Molecular Simulation of Minerals-Asphalt Interfacial Interaction
The interfacial interaction between asphalt binder and mineral aggregate makes different components have different diffusion behavior. It influences the performance of interface and consequently that of the mix. In this research, the models of four asphalt components (asphaltene, resin, aromatics an...
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doaj-6901476fe9664e30a92084aabe238fc02020-11-25T00:08:12ZengMDPI AGMinerals2075-163X2018-04-018517610.3390/min8050176min8050176Molecular Simulation of Minerals-Asphalt Interfacial InteractionDaisong Luo0Meng Guo1Yiqiu Tan2School of Transportation Science and Engineering, Harbin Institute of Technology, Harbin 150090, ChinaCollege of Architecture and Civil Engineering, Beijing University of Technology, Beijing 100124, ChinaSchool of Transportation Science and Engineering, Harbin Institute of Technology, Harbin 150090, ChinaThe interfacial interaction between asphalt binder and mineral aggregate makes different components have different diffusion behavior. It influences the performance of interface and consequently that of the mix. In this research, the models of four asphalt components (asphaltene, resin, aromatics and saturate) and five minerals were constructed individually, and then the Al2O3-asphalt interface model was constructed by adding the asphalt layer and mineral layer together. The interfacial behavior at molecular scale was simulated by setting boundary conditions, optimizing the structure and canonical ensemble. The mean square displacement (MSD) and diffusion coefficient of particles were selected as indicators to study the diffusion of asphalt components on the surface of Al2O3. The results show that when the temperature was 65 °C, asphalt binder showed more viscosity, the diffusion speed of asphalt components ranked according to their molecular mass, which was saturate > aromatics > resin > asphaltene. At 25 °C and 165 °C, the resin had the fastest diffusion speed, which was nearly twice of asphaltene. The interaction between asphalt components and Al2O3 mineral surface can make the diffusion of asphalt components independent on temperature.http://www.mdpi.com/2075-163X/8/5/176molecular simulationmineralsasphaltinterfaceinteraction |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Daisong Luo Meng Guo Yiqiu Tan |
spellingShingle |
Daisong Luo Meng Guo Yiqiu Tan Molecular Simulation of Minerals-Asphalt Interfacial Interaction Minerals molecular simulation minerals asphalt interface interaction |
author_facet |
Daisong Luo Meng Guo Yiqiu Tan |
author_sort |
Daisong Luo |
title |
Molecular Simulation of Minerals-Asphalt Interfacial Interaction |
title_short |
Molecular Simulation of Minerals-Asphalt Interfacial Interaction |
title_full |
Molecular Simulation of Minerals-Asphalt Interfacial Interaction |
title_fullStr |
Molecular Simulation of Minerals-Asphalt Interfacial Interaction |
title_full_unstemmed |
Molecular Simulation of Minerals-Asphalt Interfacial Interaction |
title_sort |
molecular simulation of minerals-asphalt interfacial interaction |
publisher |
MDPI AG |
series |
Minerals |
issn |
2075-163X |
publishDate |
2018-04-01 |
description |
The interfacial interaction between asphalt binder and mineral aggregate makes different components have different diffusion behavior. It influences the performance of interface and consequently that of the mix. In this research, the models of four asphalt components (asphaltene, resin, aromatics and saturate) and five minerals were constructed individually, and then the Al2O3-asphalt interface model was constructed by adding the asphalt layer and mineral layer together. The interfacial behavior at molecular scale was simulated by setting boundary conditions, optimizing the structure and canonical ensemble. The mean square displacement (MSD) and diffusion coefficient of particles were selected as indicators to study the diffusion of asphalt components on the surface of Al2O3. The results show that when the temperature was 65 °C, asphalt binder showed more viscosity, the diffusion speed of asphalt components ranked according to their molecular mass, which was saturate > aromatics > resin > asphaltene. At 25 °C and 165 °C, the resin had the fastest diffusion speed, which was nearly twice of asphaltene. The interaction between asphalt components and Al2O3 mineral surface can make the diffusion of asphalt components independent on temperature. |
topic |
molecular simulation minerals asphalt interface interaction |
url |
http://www.mdpi.com/2075-163X/8/5/176 |
work_keys_str_mv |
AT daisongluo molecularsimulationofmineralsasphaltinterfacialinteraction AT mengguo molecularsimulationofmineralsasphaltinterfacialinteraction AT yiqiutan molecularsimulationofmineralsasphaltinterfacialinteraction |
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1725416197510397952 |