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Original Paper | Open Access

Competitive fracture propagation in Da’an deep shale: A study based on multi-adjacent well collaborative distributed optical fiber monitoring

Jin-Yang XieaBing Houa,b,c( )Yong-Chun WudLe HedJu-Hui ZhudWei GongdCai-Bao Wange
National Key Laboratory of Petroleum Resources and Engineering, China University of Petroleum, Beijing, 102249, China
Xinjiang Key Laboratory of Intelligent Exploration and Development of Oil and Gas, China University of Petroleum-Beijing at Karamay, Karamay, 834000, Xinjiang, China
College of Petroleum Engineering, China University of Petroleum-Beijing at Karamay, Karamay, 834000, Xinjiang, China
Downhole Services Company, CNPC Chuanqing Drilling Engineering Company Limited, Chengdu, 610051, Sichuan, China
Sinopec Shanghai Offshore Oil & Gas Company, Pudong, Shanghai, 200120, China

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

Edited by Jia-Jia Fei

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Abstract

The competitive propagation of hydraulic fractures during multi-cluster stimulations poses a critical challenge to achieving effective reservoir stimulation in deep shale formations. To address this, our study integrates true triaxial physical simulations with an innovative multi-adjacent well collaborative distributed fiber-optic monitoring strategy. Applied to the deep Longmaxi shale, this approach facilitates full three-dimensional, dynamic tracking of strain evolution, thereby elucidating the mechanisms that govern fracture competition under in-situ stress conditions. The results delineate two distinct fracture architectures dictated by the prevailing stress regime. When the maximum horizontal stress dominates, a cross-shaped network of orthogonal transverse and bedding fractures develops. Conversely, under vertical stress dominance, the combined effects of stress shadowing and geological discontinuities promote the formation of step-like main fractures alongside backward-extending inclined branches. The synchronized interpretation of distributed strain-rate signals—characterized by distinctive patterns such as asymmetric heart-shaped and V-shaped fingerprints—and pump pressure curves elucidates the dynamic process of cluster interaction. This transforms fiber-optic sensing from a monitoring tool into a quantitative diagnostic platform for competitive fracturing. The findings establish a theoretical foundation for designing three-dimensional monitoring frameworks, optimizing cluster spacing, and enabling adaptive pumping strategies, directly supporting the efficient development of deep shale gas resources.

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Petroleum Science
Pages 5593-5609

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Cite this article:
Xie J-Y, Hou B, Wu Y-C, et al. Competitive fracture propagation in Da’an deep shale: A study based on multi-adjacent well collaborative distributed optical fiber monitoring. Petroleum Science, 2026, 23(9): 5593-5609. https://doi.org/10.1016/j.petsci.2026.04.053

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Received: 09 May 2025
Revised: 23 December 2025
Accepted: 29 April 2026
Published: 06 May 2026
© 2026 The Authors.

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