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Dielectric Spectrum of Random Copolymerization Polypropylene Nanocomposites Doped with Nano Silica at Different Temperatures

机译:在不同温度下掺杂纳米二氧化硅的无规共聚聚丙烯纳米复合材料的介电光谱

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Random copolymerization polypropylene (PPR), a recyclable thermoplastic material with a melting temperature of over 150°C and excellent mechanical properties, has potential to become the insulation materials used in high voltage cables. To investigate dielectric properties of PPR and its nanocomposites at different temperatures, especially the dielectric spectrum at high temperatures, film samples of PPR and its nanocomposites doped with different content of nano silica were prepared. The microscopic morphologies were observed firstly for analyzing the dispersion of nanoparticles. Then the dielectric spectrums were measured at temperatures of 30, 50, 70, 90, 110 and 130°C. After this, the effects of nanoparticle content, temperature and frequency on the relative permittivity and dielectric dissipation factors are discussed and the mechanism is analyzed. It can be concluded that relative permittivity of PPR and its nanocomposites are almost unaffected by temperature in the range of 30 - 110°C and remains relatively low values. When the temperature is below 110°C, the relative permittivity of the PPR nanocomposites increases with the increase of temperature; And when the temperature is 110°C or above, the value is related to the applied voltage frequency and the content of nanoparticles. And with the temperature rising, the dielectric dissipation factor of PPR nanocomposites have an evident increase at lower frequency, which contributes to the DC conductivity.
机译:随机共聚聚丙烯(PPR),熔化温度超过150℃的可再循环热塑性材料和优异的机械性能,具有成为高压电缆中使用的绝缘材料。为了研究PPR的介电性能及其纳米复合材料在不同温度下,特别是在高温下的介电光谱,制备PPR的薄膜样品及其掺杂有不同含量的纳米二氧化硅的纳米复合材料。首先观察到微观形态,用于分析纳米颗粒的分散体。然后在30,50,70,90,110和130℃的温度下测量介电光谱。此后,讨论了纳米颗粒含量,温度和频率对相对介电常数和介电耗散因子的影响,分析了机制。可以得出结论,PPR的相对介电常数及其纳米复合材料几乎不受30-110℃的温度的影响,并且保持相对较低的值。当温度低于110℃时,PPR纳米复合材料的相对介电常数随温度的增加而增加;并且当温度为110℃或更高时,该值与施加的电压频率和纳米颗粒的含量有关。随着温度上升,PPR纳米复合材料的介电耗散因子在较低频率下具有明显的增加,这有助于DC电导率。

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