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Effect of Size and Content of SiO_2 Nanoparticle on Corona Resistance of Silicon-Boron Composite Oxide/SiO_2/Epoxy Composite

机译:SiO_2纳米粒子尺寸和含量对硅 - 硼复合氧化物/ SiO_2 /环氧复合材料电晕电阻的影响

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摘要

Corona discharge always threatens the safe and long-term operation of electrical equipment. Therefore, it is imperative to improve the corona resistance of electrical insulation materials. In this research work, fumed silica (SiO2) with different particle sizes and self-made organic silicon-boron composite oxide (Si-B) are used to modify epoxy resin (EP) for enhancing the corona resistance. Si-B/SiO2/EP nanocomposites with different SiO(2)content series and 4 kinds of SiO(2)particle size series are prepared by grinding machine dispersing and thermal curing. A strong dependence of the corona resistance on SiO(2)filler size in nano-scale and content is revealed experimentally. The filler combination of Si-B and nano-SiO(2)can reduce the relative permittivity of the Si-B/SiO2/EP nanocomposites and inhibit the increase of dielectric loss. With the particle size of SiO(2)filler increases, the space charge suppression effect and the thermal stability are reduced, but corona resistance life is improved.When the 15-nm SiO(2)content is 15 wt%, the corona resistance life of the Si-B/SiO2/EP nanocomposites can reach 8.99 h under 90 degrees C and 80 kV/mm electric field strength, while pure epoxy is only 0.86 h. The degradation path through the material is the more important factor affecting corona resistance performance-large particle size and well dispersion state can effectively extend the degradation path through the material.
机译:电晕放电总是威胁到电气设备的安全和长期运行。因此,必须提高电绝缘材料的电晕电阻。在该研究中,使用具有不同颗粒尺寸和自制成的有机硅 - 硼复合氧化物(Si-B)的气相二氧化硅(SiO 2)来改变环氧树脂(EP)以增强电晕抗性。具有不同SiO(2)含量系列和4种SiO(2)粒度系列的Si-B / SiO2 / EP纳米复合材料通过研磨机分散和热固化来制备。实验揭示了电晕抗性对SiO(2)填料尺寸和含量的强烈依赖性。 Si-B和纳米SiO(2)的填料组合可以降低Si-B / SiO 2 / EP纳米复合材料的相对介电常数,并抑制介电损耗的增加。随着SiO(2)填料的粒度增加,空间电荷抑制效果和热稳定性降低,但是电晕耐寿命得到改善。当15-NM SiO含量为15wt%时,电晕耐寿命Si-B / SiO 2 / EP纳米复合材料可以达到8.99小时,低于90℃和80kV / mm电场强度,而纯环氧树脂仅为0.86小时。通过该材料的降解路径是影响电晕电阻性能的更重要的因素 - 大的粒度,并且良好的分散状态可以有效地延长通过材料的劣化路径。

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