二氧化硅填充天然橡胶复合材料的聚集行为和力学性能研究:粗粒度分子动力学研究

IF 3.3 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Hongyu Guo, Fanlin Zeng, Jianzheng Cui, Qing Li
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引用次数: 0

摘要

了解填充橡胶中的颗粒聚集行为对开发高性能复合材料至关重要。本文采用粗粒度分子动力学(CGMD)模拟方法,系统研究了二氧化硅纳米颗粒的空间分布、基体分子链的长度以及基体的交联对天然橡胶(NR)复合材料力学性能的影响。结果表明:随着纳米二氧化硅颗粒聚集程度的增加,填充橡胶在小变形阶段的应力水平显著增加,而在大变形阶段,应力水平显著降低;前者可归因于颗粒网络在小变形阶段的高强度和刚度的支撑作用,后者可归因于颗粒网络在大变形阶段的逐渐失效以及颗粒在橡胶分子链上的吸附减弱。此外,研究还发现,较长的分子链通过增强颗粒的包封性和界面相互作用来减少颗粒的聚集,而交联网络通过笼状结构限制颗粒的迁移性来促进聚集行为。为了深入解释纳米颗粒填充橡胶的内在增强机制,我们对其微观结构性能进行了分析,如均方位移、相互作用能和键取向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Investigation on the aggregation behavior and mechanical properties of silica-filled natural rubber composites: A coarse-grained molecular dynamics study

Investigation on the aggregation behavior and mechanical properties of silica-filled natural rubber composites: A coarse-grained molecular dynamics study
Understanding the particle aggregation behavior in filled rubber is crucial for developing high-performance composite materials. Herein, the effect of the spatial distribution of silica nanoparticles, the length of matrix molecular chains, and the crosslinking of the matrix on the mechanical properties of natural rubber (NR) composites were systematically investigated using coarse-grained molecular dynamics (CGMD) simulations. The results show that with the increase in the degree of silica nanoparticle aggregation, the stress level of the filled rubber in the small deformation stage is significantly increased, but in the large deformation stage, it is significantly reduced. The former can be attributed to the supporting effect of the high strength and rigidity of the particle network in the small deformation stage, while the latter can be attributed to the gradual failure of the particle network in the large deformation stage and the weakening of the adsorption of the particles on the rubber molecular chain. Moreover, it was found that longer molecular chains reduced particle aggregation by enhancing particle encapsulation and interface interactions, while crosslinked networks promoted aggregation behavior by restricting particle mobility through a cage structure. To explain in depth the inherent enhancement mechanism of nanoparticle-filled rubber, microstructure property analysis, such as mean square displacement, interaction energy, and bond orientation, has been implemented and discussed.
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来源期刊
Computational Materials Science
Computational Materials Science 工程技术-材料科学:综合
CiteScore
6.50
自引率
6.10%
发文量
665
审稿时长
26 days
期刊介绍: The goal of Computational Materials Science is to report on results that provide new or unique insights into, or significantly expand our understanding of, the properties of materials or phenomena associated with their design, synthesis, processing, characterization, and utilization. To be relevant to the journal, the results should be applied or applicable to specific material systems that are discussed within the submission.
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