PTFE/XLPE复合材料的空间电荷特性与直流介电性能的研究

Study of space charge characteristics and DC dielectric properties of PTFE/XLPE nanocomposite material

  • 摘要: 为提升高压直流电缆用交联聚乙烯(XLPE)绝缘材料在宽温域与高电场下的长期运行可靠性,本文研究了纳米聚四氟乙烯(PTFE)对XLPE空间电荷与介电性能的调控作用。采用熔融共混法制备了不同PTFE掺杂比例(0.1wt%、0.3wt%、0.5wt%)的PTFE/XLPE复合材料,系统研究了其在30~90℃温度范围和5~40 kV/mm电场强度下的介电性能。通过热刺激电流(TSC)、电声脉冲法(PEA)、直流电导与击穿强度测试,分析了复合材料的陷阱特性、空间电荷分布、电导特性与击穿行为。结果表明:PTFE掺杂量为0.1wt%时,复合材料在高温(80℃)和高场(40 kV/mm)下的空间电荷密度峰值较XLPE降低约49%;在15 kV/mm电场作用下,30~90℃温域内的电导电流仅上升一个数量级,显著优于纯XLPE(三个数量级);90℃时的直流击穿强度提升了29.2%。TSC测试表明,该比例下复合材料在135.5℃出现深度约1.16 eV的深陷阱。研究表明,纳米PTFE通过引入深浅陷阱协同调控电荷输运,有效抑制空间电荷积累并提升绝缘稳定性。

     

    Abstract: To enhance the long-term operational reliability of cross-linked polyethylene (XLPE) insulation material used in high-voltage direct current cables in a wide temperature range and high electric fields, this study investigated the regulatory effect of nano-polytetrafluoroethylene (PTFE) on the space charge and dielectric properties of XLPE. PTFE/XLPE composites with different PTFE doping ratios (0.1wt%, 0.3wt%, 0.5wt%) were prepared by melt blending. The dielectric properties of the material were systematically studied within the temperature range of 30~90℃ and the electric field strength of 5~40 kV/mm. Through thermal stimulation current (TSC), electro-acoustic pulse method (PEA), DC conductivity and breakdown strength tests, the trap characteristics, space charge distribution, conductive properties and breakdown behavior of the composites were analyzed. The results showed that when the PTFE doping content was 0.1wt%, the peak space charge density of the composite at high temperature (80℃) and high field (40 kV/mm) was approximately 49% lower than that of pure XLPE; at 15 kV/mm electric field, the conductive current in the 30~90℃ temperature range increased by only one order of magnitude, which was significantly better than pure XLPE (three orders of magnitude); the DC breakdown strength at 90℃ increased by 29.2%. The TSC test indicated that at this ratio, the composite exhibited a deep trap with a depth of approximately 1.16 eV at 135.5℃. The study demonstrated that PTFE effectively regulates charge transport by introducing both deep and shallow traps, thereby inhibiting space charge accumulation and enhancing insulation stability.

     

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