Velocity Measurements in Channel Gas Flows in the Slip Regime by means of Molecular Tagging Velocimetry

Direct measurements of the slip velocity in rarefied gas flows produced by local thermodynamic non-equilibrium at the wall represent crucial information for the validation of existing theoretical and numerical models. In this work, molecular tagging velocimetry (MTV) by direct phosphorescence is app...

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Published in:Micromachines
Main Authors: Dominique Fratantonio, Marcos Rojas-Cárdenas, Christine Barrot, Lucien Baldas, Stéphane Colin
Format: Article
Language:English
Published: MDPI AG 2020-04-01
Subjects:
Online Access:https://www.mdpi.com/2072-666X/11/4/374
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author Dominique Fratantonio
Marcos Rojas-Cárdenas
Christine Barrot
Lucien Baldas
Stéphane Colin
author_facet Dominique Fratantonio
Marcos Rojas-Cárdenas
Christine Barrot
Lucien Baldas
Stéphane Colin
author_sort Dominique Fratantonio
collection DOAJ
container_title Micromachines
description Direct measurements of the slip velocity in rarefied gas flows produced by local thermodynamic non-equilibrium at the wall represent crucial information for the validation of existing theoretical and numerical models. In this work, molecular tagging velocimetry (MTV) by direct phosphorescence is applied to argon and helium flows at low pressures in a 1-mm deep channel. MTV has provided accurate measurements of the molecular displacement of the gas at average pressures of the order of 1 kPa. To the best of our knowledge, this work reports the very first flow visualizations of a gas in a confined domain and in the slip flow regime, with Knudsen numbers up to 0.014. MTV is cross-validated with mass flowrate measurements by the constant volume technique. The two diagnostic methods are applied simultaneously, and the measurements in terms of average velocity at the test section are in good agreement. Moreover, preliminary results of the slip velocity at the wall are computed from the MTV data by means of a reconstruction method.
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spelling doaj-art-df40d044a6d24efba908ef313fbfed6e2025-08-19T22:50:39ZengMDPI AGMicromachines2072-666X2020-04-0111437410.3390/mi11040374Velocity Measurements in Channel Gas Flows in the Slip Regime by means of Molecular Tagging VelocimetryDominique Fratantonio0Marcos Rojas-Cárdenas1Christine Barrot2Lucien Baldas3Stéphane Colin4Los Alamos National Laboratories, Physics Division, Los Alamos, NM 87545, USAInstitut Clément Ader (ICA), Université de Toulouse CNRS, INSA, ISAE-SUPAERO, Mines-Albi, UPS, 31400 Toulouse, FranceInstitut Clément Ader (ICA), Université de Toulouse CNRS, INSA, ISAE-SUPAERO, Mines-Albi, UPS, 31400 Toulouse, FranceInstitut Clément Ader (ICA), Université de Toulouse CNRS, INSA, ISAE-SUPAERO, Mines-Albi, UPS, 31400 Toulouse, FranceInstitut Clément Ader (ICA), Université de Toulouse CNRS, INSA, ISAE-SUPAERO, Mines-Albi, UPS, 31400 Toulouse, FranceDirect measurements of the slip velocity in rarefied gas flows produced by local thermodynamic non-equilibrium at the wall represent crucial information for the validation of existing theoretical and numerical models. In this work, molecular tagging velocimetry (MTV) by direct phosphorescence is applied to argon and helium flows at low pressures in a 1-mm deep channel. MTV has provided accurate measurements of the molecular displacement of the gas at average pressures of the order of 1 kPa. To the best of our knowledge, this work reports the very first flow visualizations of a gas in a confined domain and in the slip flow regime, with Knudsen numbers up to 0.014. MTV is cross-validated with mass flowrate measurements by the constant volume technique. The two diagnostic methods are applied simultaneously, and the measurements in terms of average velocity at the test section are in good agreement. Moreover, preliminary results of the slip velocity at the wall are computed from the MTV data by means of a reconstruction method.https://www.mdpi.com/2072-666X/11/4/374rarefied gasslip velocitychannel flowmolecular tagging velocimetry
spellingShingle Dominique Fratantonio
Marcos Rojas-Cárdenas
Christine Barrot
Lucien Baldas
Stéphane Colin
Velocity Measurements in Channel Gas Flows in the Slip Regime by means of Molecular Tagging Velocimetry
rarefied gas
slip velocity
channel flow
molecular tagging velocimetry
title Velocity Measurements in Channel Gas Flows in the Slip Regime by means of Molecular Tagging Velocimetry
title_full Velocity Measurements in Channel Gas Flows in the Slip Regime by means of Molecular Tagging Velocimetry
title_fullStr Velocity Measurements in Channel Gas Flows in the Slip Regime by means of Molecular Tagging Velocimetry
title_full_unstemmed Velocity Measurements in Channel Gas Flows in the Slip Regime by means of Molecular Tagging Velocimetry
title_short Velocity Measurements in Channel Gas Flows in the Slip Regime by means of Molecular Tagging Velocimetry
title_sort velocity measurements in channel gas flows in the slip regime by means of molecular tagging velocimetry
topic rarefied gas
slip velocity
channel flow
molecular tagging velocimetry
url https://www.mdpi.com/2072-666X/11/4/374
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