Research output: Contribution to journal › Article › peer-review
Accounting for resistance and temperature in a flow of a vapor-helium mixture through a layer of a porous composite sorbent based on microspheres. / Vereshchagin, A. S.
In: Journal of Applied Mechanics and Technical Physics, Vol. 62, No. 2, 03.2021, p. 245-254.Research output: Contribution to journal › Article › peer-review
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TY - JOUR
T1 - Accounting for resistance and temperature in a flow of a vapor-helium mixture through a layer of a porous composite sorbent based on microspheres
AU - Vereshchagin, A. S.
N1 - Funding Information: This work was financially supported by the Russian Foundation for Basic Research and the Government of the Novosibirsk Oblast within the framework of the scientific grant No. 20-41-540002 and within the state task (State Registration No. 121030900260-6). Publisher Copyright: © 2021, Pleiades Publishing, Ltd. Copyright: Copyright 2021 Elsevier B.V., All rights reserved.
PY - 2021/3
Y1 - 2021/3
N2 - Within the framework of multiphase media mechanics, a mathematical model is obtained for the dynamics of gas mixture including helium and water vapor in a layer of a resting composite sorbent based on microspheres and a porous matrix of a moisture absorber made of aluminum oxide. The law of conservation of momentum is derived with account for the resistance to the layer, described by the Forchheimer filtration relations, and the law of conservation of energy is derived within the framework of a single-temperature thermally nonconductive model.
AB - Within the framework of multiphase media mechanics, a mathematical model is obtained for the dynamics of gas mixture including helium and water vapor in a layer of a resting composite sorbent based on microspheres and a porous matrix of a moisture absorber made of aluminum oxide. The law of conservation of momentum is derived with account for the resistance to the layer, described by the Forchheimer filtration relations, and the law of conservation of energy is derived within the framework of a single-temperature thermally nonconductive model.
KW - composite sorbent
KW - helium
KW - membrane sorption method
KW - microspheres
KW - water vapor
UR - http://www.scopus.com/inward/record.url?scp=85110938564&partnerID=8YFLogxK
UR - https://www.mendeley.com/catalogue/8465b804-edef-373d-a748-63f3e363a1c2/
U2 - 10.1134/S0021894421020085
DO - 10.1134/S0021894421020085
M3 - Article
AN - SCOPUS:85110938564
VL - 62
SP - 245
EP - 254
JO - Journal of Applied Mechanics and Technical Physics
JF - Journal of Applied Mechanics and Technical Physics
SN - 0021-8944
IS - 2
ER -
ID: 29128851