A molecular dynamics simulation study of the viscoelastic properties of polymer nanocomposites

2002 ◽  
Vol 117 (20) ◽  
pp. 9478-9489 ◽  
Author(s):  
Grant D. Smith ◽  
Dmitry Bedrov ◽  
Liwei Li ◽  
Oleksiy Byutner
RSC Advances ◽  
2018 ◽  
Vol 8 (15) ◽  
pp. 8141-8151 ◽  
Author(s):  
Ziwei Li ◽  
Jun Liu ◽  
Zhiyu Zhang ◽  
Yangyang Gao ◽  
Li Liu ◽  
...  

In this work by adopting coarse-grained molecular dynamics simulation, we focus attention on investigating the effect of the chemical coupling between polymer and nanoparticles (NPs) on the viscoelastic properties of polymer nanocomposites (PNCs).


Soft Matter ◽  
2014 ◽  
Vol 10 (28) ◽  
pp. 5099-5113 ◽  
Author(s):  
Jianxiang Shen ◽  
Jun Liu ◽  
Yangyang Gao ◽  
Xiaolin Li ◽  
Liqun Zhang

This simulation work for the first time establishes the correlation between the micro-structural evolution and the strain-induced non-linear behavior of polymer nanocomposites, and sheds some light on how to reduce the “Payne effect”.


Author(s):  
Raja Azhar Ashraaf Khan ◽  
Xian Chen ◽  
Hang-Kai Qi ◽  
Jian-Hua Huang ◽  
Meng-Bo Luo

The effect of nanoparticles on the glass transition temperature, Tg, of polymer nanocomposites is studied by using molecular dynamics simulations. Tg is estimated from the variation of system volume with...


2011 ◽  
Vol 39 (1) ◽  
pp. 44-58 ◽  
Author(s):  
Y. Masumoto ◽  
Y. Iida

Abstract The purpose of this work is to develop a new analytical method for simulating the microscopic mechanical property of the cross-linked polymer system using the coarse-grained molecular dynamics simulation. This new analytical method will be utilized for the molecular designing of the tire rubber compound to improve the tire performances such as rolling resistance and wet traction. First, we evaluate the microscopic dynamic viscoelastic properties of the cross-linked polymer using coarse-grained molecular dynamics simulation. This simulation has been conducted by the coarse-grained molecular dynamics program in the OCTA) (http://octa.jp/). To simplify the problem, we employ the bead-spring model, in which a sequence of beads connected by springs denotes a polymer chain. The linear polymer chains that are cross-linked by the cross-linking agents express the three-dimensional cross-linked polymer network. In order to obtain the microscopic dynamic viscoelastic properties, oscillatory deformation is applied to the simulation cell. By applying the time-temperature reduction law to this simulation result, we can evaluate the dynamic viscoelastic properties in the wide deformational frequency range including the rubbery state. Then, the stress is separated into the nonbonding stress and the bonding stress. We confirm that the contribution of the nonbonding stress is larger at lower temperatures. On the other hand, the contribution of the bonding stress is larger at higher temperatures. Finally, analyzing a change of microscopic structure in dynamic oscillatory deformation, we determine that the temperature/frequency dependence of bond stress response to a dynamic oscillatory deformation depends on the temperature dependence of the average bond length in the equilibrium structure and the temperature/frequency dependence of bond orientation. We show that our simulation is a useful tool for studying the microscopic properties of a cross-linked polymer.


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