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Study on DC breakdown strength and morphology in XLPE/Al(OH)3 nanocomposites

机译:XLPE / Al(OH) 3 纳米复合材料的直流击穿强度和形貌研究

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Studies have proved that the dielectric strength of high-voltage DC cable used crosslinked polyethylene (XLPE) can be enhanced by nanoparticle incorporation. However, studies on the morphology of XLPE based nanocomposites and its relation with the DC dielectric strength are relatively inadequate. In this paper, XLPE/Al(OH)3 nanocomposites with different nano-filler contents (0.1 wt%-3wt%) were prepared. The nanoparticles were surface-modified by silane coupling agent which has alkyl chain on one end, then it was melt blended to prepare nanocomposites. Thin film samples were obtained using hot-press method. In order to observe the internal morphology and its change depending on the nano-filler content, permanganic etching was conducted to treat the samples. Results showed that the number of spherulite increased and the spherulite size remarkably decreased with the increase of nanofiller content, while the DSC results showed a little change in crystallinity. With the increase of nano-Al(OH)3 content, DC breakdown strength increased firstly and then decreased at 20°C, 50 °C and 70 °C, while it showed a exactly opposite trend at 90 °C. As DC breakdown strength decreased dramatically with the increasing temperature for all samples, then a “crossover” happened at about 80 °C. The morphology affects the dielectric properties of nanocomposites significantly. It should be one of the important parameters that used to explain the improved insulation performance of nanodielectrics especially the DC breakdown strength.
机译:研究证明,通过掺入纳米粒子可以提高使用交联聚乙烯(XLPE)的高压直流电缆的介电强度。然而,关于基于XLPE的纳米复合材料的形态及其与直流电介电强度的关系的研究相对不足。本文制备了具有不同纳米填料含量(0.1 wt%-3wt%)的XLPE / Al(OH) 3 纳米复合材料。该纳米颗粒通过在一端具有烷基链的硅烷偶联剂进行了表面改性,然后将其熔融共混以制备纳米复合材料。使用热压法获得薄膜样品。为了观察内部形态及其随纳米填料含量的变化,进行了高锰酸蚀处理样品。结果表明,随着纳米填料含量的增加,球晶数量增加,球晶尺寸显着减小,而DSC结果结晶度变化不大。随着纳米Al(OH) 3 含量的增加,直流击穿强度在20°C,50°C和70°C时先升高后降低,而在90°C时呈现出完全相反的趋势。 ℃。由于所有样品的直流击穿强度均随温度的升高而急剧下降,因此在大约80°C处发生了“交叉”现象。形态显着影响纳米复合材料的介电性能。它应该是用来解释纳米介电材料改善的绝缘性能,尤其是直流击穿强度的重要参数之一。

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