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Original Paper | Open Access

Numerical investigation of natural gas-enhanced autothermic pyrolysis for optimizing in-situ conversion in oil shale

Chao-Fan Zhua,b,c,d,eTan-En Jianga,b,c,d,eShan-Shan YaofJia-Zong Lia,b,c,d,eRui Jiaa,b,c,d,eWei Guoa,b,c,d,e ( )
College of Construction Engineering, Jilin University, Changchun, 130026, Jilin, China
State Key Laboratory of Deep Earth Exploration and Imaging, Changchun, 130026, Jilin, China
National-Local Joint Engineering Laboratory of In-situ Conversion, Drilling and Exploitation Technology for Oil Shale, Changchun, 130021, Jilin, China
Provincial and Ministerial Co-construction of Collaborative Innovation Center for Shale Oil & Gas Exploration and Development, Jilin University, Changchun, 130021, Jilin, China
Key Lab of Ministry of Natural Resources for Drilling and Exploitation Technology in Complex Conditions, Jilin University, Changchun, 130021, Jilin, China
Department of Civil and Environmental Engineering and School of Petroleum and Mining Engineering, Edmonton, Alberta, T6G 1H9, Canada

Peer review under the responsibility of China University of Petroleum (Beijing).

Edited by Jia-Jia Fei

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Abstract

The autothermic pyrolysis in-situ conversion process for oil shale (ATS) offers the advantages of low development costs and the capability to exploit deep oil shale resources. However, oil shale formations with low oil content encounter the challenge of insufficient heat-generating donors in the thermal cracking residue, making it difficult to sustain the autogenous thermal reaction through oxidative exotherm. In this study, we propose a natural gas-assisted autogenous thermal in-situ conversion technology (H-ATS) designed to develop low oil content shale, and we analyze its mechanism through numerical simulation across oil shales with varying oil contents. The results show that introducing 2.0% natural gas into the injected air successfully triggers the autogenous thermal reaction in low-oil-content shale, achieving an energy efficiency of 3.70. For medium oil content shale, a 2.0% natural gas addition, and for high oil content shale, a 4.0% addition, significantly reduces the gas compression energy required, enhancing energy efficiency to 8.11 and 13.04, respectively—representing improvements of 29.47% and 19.19% over the ATS process alone. This study evaluates the applicability of H-ATS technology across various oil shale formations, providing a new approach for the commercialization of in-situ conversion technology.

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Petroleum Science
Pages 762-776

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Cite this article:
Zhu C-F, Jiang T-E, Yao S-S, et al. Numerical investigation of natural gas-enhanced autothermic pyrolysis for optimizing in-situ conversion in oil shale. Petroleum Science, 2026, 23(2): 762-776. https://doi.org/10.1016/j.petsci.2025.11.035

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Received: 10 April 2025
Revised: 18 November 2025
Accepted: 18 November 2025
Published: 22 November 2025
© 2026

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).