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Investigation of the process carbon dioxide hydrate formation in a colloidal solution containing AL2O3 nanoparticles and sodium dodecyl sulfate. / Meleshkin, Anton V.; Marasanov, N. V.; Knyazkov, V. A. et al.

In: Interfacial Phenomena and Heat Transfer, Vol. 13, No. 4, 3, 12.2025, p. 41-50.

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Meleshkin AV, Marasanov NV, Knyazkov VA, Klimov BA. Investigation of the process carbon dioxide hydrate formation in a colloidal solution containing AL2O3 nanoparticles and sodium dodecyl sulfate. Interfacial Phenomena and Heat Transfer. 2025 Dec;13(4):41-50. 3. doi: 10.1615/interfacphenomheattransfer.2025058295

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@article{7a958ff986214379a4545499c640ea26,
title = "Investigation of the process carbon dioxide hydrate formation in a colloidal solution containing AL2O3 nanoparticles and sodium dodecyl sulfate",
abstract = "This paper presents the results of an experimental study on the formation of carbon dioxide hydrate in a colloidal aqueous solution of aluminum oxide (Al2O3) and the anionic surfactant sodium dodecyl sulfate (SDS), which acts simultaneously as a kinetic promoter of hydrate formation and a stabilizing agent for the colloidal solution. Oxide nanoparticles were selected for the study due to their high specific surface area, which potentially facilitates the nucleation of gas hydrate. The presence of a large number of aluminum oxide particles increases the number of nucleation sites during crystallization. Additionally, these particles may participate in the process of gas transfer from the liquid-gas interface to the bulk liquid. The dependencies of the released energy and the conversion of the solution and carbon dioxide into the gas hydrate state were obtained.",
keywords = "gas hydrates, nanoparticles, Al2O3, SDS, greenhouse gases, CO2",
author = "Meleshkin, {Anton V.} and Marasanov, {N. V.} and Knyazkov, {V. A.} and Klimov, {B. A.}",
note = "Investigation of the process carbon dioxide hydrate formation in a colloidal solution containing AL2O3 nanoparticles and sodium dodecyl sulfate / A. V. Meleshkin, N. V. Marasanov, V. A. Knyazkov, B. A. Klimov // Interfacial Phenomena and Heat Transfer. – 2025. – Vol. 13, No. 4. – P. 41-50. – DOI 10.1615/interfacphenomheattransfer.2025058295. – EDN HHXHOF.",
year = "2025",
month = dec,
doi = "10.1615/interfacphenomheattransfer.2025058295",
language = "English",
volume = "13",
pages = "41--50",
journal = "Interfacial Phenomena and Heat Transfer",
issn = "2169-2785",
publisher = "Begell House Inc.",
number = "4",

}

RIS

TY - JOUR

T1 - Investigation of the process carbon dioxide hydrate formation in a colloidal solution containing AL2O3 nanoparticles and sodium dodecyl sulfate

AU - Meleshkin, Anton V.

AU - Marasanov, N. V.

AU - Knyazkov, V. A.

AU - Klimov, B. A.

N1 - Investigation of the process carbon dioxide hydrate formation in a colloidal solution containing AL2O3 nanoparticles and sodium dodecyl sulfate / A. V. Meleshkin, N. V. Marasanov, V. A. Knyazkov, B. A. Klimov // Interfacial Phenomena and Heat Transfer. – 2025. – Vol. 13, No. 4. – P. 41-50. – DOI 10.1615/interfacphenomheattransfer.2025058295. – EDN HHXHOF.

PY - 2025/12

Y1 - 2025/12

N2 - This paper presents the results of an experimental study on the formation of carbon dioxide hydrate in a colloidal aqueous solution of aluminum oxide (Al2O3) and the anionic surfactant sodium dodecyl sulfate (SDS), which acts simultaneously as a kinetic promoter of hydrate formation and a stabilizing agent for the colloidal solution. Oxide nanoparticles were selected for the study due to their high specific surface area, which potentially facilitates the nucleation of gas hydrate. The presence of a large number of aluminum oxide particles increases the number of nucleation sites during crystallization. Additionally, these particles may participate in the process of gas transfer from the liquid-gas interface to the bulk liquid. The dependencies of the released energy and the conversion of the solution and carbon dioxide into the gas hydrate state were obtained.

AB - This paper presents the results of an experimental study on the formation of carbon dioxide hydrate in a colloidal aqueous solution of aluminum oxide (Al2O3) and the anionic surfactant sodium dodecyl sulfate (SDS), which acts simultaneously as a kinetic promoter of hydrate formation and a stabilizing agent for the colloidal solution. Oxide nanoparticles were selected for the study due to their high specific surface area, which potentially facilitates the nucleation of gas hydrate. The presence of a large number of aluminum oxide particles increases the number of nucleation sites during crystallization. Additionally, these particles may participate in the process of gas transfer from the liquid-gas interface to the bulk liquid. The dependencies of the released energy and the conversion of the solution and carbon dioxide into the gas hydrate state were obtained.

KW - gas hydrates

KW - nanoparticles

KW - Al2O3

KW - SDS

KW - greenhouse gases

KW - CO2

UR - https://www.mendeley.com/catalogue/4a5408f9-5a5f-33eb-ab9d-3d94c56dae53/

UR - https://www.webofscience.com/wos/woscc/full-record/WOS:001620527400004

U2 - 10.1615/interfacphenomheattransfer.2025058295

DO - 10.1615/interfacphenomheattransfer.2025058295

M3 - Article

VL - 13

SP - 41

EP - 50

JO - Interfacial Phenomena and Heat Transfer

JF - Interfacial Phenomena and Heat Transfer

SN - 2169-2785

IS - 4

M1 - 3

ER -

ID: 80868617