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Characterization of Rigid Polypropylene-Based Microcellular Foams Produced by Batch Foaming Processes

机译:分批发泡工艺生产的刚性聚丙烯基微孔泡沫的表征

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The properties of polypropylene (PP) foams can be extended by controlling the cellular structure and adding functional fillers. PP-based microcellular foams having an interesting combination of mechanical and transport properties were prepared by two different batch foaming processes. The batch processes employed were a semisolid state CO2 dissolution physical foaming process and a chemical one based on the dissolution of the gases generated by the thermal decomposition of a chemical blowing agent in the molten state. The role of the cellular structure and nanofillers (5 wt% of organoclay and 10-20 wt% of cellulosic fibers) on the foam properties and CO2 diffusion rate was discussed. Foams with expansion ratios around 3 but different cell structures were prepared and studied concerning their structural characteristics. For unfilled foams prepared by CO2 dissolution, the microcellular structure resulted in the highest values of the specific storage modulus. A fraction of organically-treated montmorillonite dispersed into the PP matrix resulted in superior mechanical properties due to the combined effect of a finer cell structure and inherent higher stiffness of the silicate layers. Despite displaying an open-cell structure, foams reinforced with high contents of cellulosic fibers showed increased specific storage moduli with respect to the unfilled foams.
机译:聚丙烯(PP)泡沫的性能可以通过控制孔结构和添加功能性填料来扩展。通过两种不同的分批发泡工艺制备了具有机械性能和运输性能有趣组合的PP基微孔泡沫。所使用的间歇过程是半固态CO2溶解物理发泡过程和基于溶解在熔融状态下的化学发泡剂热分解产生的气体的溶解过程的化学过程。讨论了多孔结构和纳米填料(5 wt%的有机粘土和10-20 wt%的纤维素纤维)对泡沫性质和CO2扩散速率的作用。制备了具有约3的膨胀比但孔结构不同的泡沫,并研究了它们的结构特征。对于通过CO2溶解制备的未填充泡沫,微孔结构导致比储能模量的最大值。一部分经过有机处理的蒙脱土分散在PP基体中,由于具有更细的泡孔结构和固有的较高的硅酸盐层刚度,因此具有优异的机械性能。尽管表现出开孔结构,但是相对于未填充的泡沫,用高含量的纤维素纤维增强的泡沫显示出增加的比存储模量。

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