State Key Laboratory of Advanced Power Transmission Technology, Beijing, 102209, China.
Hebei Provincial Key Laboratory of Power Transmission Equipment Security Defense, North China Electric Power University, Baoding, 071003, China.
J Mol Graph Model. 2023 Sep;123:108532. doi: 10.1016/j.jmgm.2023.108532. Epub 2023 May 31.
With the development of alternate electrical power system and the improvement of voltage level, the operation conditions faced by epoxy resin (ER) insulation materials are becoming more and more complex. The traditional ER materials have been difficult to meet the increasingly stringent requirements. In this paper, the thermal and mechanical properties of DGEBA/TDE-85/MTHPA blend system were studied by molecular dynamics (MD) simulation and experiment. The results show that the addition of TDE-85 can significantly improve the thermal and mechanical properties, and the comprehensive improvement effect is the best when the molar ratio of DGEBA and TDE-85 is about 8:2. The experimental results are consistent with the simulation results. Further analysis of the micro-parameters of the monomer and the cross-linking network found that the torsional energy barrier of TDE-85 is higher than DGEBA. And the compatibility of the two ER is better when the ratio is 8:2. In addition, TDE-85 can introduce high-stability Y-nodes into the system, making the cross-linked network more stable, which has a significant effect on improving the thermal and mechanical properties. The research provide a reference for the blending modification of high-performance ER for high-voltage insulation.
随着交流电力系统的发展和电压等级的提高,环氧树脂(ER)绝缘材料所面临的运行条件变得越来越复杂。传统的 ER 材料已经难以满足日益严格的要求。本文通过分子动力学(MD)模拟和实验研究了 DGEBA/TDE-85/MTHPA 共混体系的热性能和力学性能。结果表明,添加 TDE-85 可以显著提高热性能和力学性能,当 DGEBA 和 TDE-85 的摩尔比约为 8:2 时,综合改善效果最佳。实验结果与模拟结果一致。进一步分析单体和交联网络的微参数发现,TDE-85 的扭转能垒高于 DGEBA。当比例为 8:2 时,两种 ER 的相容性更好。此外,TDE-85 可以将高稳定性的 Y-节点引入系统,使交联网络更加稳定,这对提高热性能和力学性能有显著影响。本研究为高压绝缘用高性能 ER 的共混改性提供了参考。