A fully coupled geomechanical-fluid flow model for shale gas considering desorption hysteresis

Shale gas desorption occurs during development, and it is usually treated as the reverse process of adsorption. However, a large number of experiments have confirmed that there is hysteresis between desorption and adsorption, making it inaccurate to use adsorption effects to study the seepage laws of shale gas. Therefore, desorption characteristics are clarified through molecular simulation, and then a shale gas desorption model is established under different temperatures and pressures. Considering the influence of desorption on solid deformation and gas flow, a coupled geomechanical-fluid flow model is proposed. The multiscale flow mechanisms of shale gas are simulated by finite element method, and the effects of desorption on gas flow and production are evaluated. Combined with statistical methods, a weight evaluation system is proposed to analyze the main controlling factors comprehensively. The results show that desorption capacity is positively correlated with pressure and negatively correlated with temperature, while the degree of desorption hysteresis weakens as the temperature rises. Desorption hysteresis delays the desorption of adsorbed gas, and the actual utilization degree of adsorbed gas decreases during production, thus ignoring desorption effect overestimates shale gas well production. In addition, shale gas production is negatively correlated with stress sensitivity of hydraulic fractures and interlaced distance of hydraulic fractures. It is identified that the main controlling factors for EUR are fracturing parameters, followed by geological factors.

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Publication Details

Journal
International Communications in Heat and Mass Transfer
Published
2026-09-12
DOI
https://doi.org/10.1016/j.icheatmasstransfer.2026.112533
Primary Topic
Hydraulic Fracturing and Reservoir Analysis
Type
article
Field-Weighted Citation Impact
0.00

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article

A fully coupled geomechanical-fluid flow model for shale gas considering desorption hysteresis

Zhehan Lai, Wei Xiong, Haiyu Xiang, Jingang Fu et al.
International Communications in Heat and Mass Transfer
Hydraulic Fracturing and Reservoir Analysis
article

A fully coupled geomechanical-fluid flow model for shale gas considering desorption hysteresis

Zhehan Lai, Wei Xiong, Haiyu Xiang, Jingang Fu, Youjie Xu, Wenrui Li, Zhilin Qi, Huangben Zeng, Lu Zhang, Hongbin Liang
article en

Abstract

Shale gas desorption occurs during development, and it is usually treated as the reverse process of adsorption. However, a large number of experiments have confirmed that there is hysteresis between desorption and adsorption, making it inaccurate to use adsorption effects to study the seepage laws of shale gas. Therefore, desorption characteristics are clarified through molecular simulation, and then a shale gas desorption model is established under different temperatures and pressures. Considering the influence of desorption on solid deformation and gas flow, a coupled geomechanical-fluid flow model is proposed. The multiscale flow mechanisms of shale gas are simulated by finite element method, and the effects of desorption on gas flow and production are evaluated. Combined with statistical methods, a weight evaluation system is proposed to analyze the main controlling factors comprehensively. The results show that desorption capacity is positively correlated with pressure and negatively correlated with temperature, while the degree of desorption hysteresis weakens as the temperature rises. Desorption hysteresis delays the desorption of adsorbed gas, and the actual utilization degree of adsorbed gas decreases during production, thus ignoring desorption effect overestimates shale gas well production. In addition, shale gas production is negatively correlated with stress sensitivity of hydraulic fractures and interlaced distance of hydraulic fractures. It is identified that the main controlling factors for EUR are fracturing parameters, followed by geological factors.

International Communications in Heat and Mass TransferVol. 180
Chongqing University (CN), Southwest Petroleum University (CN), Chongqing University of Science and Technology (CN), State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation (CN)
National Natural Science Foundation of China, Natural Science Foundation of Chongqing, China Petrochemical Corporation, Chongqing University of Science and Technology
Openalex Percentile: Top 20%
Hydraulic Fracturing and Reservoir Analysis
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