Three-Phase Equilibria of CO2 Hydrate from Computer Simulation in the Presence of NaCl

Borrero López, Antonio ORCID: https://orcid.org/0000-0001-9483-3713, Diaz Acosta, Adrian, Blazquez Fernández, Samuel ORCID: https://orcid.org/0000-0002-6218-3880, Zeron, I.M. ORCID: https://orcid.org/0000-0003-0041-8856, Algaba Fernández, Jesus ORCID: https://orcid.org/0000-0001-8371-5287, Martin Conde, Maria ORCID: https://orcid.org/0000-0003-2822-9141 and Jiménez Blas, Felipe ORCID: https://orcid.org/0000-0001-9030-040X (2025). Three-Phase Equilibria of CO2 Hydrate from Computer Simulation in the Presence of NaCl. "Energy Fuels", v. 39 ; pp. 5522-5533. https://doi.org/10.1021/acs.energyfuels.5c00174.

Descripción

Título: Three-Phase Equilibria of CO2 Hydrate from Computer Simulation in the Presence of NaCl
Autor/es:
Tipo de Documento: Artículo
Título de Revista/Publicación: Energy Fuels
Fecha: 26 Febrero 2025
Volumen: 39
Materias:
ODS:
Escuela: E.T.S.I. Industriales (UPM)
Departamento: Ingeniería Química Industrial y del Medio Ambiente
Licencias Creative Commons: Reconocimiento

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Resumen

In this work, the cryoscopic decrease effect, as a function of the NaCl concentration, on the carbon dioxide (CO2) hydrate dissociation line conditions was determined through molecular dynamic simulations. In particular, we have determined the three-phase (solid hydrate−aqueous phase−liquid CO2) coexistence temperature at 100, 400, and 1000 bar at several initial NaCl concentrations in the aqueous phase, from 0.0 to 3.0 m, using the direct coexistence technique. We used the well-known TIP4P/2005 and TraPPe force fields for water and CO2 molecules, respectively. Also, the water−salt interactions were described using the Madrid-2019 force field, which has been specifically developed for various salts in combination with the TIP4P/2005 water model. According to the results obtained in this work, the dissociation temperature of the CO2 hydrate decreases when the NaCl concentration in the initial aqueous phase increases. The results obtained are in excellent agreement with the experimental data reported in the literature. We have also observed how the dynamics of melting and growth of the CO2 hydrate becomes slower when the NaCl concentration is increased. As a consequence, longer simulation times (on the order of dozens of microseconds) are necessary when the NaCl concentration increases. Finally, we have also analyzed finite-size effects on the threephase coexistence temperature of these systems by performing simulations at 400 bar with two different system sizes at two different NaCl concentrations (0.0 and 3.0 m). Non-negligible deviations have been found between the results obtained from the two system sizes.

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Más información

ID de Registro: 92513
Identificador DC: https://oa.upm.es/92513/
Identificador OAI: oai:oa.upm.es:92513
URL Portal Científico: https://portalcientifico.upm.es/es/ipublic/item/10335754
Identificador DOI: 10.1021/acs.energyfuels.5c00174
URL Oficial: https://pubs.acs.org/doi/10.1021/acs.energyfuels.5...
Depositado por: María Martin Conde
Depositado el: 27 Dic 2025 18:27
Ultima Modificación: 27 Dic 2025 18:27