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Article

Control of Lateral Gas Leakage for Underground Gas Storage in Large-Scale, Low-Permeability Lithologic Reservoirs

1
Research Institute of Petroleum Exploration & Development, China National Petroleum Corporation (CNPC), Beijing 100083, China
2
Key Laboratory of Oil & Gas Underground Storage Engineering, China National Petroleum Corporation (CNPC), Langfang 065007, China
*
Author to whom correspondence should be addressed.
Processes 2025, 13(10), 3201; https://doi.org/10.3390/pr13103201
Submission received: 8 September 2025 / Revised: 21 September 2025 / Accepted: 29 September 2025 / Published: 9 October 2025
(This article belongs to the Section Energy Systems)

Abstract

Despite converting large, laterally unbounded, highly connected low-permeability lithologic gas reservoirs—without faults or fixed lithological boundaries—into underground gas storage, the evolution of transition zone pressures and the mechanisms of gas escape under multiple injection–production cycles remain poorly understood. This knowledge gap critically hinders the safe and efficient operation of such facilities. A core–transition zone injection–withdrawal model for the S4 underground gas storage was developed using the numerical well test module of Saphir software v4.20. The model quantifies transition zone pressure dynamics over ten injection–withdrawal cycles and elucidates how the interplay of formation permeability and operating conditions governs gas leakage. During multi-cycle injection–withdrawal operations, formation pressure in the transition zone steadily accumulates under the combined influence of core zone gas crossflow and local gas advection equilibrium within the non-utilizable region. Assessed by the transition zone boundary formation pressure, suppressing gas leakage depends primarily on total injection and withdrawal volume, followed by the injection schedule and, lastly, the location of the boundary injection well. To achieve cost-effective containment, we therefore recommend prioritizing a shorter injection duration, moderately reducing total injection and withdrawal volume, and increasing the distance between the boundary injection wells and the transition zone. Under the geological conditions of the S4 UGS, by sequentially adjusting the injection duration, reducing the total injected–withdrawal gas volume to 6000 × 104 m3, and increasing the distance between boundary injection wells and the transition zone to 900 m, the transition zone boundary pressure rise over ten cycles was controlled to below 1 MPa, thereby effectively preventing gas leakage.
Keywords: underground gas storage; gas leakage control; large-scale lithologic gas reservoir; multi-cycle; transition zone; formation pressure underground gas storage; gas leakage control; large-scale lithologic gas reservoir; multi-cycle; transition zone; formation pressure

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MDPI and ACS Style

Ou, L.; Ding, G.; Xu, S.; Su, Y.; Xu, H.; Lai, X.; Wu, Y.; Zhang, B.; Zhao, W. Control of Lateral Gas Leakage for Underground Gas Storage in Large-Scale, Low-Permeability Lithologic Reservoirs. Processes 2025, 13, 3201. https://doi.org/10.3390/pr13103201

AMA Style

Ou L, Ding G, Xu S, Su Y, Xu H, Lai X, Wu Y, Zhang B, Zhao W. Control of Lateral Gas Leakage for Underground Gas Storage in Large-Scale, Low-Permeability Lithologic Reservoirs. Processes. 2025; 13(10):3201. https://doi.org/10.3390/pr13103201

Chicago/Turabian Style

Ou, Lanhantian, Guosheng Ding, Shujuan Xu, Yunhe Su, Hongcheng Xu, Xin Lai, Yanqi Wu, Bingtong Zhang, and Wenjing Zhao. 2025. "Control of Lateral Gas Leakage for Underground Gas Storage in Large-Scale, Low-Permeability Lithologic Reservoirs" Processes 13, no. 10: 3201. https://doi.org/10.3390/pr13103201

APA Style

Ou, L., Ding, G., Xu, S., Su, Y., Xu, H., Lai, X., Wu, Y., Zhang, B., & Zhao, W. (2025). Control of Lateral Gas Leakage for Underground Gas Storage in Large-Scale, Low-Permeability Lithologic Reservoirs. Processes, 13(10), 3201. https://doi.org/10.3390/pr13103201

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