Nam Chae Yun, Lee Jun Hyung, Kim Min Ah, Yoon Ho Gyu
Department of Materials Science and Engineering, Korea University, 145, Anam-ro, Seongbuk-gu, Seoul 02841, Republic of Korea.
Iljin Electric Co., Ltd., 905-17 Mannyeon-ro, Hwaseong-si 18365, Republic of Korea.
Polymers (Basel). 2025 May 16;17(10):1361. doi: 10.3390/polym17101361.
Reducing the environmental impact is a key reason for developing recyclable insulation materials for high-voltage industries. In this study, polypropylene (PP) blends were prepared via melt mixing with styrene-ethylene-butylene-styrene (SEBS), a thermoplastic elastomer, to improve breakdown strengths at various cooling speeds. A systematic investigation was conducted to evaluate the influence of crystal size, degree of crystallinity, and nucleation growth rate on the breakdown strength. Crystallization behavior was analyzed using isothermal and non-isothermal methods based on the Avrami model. Increasing SEBS content reduced crystallinity, with the lowest nucleation growth rate observed at 35% SEBS. Breakdown strength correlated with crystallization behavior and was further validated by Weibull distribution method. Notably, PP/SEBS blends containing 35% SEBS exhibited the highest breakdown strength of 66.4 kV/mm at a cooling speed of 10 °C/mm. This improvement reflected a reduction in the degree of crystallinity from 36.0% to 22.9% and the lowest growth rate constant (k) at 35% SEBS. Furthermore, the predicted lifetime of PP/SEBS blend containing 35% SEBS, calculated using the oxidation induction time and the Arrhenius equation, was 42 years. These findings demonstrate that SEBS content and cooling rate effectively modulate crystallization and breakdown strength, enabling recyclable PP/SEBS with XLPE-comparable performance for sustainable high-voltage insulation.
减少环境影响是为高压行业开发可回收绝缘材料的关键原因。在本研究中,通过将聚丙烯(PP)与热塑性弹性体苯乙烯-乙烯-丁烯-苯乙烯(SEBS)进行熔融共混来制备PP共混物,以提高在各种冷却速度下的击穿强度。进行了系统研究,以评估晶体尺寸、结晶度和成核生长速率对击穿强度的影响。基于Avrami模型,采用等温法和非等温法分析结晶行为。增加SEBS含量会降低结晶度,在SEBS含量为35%时观察到最低的成核生长速率。击穿强度与结晶行为相关,并通过威布尔分布法进一步验证。值得注意的是,含有35%SEBS的PP/SEBS共混物在冷却速度为10℃/mm时表现出最高击穿强度66.4 kV/mm。这种提高反映了结晶度从36.0%降至22.9%,以及在35%SEBS时最低的生长速率常数(k)。此外,使用氧化诱导时间和阿伦尼乌斯方程计算得出,含有35%SEBS的PP/SEBS共混物的预测寿命为42年。这些发现表明,SEBS含量和冷却速率有效地调节了结晶和击穿强度,使可回收的PP/SEBS具有与交联聚乙烯(XLPE)相当的性能,可用于可持续的高压绝缘。