Molecular dynamics simulation of methane gas flow in nanopores

The transport properties of fluids in nanopores are a fundamental scientific issue in the development of tight reservoirs such as shale gas. The flow of gas in nanosized pores is affected by a size effect, therefore, the conventional fluid mechanics theory cannot be applied. Based on the molecular d...

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Main Authors: Jing Zhang, Guihong Pei, Liyin Zhang
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2019-09-01
Series:Petroleum
Online Access:http://www.sciencedirect.com/science/article/pii/S2405656118301779
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author Jing Zhang
Guihong Pei
Liyin Zhang
author_facet Jing Zhang
Guihong Pei
Liyin Zhang
author_sort Jing Zhang
collection DOAJ
description The transport properties of fluids in nanopores are a fundamental scientific issue in the development of tight reservoirs such as shale gas. The flow of gas in nanosized pores is affected by a size effect, therefore, the conventional fluid mechanics theory cannot be applied. Based on the molecular dynamics theory, the transport process of methane in carbon nanopores was studied, including simulation of the arrangement of the wall atoms, slip and transitional flow of methane in the supercritical state and application of different driving forces. The research of this paper revealed that the configuration of the wall carbon atoms, at the microscale, has a greater influence on the density distribution and velocity distribution of methane molecules in the pores, while the change in the driving force has a greater impact on the slippage of methane at the boundary. Particularly, the theoretical model we proposed can predict the transport properties in carbon nanopores, demonstrating the sensitivity of driving force, pore configuration and the state of flow for methane gas transport, which can provide the characteristic parameters for the establishment of the seepage mathematical model. Keywords: Molecular dynamics, Shale gas, Transport property, Carbon nanopore, Numerical simulation
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spelling doaj.art-2501f4abd3e343d587b96ce44cd8a92e2022-12-21T22:10:46ZengKeAi Communications Co., Ltd.Petroleum2405-65612019-09-0153252259Molecular dynamics simulation of methane gas flow in nanoporesJing Zhang0Guihong Pei1Liyin Zhang2School of Civil Engineering and Architecture, Southwest Petroleum University, ChinaSchool of Civil Engineering and Architecture, Southwest Petroleum University, China; School of Architectural Economics and Engineering Management, Hubei Business College, China; Corresponding author. School of Civil Engineering and Architecture, Southwest Petroleum University, Sichuan, Chengdu, 610500, China.Chengdu Highway Construction & Development Co., Ltd, ChinaThe transport properties of fluids in nanopores are a fundamental scientific issue in the development of tight reservoirs such as shale gas. The flow of gas in nanosized pores is affected by a size effect, therefore, the conventional fluid mechanics theory cannot be applied. Based on the molecular dynamics theory, the transport process of methane in carbon nanopores was studied, including simulation of the arrangement of the wall atoms, slip and transitional flow of methane in the supercritical state and application of different driving forces. The research of this paper revealed that the configuration of the wall carbon atoms, at the microscale, has a greater influence on the density distribution and velocity distribution of methane molecules in the pores, while the change in the driving force has a greater impact on the slippage of methane at the boundary. Particularly, the theoretical model we proposed can predict the transport properties in carbon nanopores, demonstrating the sensitivity of driving force, pore configuration and the state of flow for methane gas transport, which can provide the characteristic parameters for the establishment of the seepage mathematical model. Keywords: Molecular dynamics, Shale gas, Transport property, Carbon nanopore, Numerical simulationhttp://www.sciencedirect.com/science/article/pii/S2405656118301779
spellingShingle Jing Zhang
Guihong Pei
Liyin Zhang
Molecular dynamics simulation of methane gas flow in nanopores
Petroleum
title Molecular dynamics simulation of methane gas flow in nanopores
title_full Molecular dynamics simulation of methane gas flow in nanopores
title_fullStr Molecular dynamics simulation of methane gas flow in nanopores
title_full_unstemmed Molecular dynamics simulation of methane gas flow in nanopores
title_short Molecular dynamics simulation of methane gas flow in nanopores
title_sort molecular dynamics simulation of methane gas flow in nanopores
url http://www.sciencedirect.com/science/article/pii/S2405656118301779
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AT guihongpei moleculardynamicssimulationofmethanegasflowinnanopores
AT liyinzhang moleculardynamicssimulationofmethanegasflowinnanopores