Cargando…

Direct Measurement of the Four-Phase Equilibrium Coexistence Vapor–Aqueous Solution–Ice–Gas Hydrate in Water–Carbon Dioxide System

Precise data on the non-variant equilibrium of the four phases (vapor–aqueous solution–ice–gas hydrate) in P–T coordinates are highly desired for developing accurate thermodynamic models and can be used as reference points (similar to the triple point of water). Using the two-component hydrate-formi...

Descripción completa

Detalles Bibliográficos
Autores principales: Semenov, Anton, Mendgaziev, Rais, Stoporev, Andrey, Istomin, Vladimir, Tulegenov, Timur, Yarakhmedov, Murtazali, Novikov, Andrei, Vinokurov, Vladimir
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10253777/
https://www.ncbi.nlm.nih.gov/pubmed/37298281
http://dx.doi.org/10.3390/ijms24119321
_version_ 1785056487163297792
author Semenov, Anton
Mendgaziev, Rais
Stoporev, Andrey
Istomin, Vladimir
Tulegenov, Timur
Yarakhmedov, Murtazali
Novikov, Andrei
Vinokurov, Vladimir
author_facet Semenov, Anton
Mendgaziev, Rais
Stoporev, Andrey
Istomin, Vladimir
Tulegenov, Timur
Yarakhmedov, Murtazali
Novikov, Andrei
Vinokurov, Vladimir
author_sort Semenov, Anton
collection PubMed
description Precise data on the non-variant equilibrium of the four phases (vapor–aqueous solution–ice–gas hydrate) in P–T coordinates are highly desired for developing accurate thermodynamic models and can be used as reference points (similar to the triple point of water). Using the two-component hydrate-forming system CO(2)–H(2)O, we have proposed and validated a new express procedure for determining the temperature and pressure of the lower quadruple point Q(1). The essence of the method is the direct measurement of these parameters after the successive formation of the gas hydrate and ice phases in the initial two-phase gas–water solution system under intense agitation of the fluids. After relaxation, the system occurs in the same equilibrium state (T = 271.60 K, P = 1.044 MPa), regardless of the initial parameters and the order of crystallization of the CO(2) hydrate and ice phases. Considering the combined standard uncertainties (±0.023 K, ±0.021 MPa), the determined P and T values agree with the results of other authors obtained by a more sophisticated indirect method. Validating the developed approach for systems with other hydrate-forming gases is of great interest.
format Online
Article
Text
id pubmed-10253777
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-102537772023-06-10 Direct Measurement of the Four-Phase Equilibrium Coexistence Vapor–Aqueous Solution–Ice–Gas Hydrate in Water–Carbon Dioxide System Semenov, Anton Mendgaziev, Rais Stoporev, Andrey Istomin, Vladimir Tulegenov, Timur Yarakhmedov, Murtazali Novikov, Andrei Vinokurov, Vladimir Int J Mol Sci Article Precise data on the non-variant equilibrium of the four phases (vapor–aqueous solution–ice–gas hydrate) in P–T coordinates are highly desired for developing accurate thermodynamic models and can be used as reference points (similar to the triple point of water). Using the two-component hydrate-forming system CO(2)–H(2)O, we have proposed and validated a new express procedure for determining the temperature and pressure of the lower quadruple point Q(1). The essence of the method is the direct measurement of these parameters after the successive formation of the gas hydrate and ice phases in the initial two-phase gas–water solution system under intense agitation of the fluids. After relaxation, the system occurs in the same equilibrium state (T = 271.60 K, P = 1.044 MPa), regardless of the initial parameters and the order of crystallization of the CO(2) hydrate and ice phases. Considering the combined standard uncertainties (±0.023 K, ±0.021 MPa), the determined P and T values agree with the results of other authors obtained by a more sophisticated indirect method. Validating the developed approach for systems with other hydrate-forming gases is of great interest. MDPI 2023-05-26 /pmc/articles/PMC10253777/ /pubmed/37298281 http://dx.doi.org/10.3390/ijms24119321 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Semenov, Anton
Mendgaziev, Rais
Stoporev, Andrey
Istomin, Vladimir
Tulegenov, Timur
Yarakhmedov, Murtazali
Novikov, Andrei
Vinokurov, Vladimir
Direct Measurement of the Four-Phase Equilibrium Coexistence Vapor–Aqueous Solution–Ice–Gas Hydrate in Water–Carbon Dioxide System
title Direct Measurement of the Four-Phase Equilibrium Coexistence Vapor–Aqueous Solution–Ice–Gas Hydrate in Water–Carbon Dioxide System
title_full Direct Measurement of the Four-Phase Equilibrium Coexistence Vapor–Aqueous Solution–Ice–Gas Hydrate in Water–Carbon Dioxide System
title_fullStr Direct Measurement of the Four-Phase Equilibrium Coexistence Vapor–Aqueous Solution–Ice–Gas Hydrate in Water–Carbon Dioxide System
title_full_unstemmed Direct Measurement of the Four-Phase Equilibrium Coexistence Vapor–Aqueous Solution–Ice–Gas Hydrate in Water–Carbon Dioxide System
title_short Direct Measurement of the Four-Phase Equilibrium Coexistence Vapor–Aqueous Solution–Ice–Gas Hydrate in Water–Carbon Dioxide System
title_sort direct measurement of the four-phase equilibrium coexistence vapor–aqueous solution–ice–gas hydrate in water–carbon dioxide system
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10253777/
https://www.ncbi.nlm.nih.gov/pubmed/37298281
http://dx.doi.org/10.3390/ijms24119321
work_keys_str_mv AT semenovanton directmeasurementofthefourphaseequilibriumcoexistencevaporaqueoussolutionicegashydrateinwatercarbondioxidesystem
AT mendgazievrais directmeasurementofthefourphaseequilibriumcoexistencevaporaqueoussolutionicegashydrateinwatercarbondioxidesystem
AT stoporevandrey directmeasurementofthefourphaseequilibriumcoexistencevaporaqueoussolutionicegashydrateinwatercarbondioxidesystem
AT istominvladimir directmeasurementofthefourphaseequilibriumcoexistencevaporaqueoussolutionicegashydrateinwatercarbondioxidesystem
AT tulegenovtimur directmeasurementofthefourphaseequilibriumcoexistencevaporaqueoussolutionicegashydrateinwatercarbondioxidesystem
AT yarakhmedovmurtazali directmeasurementofthefourphaseequilibriumcoexistencevaporaqueoussolutionicegashydrateinwatercarbondioxidesystem
AT novikovandrei directmeasurementofthefourphaseequilibriumcoexistencevaporaqueoussolutionicegashydrateinwatercarbondioxidesystem
AT vinokurovvladimir directmeasurementofthefourphaseequilibriumcoexistencevaporaqueoussolutionicegashydrateinwatercarbondioxidesystem