Mass, energy, entropy and exergy rate balance in a ranque-hilsh vortex tube
<p>The purpose of this paper is to exhibit a laboratory practicum designed for the subject of Thermodynamics at the Department of Thermal Engineering of the University of the Basque Country. With reference to one of the problems stated in the text of Moran, Shapiro, Boettner, Bailey (2012), th...
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doaj-4cd69e6bd34641e48a2642d0724cb0f82020-11-24T22:55:57ZengOmniaScienceJournal of Technology and Science Education2013-63742013-12-013312213110.3926/jotse.8641Mass, energy, entropy and exergy rate balance in a ranque-hilsh vortex tubeEdorta Carrascal0José María Sala Lizarraga1University of the Basque CountryUniversity of the Basque Country<p>The purpose of this paper is to exhibit a laboratory practicum designed for the subject of Thermodynamics at the Department of Thermal Engineering of the University of the Basque Country. With reference to one of the problems stated in the text of Moran, Shapiro, Boettner, Bailey (2012), the balances of mass, energy, entropy and exergy are applied in a particular Control Volume, and the ideal gas model is used.</p> <p>Using a Ranque-Hilsh vortex tube (Ranque, 1934), the division of a compressed air flow into two streams at a lower pressure is achieved; one hot whose temperature can exceed 100 °C and another cold that can reach temperatures below -40 °C. Therefore an air flow is divided into two, one hot and one cold stream, without any thermal interaction with hot or cold focuses.</p> <p>The vortex tube operation can serve to expose the bases of the first and second law of thermodynamics. Even, this practical lab can be used to give sense to one of the most known theoretical experiments in thermodynamics, such as the one of Maxwell's demon (Lewins & Bejan, 1999; Liew, Zeegers, Kuerten & Michalek, 2012). On the other hand once a compressed air source is provided, the material needed to prepare the lab is simple and affordable and it has a very interesting and suggestive appeal.</p>http://www.jotse.org/index.php/jotse/article/view/86thermodynamicsenergy balanceentropy balanceexergy balanceGouy-Stodolaexergetic efficiencyvortex tube |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Edorta Carrascal José María Sala Lizarraga |
spellingShingle |
Edorta Carrascal José María Sala Lizarraga Mass, energy, entropy and exergy rate balance in a ranque-hilsh vortex tube Journal of Technology and Science Education thermodynamics energy balance entropy balance exergy balance Gouy-Stodola exergetic efficiency vortex tube |
author_facet |
Edorta Carrascal José María Sala Lizarraga |
author_sort |
Edorta Carrascal |
title |
Mass, energy, entropy and exergy rate balance in a ranque-hilsh vortex tube |
title_short |
Mass, energy, entropy and exergy rate balance in a ranque-hilsh vortex tube |
title_full |
Mass, energy, entropy and exergy rate balance in a ranque-hilsh vortex tube |
title_fullStr |
Mass, energy, entropy and exergy rate balance in a ranque-hilsh vortex tube |
title_full_unstemmed |
Mass, energy, entropy and exergy rate balance in a ranque-hilsh vortex tube |
title_sort |
mass, energy, entropy and exergy rate balance in a ranque-hilsh vortex tube |
publisher |
OmniaScience |
series |
Journal of Technology and Science Education |
issn |
2013-6374 |
publishDate |
2013-12-01 |
description |
<p>The purpose of this paper is to exhibit a laboratory practicum designed for the subject of Thermodynamics at the Department of Thermal Engineering of the University of the Basque Country. With reference to one of the problems stated in the text of Moran, Shapiro, Boettner, Bailey (2012), the balances of mass, energy, entropy and exergy are applied in a particular Control Volume, and the ideal gas model is used.</p> <p>Using a Ranque-Hilsh vortex tube (Ranque, 1934), the division of a compressed air flow into two streams at a lower pressure is achieved; one hot whose temperature can exceed 100 °C and another cold that can reach temperatures below -40 °C. Therefore an air flow is divided into two, one hot and one cold stream, without any thermal interaction with hot or cold focuses.</p> <p>The vortex tube operation can serve to expose the bases of the first and second law of thermodynamics. Even, this practical lab can be used to give sense to one of the most known theoretical experiments in thermodynamics, such as the one of Maxwell's demon (Lewins & Bejan, 1999; Liew, Zeegers, Kuerten & Michalek, 2012). On the other hand once a compressed air source is provided, the material needed to prepare the lab is simple and affordable and it has a very interesting and suggestive appeal.</p> |
topic |
thermodynamics energy balance entropy balance exergy balance Gouy-Stodola exergetic efficiency vortex tube |
url |
http://www.jotse.org/index.php/jotse/article/view/86 |
work_keys_str_mv |
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