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纳米硅化物填充环氧树脂复合材料的热力学性能研究

A study on the thermodynamic performance of nano-silicide filled epoxy resin composite materials.

作者信息

Zhang Hang, Zhang Zhijin, Liu Chao, Jiang Xingliang, Hu Jianlin, Hu Qin

机构信息

Xuefeng Mountain Energy Equipment Safety National Observation and Research Station, Chongqing University, Chongqing, China.

Tibet Yangbajing High Altitude Electrical Safety & Electromagnetic Environment National Observation and Research Station, Lhasa, Tibet, China.

出版信息

Phys Chem Chem Phys. 2025 Jun 18;27(24):13103-13115. doi: 10.1039/d5cp01471a.

Abstract

As the performance requirements for epoxy resin (EP) in ultra-high voltage systems become more stringent, electrical breakdowns remain a recurrent issue. Studies have shown that the incorporation of silicide nanomaterials (SiO, SiN, and SiC) into EP composites holds significant potential for enhancing thermodynamic properties. However, there is currently no clear consensus on the specific composition and proportion of these materials for improving the thermodynamic performance of EP. While most studies rely on conventional experimental approaches, molecular simulation techniques offer a promising alternative to predict the properties of EP composites and guide experimental design, thereby optimizing resource utilization. This study presents a molecular simulation of EP composites filled with SiO, SiN, and SiC nanoparticles. The results indicate that the EP/SiC composite exhibits the most stable mean square displacement (MSD), with more compact internal bonding and the highest interfacial binding energy of -3026 kJ mol. Compared to EP, the Young's modulus of elasticity () of the three composites is improved by approximately 3.24% to 4.10%, the glass transition temperature () is increased by approximately 10.75% to 12.80%, and the thermal conductivity is reduced by approximately 5.9% to 8.9%. Among the EP/SiO, EP/SiN, and EP/SiC composites, the EP/SiC composite demonstrates superior overall thermodynamic properties. For the composites with 1.5% SiO, SiN, and 1.0%, 1.5%, and 2.0% SiC (wt%), the 1.5%-EP/SiC composite shows the best thermodynamic performance. Composites with 0.5% SiO, SiN, SiC, and 1.5% SiC are experimentally prepared, and their thermodynamic properties are evaluated. The experimental results show that the storage modulus of the different silicide-based composites shows minimal variation, increasing by approximately 11% compared to EP. The is enhanced by 1.6% to 4.7%, and the thermal conductivity ranges from 0.125 to 0.147 W m K, which is lower than that of EP (0.164 W m K). Compared to 0.5%-EP/SiC, the 1.5%-EP/SiC composite exhibits superior thermodynamic performance, with a 35.0% increase in the storage modulus, a 9.8% increase in , and a thermal conductivity of 0.154 W m K. The results of this study provide valuable insights for improving the thermodynamic properties of EP.

摘要

随着超高压系统中对环氧树脂(EP)性能要求愈发严格,电击穿问题依旧反复出现。研究表明,将硅化物纳米材料(SiO、SiN和SiC)掺入EP复合材料中,在增强热力学性能方面具有巨大潜力。然而,目前对于这些材料提高EP热力学性能的具体组成和比例尚无明确共识。虽然大多数研究依赖传统实验方法,但分子模拟技术为预测EP复合材料性能和指导实验设计提供了一种有前景的替代方法,从而优化资源利用。本研究对填充有SiO、SiN和SiC纳米颗粒的EP复合材料进行了分子模拟。结果表明,EP/SiC复合材料表现出最稳定的均方位移(MSD),内部键合更紧密,界面结合能最高,为 -3026 kJ/mol。与EP相比,三种复合材料的杨氏弹性模量()提高了约3.24%至4.10%,玻璃化转变温度()升高了约10.75%至12.80%,热导率降低了约5.9%至8.9%。在EP/SiO、EP/SiN和EP/SiC复合材料中,EP/SiC复合材料展现出更优异的整体热力学性能。对于含有1.5% SiO、SiN以及1.0%、1.5%和2.0% SiC(重量百分比)的复合材料,1.5%-EP/SiC复合材料表现出最佳热力学性能。制备了含有0.5% SiO、SiN、SiC以及1.5% SiC的复合材料,并对其热力学性能进行评估。实验结果表明,不同硅化物基复合材料的储能模量变化极小,与EP相比增加了约11%。 提高了1.6%至4.7%,热导率在0.125至0.147 W/(m·K)范围内,低于EP的热导率(0.164 W/(m·K))。与0.5%-EP/SiC相比,1.5%-EP/SiC复合材料展现出更优异的热力学性能,储能模量提高了35.0%, 提高了9.8%且热导率为0.154 W/(m·K)。本研究结果为改善EP的热力学性能提供了有价值的见解。

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