Event-Driven Molecular Dynamics Simulation of Hard-Sphere Gas Flows in Microchannels

Classical solution of Navier-Stokes equations with nonslip boundary condition leads to inaccurate predictions of flow characteristics of rarefied gases confined in micro/nanochannels. Therefore, molecular interaction based simulations are often used to properly express velocity and temperature slips...

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Main Authors: Volkan Ramazan Akkaya, Ilyas Kandemir
Format: Article
Language:English
Published: Hindawi Limited 2015-01-01
Series:Mathematical Problems in Engineering
Online Access:http://dx.doi.org/10.1155/2015/842837
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spelling doaj-c108f8269cb64a0bb9e21c240a9eca402020-11-24T22:36:09ZengHindawi LimitedMathematical Problems in Engineering1024-123X1563-51472015-01-01201510.1155/2015/842837842837Event-Driven Molecular Dynamics Simulation of Hard-Sphere Gas Flows in MicrochannelsVolkan Ramazan Akkaya0Ilyas Kandemir1Department of Energy Systems Engineering, Muğla Sıtkı Koçman University, 48100 Muğla, TurkeyDepartment of Mechanical Engineering, Gebze Technical University, Gebze, 41400 Kocaeli, TurkeyClassical solution of Navier-Stokes equations with nonslip boundary condition leads to inaccurate predictions of flow characteristics of rarefied gases confined in micro/nanochannels. Therefore, molecular interaction based simulations are often used to properly express velocity and temperature slips at high Knudsen numbers (Kn) seen at dilute gases or narrow channels. In this study, an event-driven molecular dynamics (EDMD) simulation is proposed to estimate properties of hard-sphere gas flows. Considering molecules as hard-spheres, trajectories of the molecules, collision partners, corresponding interaction times, and postcollision velocities are computed deterministically using discrete interaction potentials. On the other hand, boundary interactions are handled stochastically. Added to that, in order to create a pressure gradient along the channel, an implicit treatment for flow boundaries is adapted for EDMD simulations. Shear-Driven (Couette) and Pressure-Driven flows for various channel configurations are simulated to demonstrate the validity of suggested treatment. Results agree well with DSMC method and solution of linearized Boltzmann equation. At low Kn, EDMD produces similar velocity profiles with Navier-Stokes (N-S) equations and slip boundary conditions, but as Kn increases, N-S slip models overestimate slip velocities.http://dx.doi.org/10.1155/2015/842837
collection DOAJ
language English
format Article
sources DOAJ
author Volkan Ramazan Akkaya
Ilyas Kandemir
spellingShingle Volkan Ramazan Akkaya
Ilyas Kandemir
Event-Driven Molecular Dynamics Simulation of Hard-Sphere Gas Flows in Microchannels
Mathematical Problems in Engineering
author_facet Volkan Ramazan Akkaya
Ilyas Kandemir
author_sort Volkan Ramazan Akkaya
title Event-Driven Molecular Dynamics Simulation of Hard-Sphere Gas Flows in Microchannels
title_short Event-Driven Molecular Dynamics Simulation of Hard-Sphere Gas Flows in Microchannels
title_full Event-Driven Molecular Dynamics Simulation of Hard-Sphere Gas Flows in Microchannels
title_fullStr Event-Driven Molecular Dynamics Simulation of Hard-Sphere Gas Flows in Microchannels
title_full_unstemmed Event-Driven Molecular Dynamics Simulation of Hard-Sphere Gas Flows in Microchannels
title_sort event-driven molecular dynamics simulation of hard-sphere gas flows in microchannels
publisher Hindawi Limited
series Mathematical Problems in Engineering
issn 1024-123X
1563-5147
publishDate 2015-01-01
description Classical solution of Navier-Stokes equations with nonslip boundary condition leads to inaccurate predictions of flow characteristics of rarefied gases confined in micro/nanochannels. Therefore, molecular interaction based simulations are often used to properly express velocity and temperature slips at high Knudsen numbers (Kn) seen at dilute gases or narrow channels. In this study, an event-driven molecular dynamics (EDMD) simulation is proposed to estimate properties of hard-sphere gas flows. Considering molecules as hard-spheres, trajectories of the molecules, collision partners, corresponding interaction times, and postcollision velocities are computed deterministically using discrete interaction potentials. On the other hand, boundary interactions are handled stochastically. Added to that, in order to create a pressure gradient along the channel, an implicit treatment for flow boundaries is adapted for EDMD simulations. Shear-Driven (Couette) and Pressure-Driven flows for various channel configurations are simulated to demonstrate the validity of suggested treatment. Results agree well with DSMC method and solution of linearized Boltzmann equation. At low Kn, EDMD produces similar velocity profiles with Navier-Stokes (N-S) equations and slip boundary conditions, but as Kn increases, N-S slip models overestimate slip velocities.
url http://dx.doi.org/10.1155/2015/842837
work_keys_str_mv AT volkanramazanakkaya eventdrivenmoleculardynamicssimulationofhardspheregasflowsinmicrochannels
AT ilyaskandemir eventdrivenmoleculardynamicssimulationofhardspheregasflowsinmicrochannels
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