Cargando…
Suitable Binary and Ternary Thermodynamic Conditions for Hydrate Mixtures of CH(4), CO(2), and C(3)H(8) for Gas Hydrate-Based Applications
[Image: see text] The selection of suitable hydrate formers and their respective gas composition for high hydrate formation, driving force is critical to achieve high water recovery and metal removal efficiency in the hydrate-based desalination process. This study presents a feasibility analysis on...
Autores principales: | , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical Society
2022
|
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8991894/ https://www.ncbi.nlm.nih.gov/pubmed/35415368 http://dx.doi.org/10.1021/acsomega.1c06186 |
_version_ | 1784683666185650176 |
---|---|
author | Nallakukkala, Sirisha Abulkhair, Hani Alsaiari, Abdulmohsen Ahmad, Iqbal Almatrafi, Eydhah Bamaga, Omar Lal, Bhajan Mohd Shariff, Azmi |
author_facet | Nallakukkala, Sirisha Abulkhair, Hani Alsaiari, Abdulmohsen Ahmad, Iqbal Almatrafi, Eydhah Bamaga, Omar Lal, Bhajan Mohd Shariff, Azmi |
author_sort | Nallakukkala, Sirisha |
collection | PubMed |
description | [Image: see text] The selection of suitable hydrate formers and their respective gas composition for high hydrate formation, driving force is critical to achieve high water recovery and metal removal efficiency in the hydrate-based desalination process. This study presents a feasibility analysis on the possible driving force and subcooling temperatures for the binary and ternary mixtures of methane, carbon dioxide, and propane for hydrates-based desalination process. The driving force and subcooling for the gas systems was evaluated by predicting their hydrate formation phase boundary conditions in 2 wt % NaCl systems at pressure ranges from 2.0–4.0 MPa and temperatures of 1–4 °C using modified Peng–Robinson equation of state in the PVTSim software package. The results suggest that the driving force of CH(4) + C(3)H(8) and CO(2) + C(3)H(8) binary systems are similar to their ternary systems. Thus, the use of binary systems is preferable and simpler than the ternary systems. For binary gas composition, CO(2) + C(3)H(8) (70:30) exhibited a higher subcooling temperature of 8.07 °C and driving force of 1.49 MPa in the presence of 2 wt % aqueous solution. In the case of the ternary system, CH(4)–C(3)H(8)–CO(2) gas composition of 10:80:10 provided a good subcooling temperature of 12.86 °C and driving force of 1.657 MPa for hydrate formation. The results favor CO(2)–C(3)H(8) as a preferred hydrate former for hydrate-based desalination. This is attributed to the formation of sII structure and it constitutes 136 water molecules which signifies a huge potential of producing more quantities of treated water. |
format | Online Article Text |
id | pubmed-8991894 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | American Chemical Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-89918942022-04-11 Suitable Binary and Ternary Thermodynamic Conditions for Hydrate Mixtures of CH(4), CO(2), and C(3)H(8) for Gas Hydrate-Based Applications Nallakukkala, Sirisha Abulkhair, Hani Alsaiari, Abdulmohsen Ahmad, Iqbal Almatrafi, Eydhah Bamaga, Omar Lal, Bhajan Mohd Shariff, Azmi ACS Omega [Image: see text] The selection of suitable hydrate formers and their respective gas composition for high hydrate formation, driving force is critical to achieve high water recovery and metal removal efficiency in the hydrate-based desalination process. This study presents a feasibility analysis on the possible driving force and subcooling temperatures for the binary and ternary mixtures of methane, carbon dioxide, and propane for hydrates-based desalination process. The driving force and subcooling for the gas systems was evaluated by predicting their hydrate formation phase boundary conditions in 2 wt % NaCl systems at pressure ranges from 2.0–4.0 MPa and temperatures of 1–4 °C using modified Peng–Robinson equation of state in the PVTSim software package. The results suggest that the driving force of CH(4) + C(3)H(8) and CO(2) + C(3)H(8) binary systems are similar to their ternary systems. Thus, the use of binary systems is preferable and simpler than the ternary systems. For binary gas composition, CO(2) + C(3)H(8) (70:30) exhibited a higher subcooling temperature of 8.07 °C and driving force of 1.49 MPa in the presence of 2 wt % aqueous solution. In the case of the ternary system, CH(4)–C(3)H(8)–CO(2) gas composition of 10:80:10 provided a good subcooling temperature of 12.86 °C and driving force of 1.657 MPa for hydrate formation. The results favor CO(2)–C(3)H(8) as a preferred hydrate former for hydrate-based desalination. This is attributed to the formation of sII structure and it constitutes 136 water molecules which signifies a huge potential of producing more quantities of treated water. American Chemical Society 2022-03-25 /pmc/articles/PMC8991894/ /pubmed/35415368 http://dx.doi.org/10.1021/acsomega.1c06186 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/). |
spellingShingle | Nallakukkala, Sirisha Abulkhair, Hani Alsaiari, Abdulmohsen Ahmad, Iqbal Almatrafi, Eydhah Bamaga, Omar Lal, Bhajan Mohd Shariff, Azmi Suitable Binary and Ternary Thermodynamic Conditions for Hydrate Mixtures of CH(4), CO(2), and C(3)H(8) for Gas Hydrate-Based Applications |
title | Suitable Binary and Ternary Thermodynamic Conditions
for Hydrate Mixtures of CH(4), CO(2), and C(3)H(8) for Gas
Hydrate-Based Applications |
title_full | Suitable Binary and Ternary Thermodynamic Conditions
for Hydrate Mixtures of CH(4), CO(2), and C(3)H(8) for Gas
Hydrate-Based Applications |
title_fullStr | Suitable Binary and Ternary Thermodynamic Conditions
for Hydrate Mixtures of CH(4), CO(2), and C(3)H(8) for Gas
Hydrate-Based Applications |
title_full_unstemmed | Suitable Binary and Ternary Thermodynamic Conditions
for Hydrate Mixtures of CH(4), CO(2), and C(3)H(8) for Gas
Hydrate-Based Applications |
title_short | Suitable Binary and Ternary Thermodynamic Conditions
for Hydrate Mixtures of CH(4), CO(2), and C(3)H(8) for Gas
Hydrate-Based Applications |
title_sort | suitable binary and ternary thermodynamic conditions
for hydrate mixtures of ch(4), co(2), and c(3)h(8) for gas
hydrate-based applications |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8991894/ https://www.ncbi.nlm.nih.gov/pubmed/35415368 http://dx.doi.org/10.1021/acsomega.1c06186 |
work_keys_str_mv | AT nallakukkalasirisha suitablebinaryandternarythermodynamicconditionsforhydratemixturesofch4co2andc3h8forgashydratebasedapplications AT abulkhairhani suitablebinaryandternarythermodynamicconditionsforhydratemixturesofch4co2andc3h8forgashydratebasedapplications AT alsaiariabdulmohsen suitablebinaryandternarythermodynamicconditionsforhydratemixturesofch4co2andc3h8forgashydratebasedapplications AT ahmadiqbal suitablebinaryandternarythermodynamicconditionsforhydratemixturesofch4co2andc3h8forgashydratebasedapplications AT almatrafieydhah suitablebinaryandternarythermodynamicconditionsforhydratemixturesofch4co2andc3h8forgashydratebasedapplications AT bamagaomar suitablebinaryandternarythermodynamicconditionsforhydratemixturesofch4co2andc3h8forgashydratebasedapplications AT lalbhajan suitablebinaryandternarythermodynamicconditionsforhydratemixturesofch4co2andc3h8forgashydratebasedapplications AT mohdshariffazmi suitablebinaryandternarythermodynamicconditionsforhydratemixturesofch4co2andc3h8forgashydratebasedapplications |