兴收性和改善。此外,发现这些NFS对应于具有有限介质厚度的纳米复合材料的巨大表面积的NFS存在最佳部分。在混凝土中,由于100nm平均直径为0.9%的纳米颗粒的体积浓度为0.9%,介电击穿电压高出33%,并且击穿电压与30的纳米颗粒的体积浓度高40% NM平均直径为0.6%。这些现象的可能原因是纳米填充物和PC矩阵之间的界面,提供用于电荷载体的Myriad陷阱部位,这在NFS的击穿性能下起显着作用。

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