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dc.contributor.authorRudyak, Valery Ya.-
dc.contributor.authorLezhnev, Evgeny V.-
dc.contributor.authorLubimov, Daniil N.-
dc.date.accessioned2022-04-14T12:19:31Z-
dc.date.available2022-04-14T12:19:31Z-
dc.date.issued2022-03-
dc.identifier.citationRudyak V.Ya., Lezhnev E.V., Lubimov D.N. On the anisotropy of gas transfer processes in nano- and microchannels. Vestnik of Saint Petersburg University. Mathematics. Mechanics. Astronomy, 2022, vol. 9 (67), issue 1, pp. 152–163.en_GB
dc.identifier.otherhttps://doi.org/10.21638/spbu01.2022.115-
dc.identifier.urihttp://hdl.handle.net/11701/36163-
dc.description.abstractThe method of stochastic molecular modeling, developed by the authors for calculating the transport coefficients of rarefied gas in a free medium, is generalized to describe transport processes in confined conditions. The phase trajectories of the studied molecular system are simulated stochastically, and the simulation of the dynamics of the molecule is split into processes. First, its shift in the configuration space is realized, and then a possible collision with other molecules is played out. The calculation of all observables, in particular, the transport coefficients is carried out by averaging over an ensemble of independent phase trajectories. The interaction of gas molecules with the boundary is described by mirror or mirror-diffuse laws. The efficiency of the algorithm is demonstrated by calculating the selfdiffusion coefficient of argon in the nanochannel. The accuracy of modeling is investigated, its dependence on the number of particles and phase trajectories used for averaging. The viscosity of rarefied gases in the nanochannel has been systematically studied. It is shown that it is non-isotropic, and its difference along and across the channel is determined by the interaction of gas molecules with the channel walls. By changing the material of the walls, it is possible to significantly change the viscosity of the gas, and it can be several times greater than in volume, or less. The indicated anisotropy of viscosity is recorded not only in nano-, but also in microchannels.en_GB
dc.description.sponsorshipThe work was partially supported by the Russian Foundation for Basic Research (grants no. 19-01- 00399 and no. 20-01-00041) and the megagrant of the Ministry of Science and Higher Education of the Russian Federation (agreement no. 075-15-2021-575).en_GB
dc.language.isoruen_GB
dc.publisherSt Petersburg State Universityen_GB
dc.relation.ispartofseriesVestnik of St Petersburg University. Mathematics. Mechanics. Astronomy;Volume 9; Issue 1-
dc.subjectviscosityen_GB
dc.subjectdiffusionen_GB
dc.subjectmolecular modelingen_GB
dc.subjectnanochannelen_GB
dc.subjectrarefied gasen_GB
dc.subjecttransfer processesen_GB
dc.titleOn the anisotropy of gas transfer processes in nano- and microchannelsen_GB
dc.typeArticleen_GB
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