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Experimental Study on Microsecond Pulse Breakdown Characteristics of Propylene Carbonate Modified by Al Nanoparticles

机译:Al纳米粒子改性碳酸丙烯酯微秒脉冲击穿特性的实验研究

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Liquid dielectrics are very important and useful in pulsed power systems, due to their unique characteristics of large energy storage densities, ease of circulation, and low cost. They are applicable to power systems which have complex geometries. Propylene carbonate (PC), as a kind of polar liquids, shows bright prospects in compact pulsed power sources because of its great permittivity, high electrical breakdown stress, and broad environmental operating ability. In this paper, a dielectric breakdown experiments were conducted with a microsecond pulsed power source and a test cell with spherical electrodes. The breakdown properties of PC and PC-based nanofluids (NFs) were investigated by changing the increasing rate of the charging voltage. Besides, the influence of nanoparticles on the dielectric breakdown characteristics of PC was analyzed. Results show that with a slow increasing rate of the charging voltage, the introduction of nanoparticles greatly improved the breakdown stability of PC; while with a fast increasing rate of the charging voltage, NFs exhibited much larger mean breakdown voltage. We also demonstrated that the improvement effect of NFs’ dielectric performance could be explained by the energy band theory very well.
机译:液体电介质由于其具有大的储能密度,易于循环和低成本的独特特性,因此在脉冲电源系统中非常重要且有用。它们适用于具有复杂几何形状的电源系统。碳酸丙烯酯(PC)作为一种极性液体,由于其高介电常数,高电击穿应力和广泛的环境操作能力,在紧凑型脉冲电源中显示出广阔的前景。在本文中,使用微秒脉冲电源和带有球形电极的测试电池进行了介质击穿实验。通过改变充电电压的增加速率,研究了PC和基于PC的纳米流体(NFs)的击穿特性。此外,分析了纳米颗粒对PC介电击穿特性的影响。结果表明,随着充电电压的缓慢增加,纳米粒子的引入大大提高了PC的击穿稳定性。而随着充电电压的快速增加,NF呈现出更大的平均击穿电压。我们还证明,能带理论可以很好地解释NFs介电性能的改善效果。

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