首页> 外文期刊>Journal of Applied Polymer Science >Material Ductility and Toughening Mechanism of Polypropylene Blended with Bimodal Distributed Particle Size of Styrene-Ethylene-Butadiene-Styrene Triblock Copolymer at High Strain Rate
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Material Ductility and Toughening Mechanism of Polypropylene Blended with Bimodal Distributed Particle Size of Styrene-Ethylene-Butadiene-Styrene Triblock Copolymer at High Strain Rate

机译:高应变速率下苯乙烯-乙烯-丁二烯-苯乙烯三嵌段共聚物双峰分布粒径共混聚丙烯的材料延性和增韧机理

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摘要

The material ductility and toughening mechanisms under high strain rate are characterized in the polypropylene (PP) blended with two different styrene-ethylene-butadiene-styrene triblock copolymer (SEBS) by the tensile tests at the nominal strain rates from 0.3 to 1.00 s(-1), fracture surface observations, interparticle distances, and the morphological finite element (FE) analyses. It is found that the bimodal-distributed SEBS particle morphology enhances the impact material ductility by craze bands formation, which is caused by the stress interaction between large rubber particles with the highly elongated small rubber particles inside the fibrils of the craze. It is found that there are three conditions for craze bands formation. The first condition is that the total SEBS content is larger than 15 wt%. Second condition is that the weight ratio of small SEBS particles against total SEBS particles should be larger than 0.06. Third condition is that the interparticle distance of large SEBS particles should be larger than 100 rim. In the numerical aspects, the present constitutive law with the craze nucleation and growth can successfully predict the craze bands in the microstructural FE models, leading to the useful procedure for identifying the ductile brittle transition based on the microstructure. The synergistic effect of these rubber particles gives rise to a strong increase in the ductility of these bimodal rubber particle distributed PP systems. (C) 2008 Wiley Periodicals, Inc. J Appl Polym Sci 110: 3941-3953, 2008
机译:聚丙烯(PP)与两种不同的苯乙烯-乙烯-丁二烯-苯乙烯三嵌段共聚物(SEBS)共混的聚丙烯(PP)通过在0.3到1.00 s(- 1),断裂面观察,颗粒间距离和形态有限元(FE)分析。发现双峰分布的SEBS颗粒形态通过裂纹带的形成增强了冲击材料的延展性,这是由大橡胶颗粒与裂纹原纤维内部的高度伸长的小橡胶颗粒之间的应力相互作用引起的。发现存在形成裂纹带的三个条件。第一个条件是SEBS的总含量大于15 wt%。第二个条件是,小的SEBS颗粒与总SEBS颗粒的重量比应大于0.06。第三个条件是大SEBS粒子的粒子间距离应大于100 rim。在数值方面,具有裂纹成核和生长的本构定律可以成功地预测微观结构有限元模型中的裂纹带,从而为基于微观结构识别延性脆性转变提供了有用的程序。这些橡胶颗粒的协同作用使这些双峰橡胶颗粒分布的PP系统的延展性大大提高。 (C)2008 Wiley Periodicals,Inc. J Appl Polym Sci 110:3941-3953,2008

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