Impact of pore confinement and adsorption on gas condensate critical properties confined in Marcellus Shale

Gas condensate reservoirs present significant challenges in reservoir engineering due to their complex phase behavior, which is influenced by continuous compositional changes. In particular, nanopore confinement and adsorption significantly alter the thermodynamic properties of hydrocarbons, affecti...

Full description

Saved in:
Bibliographic Details
Main Authors: Dennis Chinamo, Xiaoqiang Bian
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2025-06-01
Series:Journal of Natural Gas Geoscience
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2468256X25000252
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1850090246693191680
author Dennis Chinamo
Xiaoqiang Bian
author_facet Dennis Chinamo
Xiaoqiang Bian
author_sort Dennis Chinamo
collection DOAJ
description Gas condensate reservoirs present significant challenges in reservoir engineering due to their complex phase behavior, which is influenced by continuous compositional changes. In particular, nanopore confinement and adsorption significantly alter the thermodynamic properties of hydrocarbons, affecting phase transitions such as dew point pressure and condensate accumulation. This study investigates these effects within the Marcellus Shale formation by developing a compositional fluid model that integrates critical property shifts induced by pore confinement and adsorption. The model is compared with experimental measurements to ensure accuracy. To evaluate the impact of confinement, six fluid models were constructed using the Peng–Robinson equation of state, representing different pore sizes (1 nm, 2 nm, 5 nm, 10 nm, and 50 nm) alongside an unconfined reference case. The results demonstrate that smaller nanopores lead to significant shifts in critical pressure and temperature, ultimately delaying the onset of liquid condensation. Additionally, adsorption effects enhance reservoir pressure maintenance by storing hydrocarbons in the adsorbed phase, which desorbs as pressure declines, supplementing gas production. By incorporating confinement-induced phase behavior modifications, this research provides key insights into optimizing gas condensate production. The findings highlight the necessity of considering nanoscale confinement and adsorption effects in reservoir simulations to improve forecasting accuracy and develop more effective reservoir management strategies.
format Article
id doaj-art-d2396f372f514cd893741f2492d5905e
institution DOAJ
issn 2468-256X
language English
publishDate 2025-06-01
publisher KeAi Communications Co., Ltd.
record_format Article
series Journal of Natural Gas Geoscience
spelling doaj-art-d2396f372f514cd893741f2492d5905e2025-08-20T02:42:36ZengKeAi Communications Co., Ltd.Journal of Natural Gas Geoscience2468-256X2025-06-0110319921810.1016/j.jnggs.2025.04.001Impact of pore confinement and adsorption on gas condensate critical properties confined in Marcellus ShaleDennis Chinamo0Xiaoqiang Bian1Petroleum Engineering School, Southwest Petroleum University, Chengdu 610500, ChinaCorresponding author.; Petroleum Engineering School, Southwest Petroleum University, Chengdu 610500, ChinaGas condensate reservoirs present significant challenges in reservoir engineering due to their complex phase behavior, which is influenced by continuous compositional changes. In particular, nanopore confinement and adsorption significantly alter the thermodynamic properties of hydrocarbons, affecting phase transitions such as dew point pressure and condensate accumulation. This study investigates these effects within the Marcellus Shale formation by developing a compositional fluid model that integrates critical property shifts induced by pore confinement and adsorption. The model is compared with experimental measurements to ensure accuracy. To evaluate the impact of confinement, six fluid models were constructed using the Peng–Robinson equation of state, representing different pore sizes (1 nm, 2 nm, 5 nm, 10 nm, and 50 nm) alongside an unconfined reference case. The results demonstrate that smaller nanopores lead to significant shifts in critical pressure and temperature, ultimately delaying the onset of liquid condensation. Additionally, adsorption effects enhance reservoir pressure maintenance by storing hydrocarbons in the adsorbed phase, which desorbs as pressure declines, supplementing gas production. By incorporating confinement-induced phase behavior modifications, this research provides key insights into optimizing gas condensate production. The findings highlight the necessity of considering nanoscale confinement and adsorption effects in reservoir simulations to improve forecasting accuracy and develop more effective reservoir management strategies.http://www.sciencedirect.com/science/article/pii/S2468256X25000252Marcellus ShalePore confinementAdsorptionGas condensate reservoirDew point pressure
spellingShingle Dennis Chinamo
Xiaoqiang Bian
Impact of pore confinement and adsorption on gas condensate critical properties confined in Marcellus Shale
Journal of Natural Gas Geoscience
Marcellus Shale
Pore confinement
Adsorption
Gas condensate reservoir
Dew point pressure
title Impact of pore confinement and adsorption on gas condensate critical properties confined in Marcellus Shale
title_full Impact of pore confinement and adsorption on gas condensate critical properties confined in Marcellus Shale
title_fullStr Impact of pore confinement and adsorption on gas condensate critical properties confined in Marcellus Shale
title_full_unstemmed Impact of pore confinement and adsorption on gas condensate critical properties confined in Marcellus Shale
title_short Impact of pore confinement and adsorption on gas condensate critical properties confined in Marcellus Shale
title_sort impact of pore confinement and adsorption on gas condensate critical properties confined in marcellus shale
topic Marcellus Shale
Pore confinement
Adsorption
Gas condensate reservoir
Dew point pressure
url http://www.sciencedirect.com/science/article/pii/S2468256X25000252
work_keys_str_mv AT dennischinamo impactofporeconfinementandadsorptionongascondensatecriticalpropertiesconfinedinmarcellusshale
AT xiaoqiangbian impactofporeconfinementandadsorptionongascondensatecriticalpropertiesconfinedinmarcellusshale