Bulletin of the American Physical Society
APS March Meeting 2020
Volume 65, Number 1
Monday–Friday, March 2–6, 2020; Denver, Colorado
Session L33: Hierarchical Structural Emergence in Elastomer Nanocomposites: Dispersion, Dynamics, Structure, Modeling, and Simulation I
8:00 AM–11:00 AM,
Wednesday, March 4, 2020
Room: 505
Sponsoring
Units:
DPOLY DSOFT
Chair: Anne-Caroline Genix, Université de Montpellier
Abstract: L33.00010 : A Coarse Grained Model for the Simulation of dynamic Properties of Filled Elastomers
Presenter:
Reinhard Hentschke
(School of Mathematics and Natural Sciences, Bergische Universitaet, Wuppertal, Germany)
Authors:
Mariia Viktorova
(School of Mathematics and Natural Sciences, Bergische Universitaet, Wuppertal, Germany)
Reinhard Hentschke
(School of Mathematics and Natural Sciences, Bergische Universitaet, Wuppertal, Germany)
Hossein Ali Karimi-Varzaneh
(Continental Reifen Deutschland GmbH, D-30419 Hannover, Germany)
matrix. We describe a modelling approach to the calculation of dynamic moduli of filled
elastomers based on filler morphologies derived from the experimental interface tensions of
the material's components. A Monte Carlo-based morphology generator, developed
previously [1], is used to build model compounds on the µm-scale. Subsequently the Monte
Carlo morphologies are mapped onto on a coarse grained model, allowing to obtain the
amplitude and frequency dependence of the dynamic moduli during cyclic deformations. This
combination of models ties the experimental surface tensions, characterizing the individual
components, to the dynamic behavior of the macroscopic material. We consider selected
examples of binary polymer blends containing a single type of filler at variable concentration.
In addition to the dynamic moduli we also compute attendant transmission micrographs,
wetting envelopes and work of adhesion plots.
[1] N. Gundlach, R. Hentschke, H. A. Karimi-Varzaneh (2019) Filler Flocculation in Elastomer Blends -
an Approach Based on Measured Surface Tensions and Monte Carlo Simulation Soft
Materials 17, 283-296
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