利用 ReaxFF 对双酚 F/DETDA 聚合物的加速交联和分解进行反应分子动力学模拟

Aniruddh Vashisth, Chowdhury M. Ashraf, C. Bakis, A. Duin
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引用次数: 4

摘要

聚合物的分子动力学模拟有助于了解分子结构、交联和聚合物链的化学性质与聚合物热机械特性之间的关系。除了这些热机械特性外,分子动力学还是一种强大的工具,可用于研究在恶劣环境条件下具有航空航天应用潜力的聚合物的耐久性。来自太阳的超强辐射会导致分子氧解离成原子氧(AO),而原子氧在低地球轨道中含量丰富。测试复合材料是否受到原子氧的影响需要大量的实验装置来模拟低地球轨道(LEO)条件,因此成本高昂。利用 ReaxFF 框架内新开发的加速交联方法,可以虚拟制造双酚 F 和二乙基甲苯二胺环氧聚合物链。对这种模拟聚合物的模量、玻璃化转变温度和密度进行了虚拟测试,并以 8 千米/秒的速度对其进行了原子氧冲击。实验和模拟结果的热力学特性非常吻合。使用 ReaxFF 模拟聚合物在受到原子氧撞击时的降解过程,有助于深入了解聚合物的化学性质和热特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reactive Molecular Dynamics Simulation of Accelerated Cross-linking and Disintegration of Bisphenol F/DETDA Polymer using ReaxFF
Molecular dynamics simulations of polymers can help in understanding the dependence of molecular structure, cross-linking and the chemistry of the polymer chain and resulting thermo-mechanical properties of the polymer. Apart from these thermo-mechanical properties, molecular dynamics is also a powerful tool to examine the durability of polymers with potential aerospace applications under harsh environmental conditions. Ultraviolent radiation from the sun results in dissociation of molecular oxygen into atomic oxygen (AO) which is abundant in lower earth orbit. Testing composites under AO impact requires an extensive experimental setup to simulate low earth orbit (LEO) conditions and is therefore expensive. Using a newly developed accelerated cross-linking methodology in the framework of ReaxFF, bisphenol F and diethyltoluenediamine epoxy polymer chains are manufactured virtually. This simulated polymer is virtually tested for modulus, glass transition temperature, density and is impacted by atomic oxygen at 8 km/s. Thermomechanical properties show good agreement between experiments and simulations. Simulations the polymer during AO impact using ReaxFF provides useful insight to the degradation mechanism in terms of polymer chemistry and thermal profile.
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