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dc.creatorTatsios, G.en
dc.creatorStefanov, S. K.en
dc.creatorValougeorgis, D.en
dc.date.accessioned2015-11-23T10:49:38Z
dc.date.available2015-11-23T10:49:38Z
dc.date.issued2015
dc.identifier10.1103/PhysRevE.91.061001
dc.identifier.issn1539-3755
dc.identifier.urihttp://hdl.handle.net/11615/33589
dc.description.abstractThe well-known Knudsen paradox observed in pressure driven rarefied gas flows through long capillaries is quantitatively explored by decomposing the particle distribution function into its ballistic and collision parts. The classical channel, tube, and duct Poiseuille flows are considered. The solution is obtained by a typical direct simulation Monte Carlo algorithm supplemented by a suitable particle decomposition indexation process. It is computationally confirmed that in the free-molecular and early transition regimes the reduction rate of the ballistic flow is larger than the increase rate of the collision flow deducing the Knudsen minimum of the overall flow. This description interprets in a precise, quantitative manner the appearance of the Knudsen minimum and verifies previously reported qualitative physical arguments.en
dc.sourcePhysical Review Een
dc.source.uri<Go to ISI>://WOS:000355974600001
dc.subjectRAREFIED-GAS FLOWen
dc.subjectBOLTZMANN-EQUATIONen
dc.subjectWHOLE RANGEen
dc.subjectTUBEen
dc.subjectPOISEUILLEen
dc.subjectNUMBERen
dc.subjectPhysics, Fluids & Plasmasen
dc.subjectPhysics, Mathematicalen
dc.titlePredicting the Knudsen paradox in long capillaries by decomposing the flow into ballistic and collision partsen
dc.typejournalArticleen


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