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Prikladnaya Mekhanika i Tekhnicheskaya Fizika, 2003, Volume 44, Issue 2, Pages 101–108 (Mi pmtf2484)  

This article is cited in 13 scientific papers (total in 13 papers)

Heat and mass transfer during vapor absorption by a stagnant solution layer

V. E. Nakoryakov, N. S. Bufetov, N. I. Grigor'eva, R. A. Dekhtyar'

Kutateladze Institute of Thermal Physics, Siberian Division, Russian Academy of Sciences, Novosibirsk, 630090
Abstract: Based on simple models of nonisothermal absorption for the cases of long and short times, the effect of the heat-generation and heat-extraction rates on vapor absorption by a stagnant solution layer is analyzed. Models taking into account and ignoring the motion of the interface between the phases are considered. Results of an experimental study of steam absorption by a stagnant water/LiBr solution are described. Time dependences of temperatures at various heights inside the liquid layer and of the absorbed mass, and also temperature and concentration profiles at various times, are reported. A comparison of predicted values with experimental data is given.
Keywords: absorption, heat and mass transfer, diffusion, solution, concentration, temperature.
Received: 18.09.2002
English version:
Journal of Applied Mechanics and Technical Physics, 2003, Volume 44, Issue 2, Pages 236–242
DOI: https://doi.org/10.1023/A:1022500628146
Bibliographic databases:
Document Type: Article
UDC: 536.423.4
Language: Russian
Citation: V. E. Nakoryakov, N. S. Bufetov, N. I. Grigor'eva, R. A. Dekhtyar', “Heat and mass transfer during vapor absorption by a stagnant solution layer”, Prikl. Mekh. Tekh. Fiz., 44:2 (2003), 101–108; J. Appl. Mech. Tech. Phys., 44:2 (2003), 236–242
Citation in format AMSBIB
\Bibitem{NakBufGri03}
\by V.~E.~Nakoryakov, N.~S.~Bufetov, N.~I.~Grigor'eva, R.~A.~Dekhtyar'
\paper Heat and mass transfer during vapor absorption by a stagnant solution layer
\jour Prikl. Mekh. Tekh. Fiz.
\yr 2003
\vol 44
\issue 2
\pages 101--108
\mathnet{http://mi.mathnet.ru/pmtf2484}
\elib{https://elibrary.ru/item.asp?id=17274776}
\transl
\jour J. Appl. Mech. Tech. Phys.
\yr 2003
\vol 44
\issue 2
\pages 236--242
\crossref{https://doi.org/10.1023/A:1022500628146}
Linking options:
  • https://www.mathnet.ru/eng/pmtf2484
  • https://www.mathnet.ru/eng/pmtf/v44/i2/p101
  • This publication is cited in the following 13 articles:
    1. V.B. Bekezhanova, I.V. Stepanova, “Mathematical modeling of concentration influence on evaporative convection in a bilayer system of binary mixtures”, International Journal of Heat and Fluid Flow, 107 (2024), 109385  crossref
    2. Victoria B. Bekezhanova, Olga N. Goncharova, Ekaterina V. Laskovets, “Study of the gas flow rate effect on the parameters of evaporative convection regimes using an exact solution”, International Journal of Thermal Sciences, 204 (2024), 109179  crossref
    3. Arnat Mahamoudou, Nolwenn Le Pierrès, Julien Ramousse, “Review of coupled heat and mass transfer studies in falling film absorbers: Modeling, experimental and thermodynamic approaches”, International Journal of Refrigeration, 136 (2022), 229  crossref
    4. N. S. Bufetov, R. A. Dekhtyar, V. V. Ovchinnikov, “Investigation of transient regimes with steam absorption by water solution of lithium bromide”, Thermophys. Aeromech., 28:1 (2021), 125  crossref
    5. Ekaterina Slesareva, Nikolay Bufetov, Ruslan Dekhtyar, INTERNATIONAL YOUTH SCIENTIFIC CONFERENCE “HEAT AND MASS TRANSFER IN THE THERMAL CONTROL SYSTEM OF TECHNICAL AND TECHNOLOGICAL ENERGY EQUIPMENT” (HMTTSC 2019), 2135, INTERNATIONAL YOUTH SCIENTIFIC CONFERENCE “HEAT AND MASS TRANSFER IN THE THERMAL CONTROL SYSTEM OF TECHNICAL AND TECHNOLOGICAL ENERGY EQUIPMENT” (HMTTSC 2019), 2019, 020054  crossref
    6. O. H. Goncharova, E. V. Rezanova, Yu. V. Lyulin, O. A. Kabov, “Analysis of a convective fluid flow with a concurrent gas flow with allowance for evaporation”, High Temperature, 55:6 (2017), 887–897  mathnet  mathnet  crossref  crossref  isi  scopus
    7. V B Bekezhanova, O N Goncharova, “Stability of exact solutions describing two-layer flows with evaporation at the interface”, Fluid Dyn. Res., 48:6 (2016), 061408  crossref
    8. S.Y. Misyura, “Wall effect on heat transfer crisis”, Experimental Thermal and Fluid Science, 70 (2016), 389  crossref
    9. S. Y. Misyura, V. S. Morozov, G.V. Kuznetsov, P.A. Strizhak, E.E. Bulba, A.O. Zhdanova, “Desorption of aqueous salt solution in minichannels”, MATEC Web of Conferences, 23 (2015), 01029  crossref
    10. S.Y. Misyura, V.S. Morozov, P.A. Strizhak, V.E. Gubin, A.O. Zhdanova, G.V. Kuznetsov, “Nonisothermal Desorption of the Libr Aqueous Salt Solution in Minichannels”, MATEC Web of Conferences, 37 (2015), 01033  crossref
    11. Gerardo Diaz, “Numerical investigation of transient heat and mass transfer in a parallel-flow liquid-desiccant absorber”, Heat Mass Transfer, 46:11-12 (2010), 1335  crossref
    12. V. E. Nakoryakov, N. I. Grigoryeva, “Nonisothermal absorption in thermotransformers”, J. Engin. Thermophys., 19:4 (2010), 196  crossref
    13. V.E. Nakoryakov, N.I. Grigoryeva, N.S. Bufetov, R.A. Dekhtyar, “Heat and mass transfer intensification at steam absorption by surfactant additives”, International Journal of Heat and Mass Transfer, 51:21-22 (2008), 5175  crossref
    Citing articles in Google Scholar: Russian citations, English citations
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