Molecular Dynamics Study of Fluid Solid Interfacial Slip and Its Effect on Aerodynamic Drag

Interfacial hydrodynamic slippage is controlled by two factors say physical structure and chemical composition. Various studies have been conducted experimentally which try to connect the physical structure of the surface and its chemical property on the interfacial wettability. One such example is...

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Main Authors: Mohammed Asef, Babu Jeetu S.
Format: Article
Language:English
Published: EDP Sciences 2017-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201711402007
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spelling doaj-69c3464c85f6441293d0b2c9331c3ba02021-04-02T13:08:23ZengEDP SciencesMATEC Web of Conferences2261-236X2017-01-011140200710.1051/matecconf/201711402007matecconf_2mae2017_02007Molecular Dynamics Study of Fluid Solid Interfacial Slip and Its Effect on Aerodynamic DragMohammed AsefBabu Jeetu S.Interfacial hydrodynamic slippage is controlled by two factors say physical structure and chemical composition. Various studies have been conducted experimentally which try to connect the physical structure of the surface and its chemical property on the interfacial wettability. One such example is the Tunable wettability in surface-modified ZnO-based hierarchical nanostructures [2]. In which vertically aligned Nanoneedles and Nanonails were employed as a platform to determine the effect of surface structure. According to which a variation in static contact angles were observed as the cap size the nanonails constantly increased. Starting with a contact angle of 104° the contact angle first increases and then decreases, which means that the slip length first increases and then decreases. The increase in slip length reduces the drag, which has immense application in the aerodynamic field. This paper investigates the relation between the chemical wettability and aerodynamic drag by performing MD simulations of couette flow with varying fluid-surface interaction.https://doi.org/10.1051/matecconf/201711402007
collection DOAJ
language English
format Article
sources DOAJ
author Mohammed Asef
Babu Jeetu S.
spellingShingle Mohammed Asef
Babu Jeetu S.
Molecular Dynamics Study of Fluid Solid Interfacial Slip and Its Effect on Aerodynamic Drag
MATEC Web of Conferences
author_facet Mohammed Asef
Babu Jeetu S.
author_sort Mohammed Asef
title Molecular Dynamics Study of Fluid Solid Interfacial Slip and Its Effect on Aerodynamic Drag
title_short Molecular Dynamics Study of Fluid Solid Interfacial Slip and Its Effect on Aerodynamic Drag
title_full Molecular Dynamics Study of Fluid Solid Interfacial Slip and Its Effect on Aerodynamic Drag
title_fullStr Molecular Dynamics Study of Fluid Solid Interfacial Slip and Its Effect on Aerodynamic Drag
title_full_unstemmed Molecular Dynamics Study of Fluid Solid Interfacial Slip and Its Effect on Aerodynamic Drag
title_sort molecular dynamics study of fluid solid interfacial slip and its effect on aerodynamic drag
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2017-01-01
description Interfacial hydrodynamic slippage is controlled by two factors say physical structure and chemical composition. Various studies have been conducted experimentally which try to connect the physical structure of the surface and its chemical property on the interfacial wettability. One such example is the Tunable wettability in surface-modified ZnO-based hierarchical nanostructures [2]. In which vertically aligned Nanoneedles and Nanonails were employed as a platform to determine the effect of surface structure. According to which a variation in static contact angles were observed as the cap size the nanonails constantly increased. Starting with a contact angle of 104° the contact angle first increases and then decreases, which means that the slip length first increases and then decreases. The increase in slip length reduces the drag, which has immense application in the aerodynamic field. This paper investigates the relation between the chemical wettability and aerodynamic drag by performing MD simulations of couette flow with varying fluid-surface interaction.
url https://doi.org/10.1051/matecconf/201711402007
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AT babujeetus moleculardynamicsstudyoffluidsolidinterfacialslipanditseffectonaerodynamicdrag
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