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Interfacial Adsorption Kinetics of Methane in Microporous Kerogen

[Image: see text] Rapid declines in unconventional shale production arise from the poorly understood interplay between gas transport and adsorption processes in microporous organic rock. Here, we use high-fidelity molecular dynamics (MD) simulations to resolve the time-varying adsorption of methane...

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Autores principales: Wang, Runxi, Datta, Saikat, Li, Jun, Al-Afnan, Saad F. K., Gibelli, Livio, Borg, Matthew K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10018763/
https://www.ncbi.nlm.nih.gov/pubmed/36857332
http://dx.doi.org/10.1021/acs.langmuir.2c03485
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author Wang, Runxi
Datta, Saikat
Li, Jun
Al-Afnan, Saad F. K.
Gibelli, Livio
Borg, Matthew K.
author_facet Wang, Runxi
Datta, Saikat
Li, Jun
Al-Afnan, Saad F. K.
Gibelli, Livio
Borg, Matthew K.
author_sort Wang, Runxi
collection PubMed
description [Image: see text] Rapid declines in unconventional shale production arise from the poorly understood interplay between gas transport and adsorption processes in microporous organic rock. Here, we use high-fidelity molecular dynamics (MD) simulations to resolve the time-varying adsorption of methane gas in realistic organic rock samples, known as kerogen. The kerogen samples derive from various geological shale fields with porosities ranging between 20% and 50%. We propose a kinetics sorption model based on a generalized solution of diffusive transport inside a nanopore to describe the adsorption kinetics in kerogen, which gives excellent fits with all our MD results, and we demonstrate it scales with the square of the length of kerogen. The MD adsorption time constants for all samples are compared with a simplified theoretical model, which we derive from the Langmuir isotherm for adsorption capacitance and the free-volume theory for steady, highly confined bulk transport. While the agreement with the MD results is qualitatively very good, it reveals that, in the limit of low porosity, the diffusive transport term dominates the characteristic time scale of adsorption, while the adsorption capacitance becomes important for higher pressures. This work provides the first data set for adsorption kinetics of methane in kerogen, a validated model to accurately describe this process, and a qualitative model that links adsorption capacitance and transport with the adsorption kinetics. Furthermore, this work paves the way to upscale interfacial adsorption processes to the next scale of gas transport simulations in mesopores and macropores of shale reservoirs.
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spelling pubmed-100187632023-03-17 Interfacial Adsorption Kinetics of Methane in Microporous Kerogen Wang, Runxi Datta, Saikat Li, Jun Al-Afnan, Saad F. K. Gibelli, Livio Borg, Matthew K. Langmuir [Image: see text] Rapid declines in unconventional shale production arise from the poorly understood interplay between gas transport and adsorption processes in microporous organic rock. Here, we use high-fidelity molecular dynamics (MD) simulations to resolve the time-varying adsorption of methane gas in realistic organic rock samples, known as kerogen. The kerogen samples derive from various geological shale fields with porosities ranging between 20% and 50%. We propose a kinetics sorption model based on a generalized solution of diffusive transport inside a nanopore to describe the adsorption kinetics in kerogen, which gives excellent fits with all our MD results, and we demonstrate it scales with the square of the length of kerogen. The MD adsorption time constants for all samples are compared with a simplified theoretical model, which we derive from the Langmuir isotherm for adsorption capacitance and the free-volume theory for steady, highly confined bulk transport. While the agreement with the MD results is qualitatively very good, it reveals that, in the limit of low porosity, the diffusive transport term dominates the characteristic time scale of adsorption, while the adsorption capacitance becomes important for higher pressures. This work provides the first data set for adsorption kinetics of methane in kerogen, a validated model to accurately describe this process, and a qualitative model that links adsorption capacitance and transport with the adsorption kinetics. Furthermore, this work paves the way to upscale interfacial adsorption processes to the next scale of gas transport simulations in mesopores and macropores of shale reservoirs. American Chemical Society 2023-03-01 /pmc/articles/PMC10018763/ /pubmed/36857332 http://dx.doi.org/10.1021/acs.langmuir.2c03485 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Wang, Runxi
Datta, Saikat
Li, Jun
Al-Afnan, Saad F. K.
Gibelli, Livio
Borg, Matthew K.
Interfacial Adsorption Kinetics of Methane in Microporous Kerogen
title Interfacial Adsorption Kinetics of Methane in Microporous Kerogen
title_full Interfacial Adsorption Kinetics of Methane in Microporous Kerogen
title_fullStr Interfacial Adsorption Kinetics of Methane in Microporous Kerogen
title_full_unstemmed Interfacial Adsorption Kinetics of Methane in Microporous Kerogen
title_short Interfacial Adsorption Kinetics of Methane in Microporous Kerogen
title_sort interfacial adsorption kinetics of methane in microporous kerogen
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10018763/
https://www.ncbi.nlm.nih.gov/pubmed/36857332
http://dx.doi.org/10.1021/acs.langmuir.2c03485
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