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Optimization of Dispersion of Nanosilica Particles in a PP Matrix and Their Effect on Foaming

  • S. H. Lee , Y. Zhang , M. Kontopoulou , C. B. Park , A. Wong and W. Zhai
Published/Copyright: April 6, 2013
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Abstract

Nanocomposites based on isotactic polypropylene (PP) and nanosilica (SiO2) were prepared using a co-rotating twin-screw extruder (TSE). The effect of operating variables, such as screw speed and screw configuration on the dispersion of nanosilica in the polymer matrix has been studied, using TEM imaging. High shear stress, sufficient residence time, and high fill ratio in the melting section of the screw were the most important factors in achieving good nanosilica dispersion. Furthermore, the effects of filler loading and amount of a maleated polypropylene (PP-g-MA) compatibilizer on the degree of SiO2 dispersion were investigated. The foaming performance of the composites was evaluated using a batch foaming simulation system, and an extrusion foaming setup that employed respectively N2 and CO2 blowing agents. Well-dispersed surface-modified hydrophobic SiO2 particles acted as effective nucleating agents for foaming, when used at loadings below 1 phr.


Mail address: Marianna Kontopoulou, Department of Chemical Engineering, Queen's University, Kingston, ON K7L3N6, Canada. E-mail:

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Received: 2010-08-18
Accepted: 2011-01-29
Published Online: 2013-04-06
Published in Print: 2011-09-01

© 2011, Carl Hanser Verlag, Munich

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