高温超导电缆用低温复合绝缘材料工频击穿特性

    Power-Frequency Breakdown Characteristics of Cryogenic Composite Insulating Materials for High-Temperature Superconducting Cables

    • 摘要: 高温超导(high-temperature superconductivity,HTS)电缆凭借其高临界电流密度、低传输损耗和窄走廊占地需求,在电网大容量电力传输中展现出显著优势。超导电缆运行于低温环境,对主绝缘材料的选择和多种绝缘材料的相容性提出了苛刻的要求。以聚丙烯层压纸(polypropylene laminated paper,PPLP)和牛皮纸为基础材料,分别与聚酰亚胺(polyimide,PI)、聚芳酰胺纤维纸(Nomex)、聚四氟乙烯(polytetrafluoroethylene,PTFE)等材料复合,组成双层和三层复合绝缘材料样品,研究其在工频交流电压下的击穿特性。结果表明,PPLP、牛皮纸与PTFE组成的复合绝缘材料性能最为出色,其界面相容性优越,能有效分散电场集中,显著提升绝缘材料的击穿场强。为HTS电缆绝缘材料的优化设计提供了重要理论依据和试验数据支持,对推动HTS电缆实用化发展具有指导意义。

       

      Abstract: High-temperature superconducting (HTS) cables exhibit compelling advantages in large-capacity power transmission because of their high critical current density, low transport losses, and narrow corridor footprint. HTS operated in cryogenic environments, imposes stringent demands on the selection of primary dielectrics and on the compatibility among multiple insulating components. In this study, polypropylene-laminated paper (PPLP) and kraft paper were systematically combined with polyimide (PI), aramid paper (Nomex), and polytetrafluoroethylene (PTFE) to fabricate bilayer and trilayer insulation specimens. Their AC breakdown characteristics were evaluated under controlled cryogenic conditions. Results demonstrated that PPLP/PTFE and kraft-paper/PTFE composites exhibited superior dielectric performance, attributabled to excellent interfacial compatibility and effective mitigation of electric-field enhancement, yielding markedly increased overall breakdown strength. These findings provided both theoretical insights and empirical benchmarks for optimizing HTS cable insulation design, offering critical engineering guidance for the practical deployment of HTS transmission systems.

       

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