Simulation of crack propagation in the filled elastomer

IF 1.3 Q4 NANOSCIENCE & NANOTECHNOLOGY Nanoscience and Technology-An International Journal Pub Date : 2023-01-01 DOI:10.1615/nanoscitechnolintj.2023043909
Alexander Sokolov, Oleg Garishin, Alexander Svistkov
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Abstract

The results of computer simulation of the process of macrocrack growth in an elastomeric nanocomposite and its interaction with strands that can occur between adjacent closely spaced filler particles during material tension are presented. The hypothesis that under uniaxial tension the elastomer is able to withstand significantly greater loads compared to other types of stress state (at the same intensity of deformation) was used in the simulation. A strength criterion depended on characteristics of the stress-strain state of elastomer (maximum strength is achieved with uniaxial tension) was developed to take this effect into account. Numerical studies showed that with a fairly close approach of the macrocrack front to the gap between filler particles, the formation of a reinforced strand is possible there, connecting the “shores” of the macrocrack and, accordingly, preventing its further progress. It is well known that the addition of a rigid filler to the elastomer allows the resulting composite to withstand a significantly higher external load compared to unfilled material. This is due to the fact that in a material without filler, nothing prevents the growth of macrocrack. But in an elastomeric composite, the microstrands that occur between the filler particles can delay its spread.
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填充弹性体裂纹扩展模拟
本文给出了弹性体纳米复合材料中宏观裂纹扩展过程的计算机模拟结果,以及在材料拉伸过程中其与相邻紧密间隔的填充颗粒之间可能发生的链的相互作用。在模拟中使用了假设,即在单轴拉伸下,弹性体能够承受比其他类型的应力状态(在相同的变形强度下)更大的载荷。基于弹性体应力-应变状态特征(单轴拉伸达到最大强度)的强度准则考虑了这一效应。数值研究表明,当大裂纹前缘与填充颗粒之间的间隙相当接近时,在那里可能形成一条加强链,连接大裂纹的“海岸”,从而阻止其进一步发展。众所周知,与未填充的材料相比,在弹性体中添加刚性填料可以使所得复合材料承受更高的外部载荷。这是由于在没有填料的材料中,没有什么可以阻止大裂纹的扩展。但在弹性复合材料中,填充颗粒之间的微链可以延缓其扩散。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.00
自引率
23.10%
发文量
20
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