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Effect of Moisture on Mechanical Properties and Thermal Stability of Meta-Aramid Fiber Used in Insulating Paper

机译:水分对用于绝缘纸的间位芳纶纤维力学性能和热稳定性的影响

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摘要

Seven composite models of meta-aramid fibers with different moisture contents were studied using molecular dynamics simulation. The effects of moisture on the thermal stability and mechanical properties of the fibers and their mechanisms were analyzed, considering characteristics such as hydrogen bonding, free volume, mean square displacement, and mechanical parameters. The simulation results showed that the large number of hydrogen bonds between water molecules and meta-aramid fibers destroyed the original hydrogen-bond network. Hydrogen bonds between the molecular chains of meta-aramid fibers were first destroyed, and their number decreased with increasing moisture content. The free volume of the fibers thereby increased, the interactions between fiber chains weakened with increasing moisture content, and the fiber chain movement intensified accordingly. The ratio of diffusion coefficients of the water molecules to moisture contents of the composite models increased linearly, and the water molecule diffusion increased, which accelerated the rate of damage to the original hydrogen-bond network of the meta-aramid fibers and further reduced their thermal stability. In general, the mechanical properties of the composites were negatively related to their moisture content.
机译:利用分子动力学模拟研究了七个不同水分含量的间位芳族聚酰胺纤维的复合模型。考虑到诸如氢键,自由体积,均方位移和机械参数等特性,分析了水分对纤维的热稳定性和机械性能及其机理的影响。模拟结果表明,水分子与间位芳族聚酰胺纤维之间的大量氢键破坏了原始的氢键网络。首先破坏间位芳族聚酰胺纤维的分子链之间的氢键,并且其数目随着水分含量的增加而减少。因此,纤维的自由体积增加,纤维链之间的相互作用随着水分含量的增加而减弱,并且纤维链的运动相应地增强。复合模型中水分子的扩散系数与水分含量的比值呈线性增加,水分子的扩散增加,这加速了对间位芳族聚酰胺纤维原氢键网络的破坏速度,并进一步降低了它们的热稳定性。稳定性。通常,复合材料的机械性能与其含水量负相关。

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