Predicting the rarefied gas flow through circular nano/micro short tubes: a semi-empirical model

A new explicit semi-empirical model was proposed for predicting the steady state gas flow rate through short tubes under rarefied condition. The experimental data produced by Fujimoto and Usami and the DSMC data provided by Varoutis et al. were utilized to obtain the model coefficients. The model wa...

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Main Authors: Hashemifard, S. A., Matsuura, T., Ismail, A. F.
Format: Article
Published: Elsevier Ltd. 2019
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Online Access:http://eprints.utm.my/id/eprint/88278/
http://dx.doi.org/10.1016/j.vacuum.2019.02.044
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spelling my.utm.882782020-12-14T23:55:54Z http://eprints.utm.my/id/eprint/88278/ Predicting the rarefied gas flow through circular nano/micro short tubes: a semi-empirical model Hashemifard, S. A. Matsuura, T. Ismail, A. F. TP Chemical technology A new explicit semi-empirical model was proposed for predicting the steady state gas flow rate through short tubes under rarefied condition. The experimental data produced by Fujimoto and Usami and the DSMC data provided by Varoutis et al. were utilized to obtain the model coefficients. The model was further validated by the published experimental data. The proposed model was capable to make predictions while meeting all the criteria of the rarefied gas flow in the following ranges of the variables: 0<P r < 0.7, 0<δ < 4000 and 0<ω < 13. The model was capable to predict the reduced flow rate of rarefied systems, not only in the free molecular region and the hydrodynamic region, but also in the transition region, hence covering all the Knudsen number domain within the utilized data. It was also found that by increasing the pressure ratio and decreasing the length to diameter ratio, the transition region shifted to the higher values of the rarefaction parameter. The proposed model is useful in the vacuum gas community for engineering purposes by offering a practical closed form expression for the DSMC data to predict the rarefied gas flow rate. Elsevier Ltd. 2019-06 Article PeerReviewed Hashemifard, S. A. and Matsuura, T. and Ismail, A. F. (2019) Predicting the rarefied gas flow through circular nano/micro short tubes: a semi-empirical model. Vacuum, 164 . pp. 18-28. ISSN 0042-207X http://dx.doi.org/10.1016/j.vacuum.2019.02.044 DOI:10.1016/j.vacuum.2019.02.044
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TP Chemical technology
spellingShingle TP Chemical technology
Hashemifard, S. A.
Matsuura, T.
Ismail, A. F.
Predicting the rarefied gas flow through circular nano/micro short tubes: a semi-empirical model
description A new explicit semi-empirical model was proposed for predicting the steady state gas flow rate through short tubes under rarefied condition. The experimental data produced by Fujimoto and Usami and the DSMC data provided by Varoutis et al. were utilized to obtain the model coefficients. The model was further validated by the published experimental data. The proposed model was capable to make predictions while meeting all the criteria of the rarefied gas flow in the following ranges of the variables: 0<P r < 0.7, 0<δ < 4000 and 0<ω < 13. The model was capable to predict the reduced flow rate of rarefied systems, not only in the free molecular region and the hydrodynamic region, but also in the transition region, hence covering all the Knudsen number domain within the utilized data. It was also found that by increasing the pressure ratio and decreasing the length to diameter ratio, the transition region shifted to the higher values of the rarefaction parameter. The proposed model is useful in the vacuum gas community for engineering purposes by offering a practical closed form expression for the DSMC data to predict the rarefied gas flow rate.
format Article
author Hashemifard, S. A.
Matsuura, T.
Ismail, A. F.
author_facet Hashemifard, S. A.
Matsuura, T.
Ismail, A. F.
author_sort Hashemifard, S. A.
title Predicting the rarefied gas flow through circular nano/micro short tubes: a semi-empirical model
title_short Predicting the rarefied gas flow through circular nano/micro short tubes: a semi-empirical model
title_full Predicting the rarefied gas flow through circular nano/micro short tubes: a semi-empirical model
title_fullStr Predicting the rarefied gas flow through circular nano/micro short tubes: a semi-empirical model
title_full_unstemmed Predicting the rarefied gas flow through circular nano/micro short tubes: a semi-empirical model
title_sort predicting the rarefied gas flow through circular nano/micro short tubes: a semi-empirical model
publisher Elsevier Ltd.
publishDate 2019
url http://eprints.utm.my/id/eprint/88278/
http://dx.doi.org/10.1016/j.vacuum.2019.02.044
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score 13.188556