Integrated field test and modeling study of CO2 geological storage with enhanced water recovery in Eastern Junggar Basin of Xinjiang

Xinjiang, a primary energy export hub in China, faces substantial carbon emission pressure and severe water scarcity, making CO 2 geological storage combined with enhanced water recovery (CO 2 -EWR) a win–win strategy to foster regional development and bolster national energy security. This study leverages China’s inaugural pilot field injection test for CO 2 geological storage and deep saline water production in the Xishanyao Formation of the Eastern Junggar Basin, conducted collaboratively by the China Geological Survey and the Xinjiang Oilfield Company of China National Petroleum Corporation. Using comprehensive datasets from drilling, logging, well testing, and experimental analyses, a high-resolution 3D heterogeneous geological model of the target reservoir-caprock system was developed and validated through simulations that closely matched actual SF 6 tracer results, confirming the model’s accuracy in predicting CO 2 plume migration. Twenty-four operational scenarios were evaluated, including well spacing, production well orientation, number of production wells, injection amount, injection rate, and boundary conditions. Key findings show that reservoir heterogeneity critically governs CO 2 migration; water production initially rises and then declines with increased well spacing, peaking when production wells are aligned with the dominant CO 2 diffusion direction; increasing the number of production wells enhances deep saline water recovery efficiency, reaching 0.82 (mass ratio of CO 2 to water) under the same injection conditions; uniform-rate injection accelerates reservoir pressure release; and closed boundaries yield three times the production amount of open boundaries, independent of the number of production wells. This study validates the technical feasibility and safety of CO 2 -EWR, providing a foundational framework for large-scale implementation in Xinjiang and geologically similar regions to concurrently address carbon neutrality and water security challenges.

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Publication Details

Journal
Fuel
Published
2026-09-13
DOI
https://doi.org/10.1016/j.fuel.2026.141329
Primary Topic
CO2 Sequestration and Geologic Interactions
Type
article
Field-Weighted Citation Impact
0.00

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article

Integrated field test and modeling study of CO2 geological storage with enhanced water recovery in Eastern Junggar Basin of Xinjiang

Wei Cao, Xufeng Li, Jinxing Guo, Guodong Yang et al.
Fuel
CO2 Sequestration and Geologic Interactions
article

Integrated field test and modeling study of CO2 geological storage with enhanced water recovery in Eastern Junggar Basin of Xinjiang

Wei Cao, Xufeng Li, Jinxing Guo, Guodong Yang, Xingwang Luo, Jie Fu, Yujie Diao, Shuxun Sang, Dongguang Wen, Xin Ma
article en

Abstract

Xinjiang, a primary energy export hub in China, faces substantial carbon emission pressure and severe water scarcity, making CO 2 geological storage combined with enhanced water recovery (CO 2 -EWR) a win–win strategy to foster regional development and bolster national energy security. This study leverages China’s inaugural pilot field injection test for CO 2 geological storage and deep saline water production in the Xishanyao Formation of the Eastern Junggar Basin, conducted collaboratively by the China Geological Survey and the Xinjiang Oilfield Company of China National Petroleum Corporation. Using comprehensive datasets from drilling, logging, well testing, and experimental analyses, a high-resolution 3D heterogeneous geological model of the target reservoir-caprock system was developed and validated through simulations that closely matched actual SF 6 tracer results, confirming the model’s accuracy in predicting CO 2 plume migration. Twenty-four operational scenarios were evaluated, including well spacing, production well orientation, number of production wells, injection amount, injection rate, and boundary conditions. Key findings show that reservoir heterogeneity critically governs CO 2 migration; water production initially rises and then declines with increased well spacing, peaking when production wells are aligned with the dominant CO 2 diffusion direction; increasing the number of production wells enhances deep saline water recovery efficiency, reaching 0.82 (mass ratio of CO 2 to water) under the same injection conditions; uniform-rate injection accelerates reservoir pressure release; and closed boundaries yield three times the production amount of open boundaries, independent of the number of production wells. This study validates the technical feasibility and safety of CO 2 -EWR, providing a foundational framework for large-scale implementation in Xinjiang and geologically similar regions to concurrently address carbon neutrality and water security challenges.

FuelVol. 430
China University of Mining and Technology (CN), China Geological Survey (CN), Research Institute of Petroleum Exploration and Development (CN), Karamay Central Hospital of Xinjiang (CN), Wuhan University of Science and Technology (CN), China National Petroleum Corporation (China) (CN)
Hebei Provincial Department of Bureau of Science and Technology, China Geological Survey, National Major Science and Technology Projects of China
Openalex Percentile: Top 18%
CO2 Sequestration and Geologic Interactions
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