Effect of fluid properties on oil shale in-situ conversion performance with fracturing

Author:

Wang Bin1,Wang Rui2,Wang Yiwei3,Su Jianzheng3,Zhang Xu2,Wang Haizhu2,Chen Kang2

Affiliation:

1. State Key Laboratory of Shale Oil and Gas Enrichment Mechanisms and Effective Development, China University of Petroleum - Beijing Branch, Beijing, China + State Center for Research and Development of Oil Shale Exploitation, Beijing, China

2. State Key Laboratory of Petroleum Resources and Engineering, China University of Petroleum, Beijing, China

3. State Center for Research and Development of Oil Shale Exploitation, Beijing, China

Abstract

This study studies the effect of flow and thermal transfer properties of fluids with varying densities, viscosities, and thermal conductivities on the performance of oil shale in-situ conversion process based on multi-physics coupling simulation. Results indicate that thermal convection primarily governs the heat transfer pro?cess in oil shale. Consequently, to enhance the pyrolytic effects, fluids possessing high density, low viscosity and superior thermal conductivity are recommended. This research thus provides a foundational understanding for the selection of fluid properties in the in-situ extraction of oil shale.

Publisher

National Library of Serbia

Reference9 articles.

1. Liu, R., et al., Study on Oil Shale Enrichment and Geological Events in China, Acta Sedimentologica, 39 (2021), 1, pp. 10-28

2. Gu, J., et al., Pyrolysis Behavior and Pyrolysate Characteristics of Huadian Oil Shale Kerogen Catalyzed by Nickel-Modified Montmorillonite, Advances in Geo-Energy Research, 11 (2024), 3, pp. 168-180

3. Sun, Y. H., et al., Current Situation and Development Trend of in-Situ Transformation and Drilling and Production Technology of Oil Shale, Drilling Engineering, 48 (2021), 1, pp. 56-67

4. Neuman, S. P., Theoretical Derivation of Darcy’s Law, Acta Mechanica, 25 (1977), 3-4, pp. 153-170

5. Xu, W., et al., An Integrated Model for Fracture Propagation and Production Performance of Thermal Enhanced Shale Gas Recovery, Energy, 263 (2023), 3, ID125682

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