Molecular simulation of the wetting of selected solvents on sand and clay surfaces
Molecular dynamics simulation and density functional theory were applied to calculate heats of immersion (Himm) of n-heptane, toluene, pyridine and water on two model sand surfaces and two model clay surfaces. Our results indicated that water showed the highest Himm for the model clay surfaces when...
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ndltd-LACETR-oai-collectionscanada.gc.ca-AEU.10048-8442012-03-21T22:50:08ZChoi, Phillip (Chemical and Materials Engineering)Ni, Xiao2009-12-02T22:26:41Z2009-12-02T22:26:41Z2009-12-02T22:26:41Zhttp://hdl.handle.net/10048/844Molecular dynamics simulation and density functional theory were applied to calculate heats of immersion (Himm) of n-heptane, toluene, pyridine and water on two model sand surfaces and two model clay surfaces. Our results indicated that water showed the highest Himm for the model clay surfaces when multi-molecular water layers were used but the lowest when a single molecular layer was used. Simulations of a single molecular water layer sandwiched between a single molecular layer of the aforementioned organic compounds and the octahedral surface of clay indicated that the water layer was not stable. In particular, water molecules tended to desorb from the surface and clustered together to form water/water hydrogen bonds. Given the nature of bitumen molecules, the current results support the hypothesis that a pre-existing water layer on the sand and clay surfaces in raw oil sands is plausible so long as it is thick enough.3120877 bytesapplication/pdfen_USNi, Xiao (2009) World Congress of Chemical Engineering 8MD SimulationHeat of ImmersionSandClayWettingOil SandsMolecular simulation of the wetting of selected solvents on sand and clay surfacesThesisMaster of ScienceMaster'sChemical and Materials EngineeringUniversity of Alberta2010-06Chemical EngineeringChoi, Phillip (Chemical and Materials Engineering)Xu, Zhenghe (Chemical and Materials Engineering)Tang, Tian (Mechanical Engineering) |
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MD Simulation Heat of Immersion Sand Clay Wetting Oil Sands |
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MD Simulation Heat of Immersion Sand Clay Wetting Oil Sands Ni, Xiao Molecular simulation of the wetting of selected solvents on sand and clay surfaces |
description |
Molecular dynamics simulation and density functional theory were applied to calculate heats of immersion (Himm) of n-heptane, toluene, pyridine and water on two model sand surfaces and two model clay surfaces. Our results indicated that water showed the highest Himm for the model clay surfaces when multi-molecular water layers were used but the lowest when a single molecular layer was used. Simulations of a single molecular water layer sandwiched between a single molecular layer of the aforementioned organic compounds and the octahedral surface of clay indicated that the water layer was not stable. In particular, water molecules tended to desorb from the surface and clustered together to form water/water hydrogen bonds. Given the nature of bitumen molecules, the current results support the hypothesis that a pre-existing water layer on the sand and clay surfaces in raw oil sands is plausible so long as it is thick enough. === Chemical Engineering |
author2 |
Choi, Phillip (Chemical and Materials Engineering) |
author_facet |
Choi, Phillip (Chemical and Materials Engineering) Ni, Xiao |
author |
Ni, Xiao |
author_sort |
Ni, Xiao |
title |
Molecular simulation of the wetting of selected solvents on sand and clay surfaces |
title_short |
Molecular simulation of the wetting of selected solvents on sand and clay surfaces |
title_full |
Molecular simulation of the wetting of selected solvents on sand and clay surfaces |
title_fullStr |
Molecular simulation of the wetting of selected solvents on sand and clay surfaces |
title_full_unstemmed |
Molecular simulation of the wetting of selected solvents on sand and clay surfaces |
title_sort |
molecular simulation of the wetting of selected solvents on sand and clay surfaces |
publishDate |
2009 |
url |
http://hdl.handle.net/10048/844 |
work_keys_str_mv |
AT nixiao molecularsimulationofthewettingofselectedsolventsonsandandclaysurfaces |
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1716391438274527232 |