Four-component united-atom model of bitumen
Четырёхкомпонентная модель битума с объединёнными атомами
2013-03-07
SCID: 54.1/mcs2wc5k
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asphaltene-resin nano-aggregatesbitumen molecular dynamicsfour-component united-atom modelshear viscosity and modulusstress autocorrelation function
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Abstract (AI)
We propose a four-component united-atom molecular model of bitumen. The model includes realistic chemical constituents and introduces a coarse graining level that suppresses the highest frequency modes. Molecular dynamics simulations of the model are carried out using graphic-processor-units based software in time spans in order of microseconds, which enables the study of slow relaxation processes characterizing bitumen. This paper also presents results of the model dynamics as expressed through the mean-square displacement, the stress autocorrelation function, and rotational relaxation. The diffusivity of the individual molecules changes little as a function of temperature and reveals distinct dynamical time scales. Different time scales are also observed for the rotational relaxation. The stress autocorrelation function features a slow non-exponential decay for all temperatures studied. From the stress autocorrelation function, the shear viscosity and shear modulus are evaluated, showing a viscous response at frequencies below 100 MHz. The model predictions of viscosity and diffusivities are compared to experimental data, giving reasonable agreement. The model shows that the asphaltene, resin, and resinous oil tend to form nano-aggregates. The characteristic dynamical relaxation time of these aggregates is larger than that of the homogeneously distributed parts of the system, leading to strong dynamical heterogeneity.
Key Findings
1
A four-component united-atom bitumen model represents realistic chemical constituents while suppressing the highest-frequency molecular modes through coarse graining.
2
GPU-accelerated molecular dynamics simulations reach microsecond timescales, enabling investigation of bitumen’s slow relaxation processes.
3
Molecular diffusivity changes little with temperature and exhibits distinct dynamical timescales, while rotational relaxation also shows multiple timescales.
4
Simulated viscosities and diffusivities reasonably agree with experimental data, while asphaltenes, resins, and resinous oils form slowly relaxing nano-aggregates that produce strong dynamical heterogeneity.
5
Stress autocorrelation decays slowly and non-exponentially; derived rheology indicates a viscous response at frequencies below 100 MHz.
Research Object
four-component united-atom molecular model of bitumen
Research Subject
the dynamical and rheological behavior of bitumen, including molecular diffusivity, rotational and stress relaxation, viscosity, shear modulus, and nano-aggregate-induced dynamical heterogeneity
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2013-03-07
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