Analogy between Thermodynamic Phase Transitions and Creeping Flows in Rectangular Cavities
An analogy is found between the streamline function corresponding to Stokes flows in rectangular cavities and the thermodynamics of phase transitions and critical points. In a rectangular cavity flow, with no-slip boundary conditions at the walls, the corners are fixed points. The corners defined by...
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2020-11-01
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doaj-dabb91669b6845099b5b36d8b0ed76e42020-11-25T04:05:32ZengMDPI AGSymmetry2073-89942020-11-01121859185910.3390/sym12111859Analogy between Thermodynamic Phase Transitions and Creeping Flows in Rectangular CavitiesMiron Kaufman0Petru S. Fodor1Department of Physics, Cleveland State University, 2121 Euclid Avenue, Cleveland, OH 44115, USADepartment of Physics, Cleveland State University, 2121 Euclid Avenue, Cleveland, OH 44115, USAAn analogy is found between the streamline function corresponding to Stokes flows in rectangular cavities and the thermodynamics of phase transitions and critical points. In a rectangular cavity flow, with no-slip boundary conditions at the walls, the corners are fixed points. The corners defined by a stationary and a moving wall, are found to be analogous to a thermodynamic first-order transition point. In contrast, the corners defined by two stationary walls correspond to thermodynamic critical points. Here, flow structures, also known as Moffatt eddies, form and act as stagnation regions where mixing is impeded. A third stationary point occurs in the middle region of the channel and it is analogous to a high temperature thermodynamic fixed point. The numerical results of the fluid flow modeling are correlated with analytical work in the proximity of the fixed points.https://www.mdpi.com/2073-8994/12/11/1859cavity flowstreamline function singularitiesstokes creeping flow |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Miron Kaufman Petru S. Fodor |
spellingShingle |
Miron Kaufman Petru S. Fodor Analogy between Thermodynamic Phase Transitions and Creeping Flows in Rectangular Cavities Symmetry cavity flow streamline function singularities stokes creeping flow |
author_facet |
Miron Kaufman Petru S. Fodor |
author_sort |
Miron Kaufman |
title |
Analogy between Thermodynamic Phase Transitions and Creeping Flows in Rectangular Cavities |
title_short |
Analogy between Thermodynamic Phase Transitions and Creeping Flows in Rectangular Cavities |
title_full |
Analogy between Thermodynamic Phase Transitions and Creeping Flows in Rectangular Cavities |
title_fullStr |
Analogy between Thermodynamic Phase Transitions and Creeping Flows in Rectangular Cavities |
title_full_unstemmed |
Analogy between Thermodynamic Phase Transitions and Creeping Flows in Rectangular Cavities |
title_sort |
analogy between thermodynamic phase transitions and creeping flows in rectangular cavities |
publisher |
MDPI AG |
series |
Symmetry |
issn |
2073-8994 |
publishDate |
2020-11-01 |
description |
An analogy is found between the streamline function corresponding to Stokes flows in rectangular cavities and the thermodynamics of phase transitions and critical points. In a rectangular cavity flow, with no-slip boundary conditions at the walls, the corners are fixed points. The corners defined by a stationary and a moving wall, are found to be analogous to a thermodynamic first-order transition point. In contrast, the corners defined by two stationary walls correspond to thermodynamic critical points. Here, flow structures, also known as Moffatt eddies, form and act as stagnation regions where mixing is impeded. A third stationary point occurs in the middle region of the channel and it is analogous to a high temperature thermodynamic fixed point. The numerical results of the fluid flow modeling are correlated with analytical work in the proximity of the fixed points. |
topic |
cavity flow streamline function singularities stokes creeping flow |
url |
https://www.mdpi.com/2073-8994/12/11/1859 |
work_keys_str_mv |
AT mironkaufman analogybetweenthermodynamicphasetransitionsandcreepingflowsinrectangularcavities AT petrusfodor analogybetweenthermodynamicphasetransitionsandcreepingflowsinrectangularcavities |
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