Notes on factitious shear work of slip flow in a channel

Gas slip flow is observed in a micro scale channel whose characteristic length is less than about 10 μm under atmospheric conditions. To analyze the slip flow, the energy equation with the viscous dissipation term is solved with a boundary condition which includes a factitious sliding shear work ter...

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Main Authors: Asako, Yutaka, Hong, Chungpyo
Format: Article
Published: Elsevier Ltd. 2018
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author Asako, Yutaka
Hong, Chungpyo
author_facet Asako, Yutaka
Hong, Chungpyo
author_sort Asako, Yutaka
collection ePrints
description Gas slip flow is observed in a micro scale channel whose characteristic length is less than about 10 μm under atmospheric conditions. To analyze the slip flow, the energy equation with the viscous dissipation term is solved with a boundary condition which includes a factitious sliding shear work term due to the slip at the wall to compensate the energy balance. Recently, an alternate method which uses the boundary condition without inclusion of the factitious sliding shear work term has been proposed. However, it seems that physics of the slip flow has not been properly understood by researchers. In this paper to clarify the issue, a very simple configuration, a steady state laminar slip flow in a hydro-dynamically fully developed region of a circular micro-tube with an adiabatic wall, is considered. Also all thermo-physical properties of the fluid are assumed to be constant. Theoretical justification to the boundary condition of the energy equation is provided using the discontinuity of the velocity of the slip flow on the wall.
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spelling utm.eprints-852542020-03-17T08:01:54Z http://eprints.utm.my/85254/ Notes on factitious shear work of slip flow in a channel Asako, Yutaka Hong, Chungpyo TJ Mechanical engineering and machinery Gas slip flow is observed in a micro scale channel whose characteristic length is less than about 10 μm under atmospheric conditions. To analyze the slip flow, the energy equation with the viscous dissipation term is solved with a boundary condition which includes a factitious sliding shear work term due to the slip at the wall to compensate the energy balance. Recently, an alternate method which uses the boundary condition without inclusion of the factitious sliding shear work term has been proposed. However, it seems that physics of the slip flow has not been properly understood by researchers. In this paper to clarify the issue, a very simple configuration, a steady state laminar slip flow in a hydro-dynamically fully developed region of a circular micro-tube with an adiabatic wall, is considered. Also all thermo-physical properties of the fluid are assumed to be constant. Theoretical justification to the boundary condition of the energy equation is provided using the discontinuity of the velocity of the slip flow on the wall. Elsevier Ltd. 2018-12 Article PeerReviewed Asako, Yutaka and Hong, Chungpyo (2018) Notes on factitious shear work of slip flow in a channel. International Journal of Heat and Mass Transfer, 127 (Part C). pp. 444-447. ISSN 0017-9310 http://dx.doi.org/10.1016/j.ijheatmasstransfer.2018.08.008 DOI:10.1016/j.ijheatmasstransfer.2018.08.008
spellingShingle TJ Mechanical engineering and machinery
Asako, Yutaka
Hong, Chungpyo
Notes on factitious shear work of slip flow in a channel
title Notes on factitious shear work of slip flow in a channel
title_full Notes on factitious shear work of slip flow in a channel
title_fullStr Notes on factitious shear work of slip flow in a channel
title_full_unstemmed Notes on factitious shear work of slip flow in a channel
title_short Notes on factitious shear work of slip flow in a channel
title_sort notes on factitious shear work of slip flow in a channel
topic TJ Mechanical engineering and machinery
work_keys_str_mv AT asakoyutaka notesonfactitiousshearworkofslipflowinachannel
AT hongchungpyo notesonfactitiousshearworkofslipflowinachannel