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Nano-Modeling Structure and Micromechanical Properties of Mesoscopic Composite Systems

机译:介观复合体系的纳米建模结构和微机械性能

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We discuss the results of molecular modeling (quantum mechanics and molecular dynamics methods) of mesoscopic composite systems based on thermoplastic (polyethylene, polypropylene, etc.) and elastomeric (polybutadiene, polyisoprene, etc.) polymer matrices and active nanofillers (commercial carbon in different structural modifications, silicate, fullerens, nanotubes). Consideration is given to the structure, energy and micromechanical properties of model particles of commercial carbon, including those with surfaces terminated with various chemical compounds, and to the adsorption of various polymer chains on them. Shear strain and uniaxial tension in different adsorption complexes as well as molecular friction are calculated. The reinforcement effect, i.e. the change of most important physico-mechanical characteristics, and energy parameters are analyzed. We make important inferences about the influence of filler properties on its activity during interaction with polymer matrix particles. It is noticed that the best adhesion of polymer chain fragments (largest force of microscopic molecular friction) is observed for the isoprene elastomer — silicate filler system. Such nanoparticles as fullerene and carbon nanotubes exhibit weak (almost equal) molecular adhesion, which makes it impossible to consider them as promising reinforcing fillers without proper modification. Carbon fillers are found to exert a different effect on the structure of thermoplastics and elastomers. In the first case, the structure becomes amorphous, while in the second one it stabilizes. This explains the known effect of elastomer reinforcement with carbon fillers. Thus, we have developed molecular simulation algorithms and methods, which employ parallel computing technologies on a supercomputer, to study the structure and micromechanical characteristics of large molecular systems, namely, clusters of representative elements of polymer composites. Based on the investigation by quantum mechanics and molecular dynamics methods, conclusions have been made concerning the effect of the filler nature on its interaction with polymer molecules comprising the polymer composite matrix.
机译:我们讨论了基于热塑性(聚乙烯,聚丙烯等)和弹性体(聚丁二烯,聚异戊二烯等)聚合物基体和活性纳米填料(不同商业碳)的介观复合体系的分子建模(量子力学和分子动力学方法)的结果。结构修饰,硅酸盐,富勒烯,纳米管)。考虑到商业碳模型颗粒的结构,能量和微机械性能,包括表面被各种化学化合物终止的颗粒,以及各种聚合物链在其上的吸附。计算了不同吸附复合物中的剪切应变和单轴张力以及分子摩擦。分析了增强作用,即最重要的物理力学特性的变化以及能量参数。我们对与聚合物基体颗粒相互作用期间填料性能对其活性的影响做出重要推断。注意到对于异戊二烯弹性体-硅酸盐填充剂体系,观察到聚合物链片段的最佳粘附力(最大的微观分子摩擦力)。诸如富勒烯和碳纳米管之类的纳米颗粒表现出较弱的(几乎相等)的分子粘附力,这使得不可能将它们视为未经适当改性的有前途的增强填料。发现碳填料对热塑性塑料和弹性体的结构产生不同的影响。在第一种情况下,结构变为非晶态,而在第二种情况下,结构趋于稳定。这解释了用碳填料增强弹性体的已知作用。因此,我们已经开发了分子模拟算法和方法,它们在超级计算机上采用了并行计算技术,以研究大分子系统的结构和微机械特性,即聚合物复合材料中代表元素的簇。基于量子力学和分子动力学方法的研究,得出关于填料性质对其与包含聚合物复合基质的聚合物分子相互作用的影响的结论。

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