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Erschienen in: Rheologica Acta 9/2008

01.12.2008 | Original Contribution

A unified model for polystyrene–nanorod and polystyrene–nanoplatelet melt composites

verfasst von: Christopher Kagarise, Kurt W. Koelling, Yingru Wang, Stephen E. Bechtel

Erschienen in: Rheologica Acta | Ausgabe 9/2008

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Abstract

We present a unified constitutive model capable of predicting the steady shear rheology of polystyrene (PS)–nanoparticle melt composites, where particles can be rods, platelets, or any geometry in between, as validated against experimental measurements. The composite model incorporates the rheological properties of the polymer matrix, the aspect ratio and characteristic length scale of the nanoparticles, the orientation of the nanoparticles, hydrodynamic particle–particle interactions, the interaction between the nanoparticles and the polymer, and flow conditions of melt processing. We demonstrate that our constitutive model predicts both the steady rheology of PS–carbon nanofiber composites and the steady rheology of PS–nanoclay composites. Along with presenting the model and validating it against experimental measurements, we evaluate three different closure approximations, an important constitutive assumption in a kinetic theory model, for both polymer–nanoparticle systems. Both composite systems are most accurately modeled with a quadratic closure approximation.

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Metadaten
Titel
A unified model for polystyrene–nanorod and polystyrene–nanoplatelet melt composites
verfasst von
Christopher Kagarise
Kurt W. Koelling
Yingru Wang
Stephen E. Bechtel
Publikationsdatum
01.12.2008
Verlag
Springer-Verlag
Erschienen in
Rheologica Acta / Ausgabe 9/2008
Print ISSN: 0035-4511
Elektronische ISSN: 1435-1528
DOI
https://doi.org/10.1007/s00397-008-0307-y

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