低温下机械应力对聚丙烯电缆绝缘电树枝劣化特性影响

Effect of Mechanical Stress on Electrical Tree Degradation Characteristics of Polypropylene Cable Insulation at Low Temperature

  • 摘要: 聚丙烯(Polypropylene,PP)绝缘是热塑性高压电缆绝缘材料的主要发展方向。高压电缆在生产、安装、运行过程中均会受到机械应力的作用,而聚丙烯低温韧性差,因此研究低温下机械应力对聚丙烯基绝缘材料的影响具有重要意义。研究低温下机械应力对PP/乙烯-辛烯共聚物(Polyolefin eElastomer,POE)共混绝缘电树枝劣化特性的影响。结果显示,随着拉伸率的增大,低温下试样的体积电导率显著升高,且温度越低,电导率增加更明显。同时,机械应力导致交流击穿场强下降,低温下击穿特性下降尤为显著。随着拉伸率的增大和温度的降低,材料的微观结构破坏越严重,电树枝生长和局部放电特性逐渐加剧,-40℃下15%拉伸率试样的电树枝劣化最严重,电树枝形貌由树枝状转变为丛林-树枝状。研究表明,低温下PP/POE共混绝缘处于玻璃态时的绝缘性能更易受到机械应力的影响。

     

    Abstract: Polypropylene(PP) insulation represents the primary development direction for thermoplastic high voltage(HV) cable insulation materials. HV cables are subjected to mechanical stress during production, installation, and operation, while PP exhibits poor toughness at low temperatures. Therefore, it is essential to study the effects of mechanical stress on PP-based insulation materials under low-temperature conditions. The effect of mechanical stress at low temperatures on electrical tree degradation characteristics of PP/POE blended insulation is investigated. The results indicate that volume conductivity significantly increases with the tensile ratio at low temperatures, with lower temperatures causing more obvious conductivity increases. Additionally, mechanical stretching leads to a reduction in AC breakdown strength, with the deterioration of breakdown characteristics being particularly notable at lower temperatures. As the tensile ratio increases and the temperature decreases, the microstructure of the material is damaged more seriously, resulting in intensified electrical tree growth and partial discharge characteristics. The electrical tree in the sample with a 15% tensile ratio at-40 ℃ exhibits the most significant deterioration, with its morphology transitioning from a branch-like structure to a bush-branch-like structure. In conclusion, the insulation properties of PP/POE blended insulation in their glassy state at low temperatures are more vulnerable to mechanical stress.

     

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