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Original Paper | Open Access

A continuous and long-term in-situ stress measuring method based on fiber optic. Part Ⅰ: Theory of inverse differential strain analysis

Kun-Peng Zhanga,b,cMian Chena,b( )Chang-Jun Zhaoa,bSu Wanga,bYong-Dong Fana,b
State Key Laboratory of Petroleum Resources and Prospecting, China University of Petroleum, Beijing, 102249, China
MOE Key Laboratory of Petroleum Engineering in China University of Petroleum, Beijing, 102249, China
Beijing International Center for Gas Hydrate, School of Earth and Space Sciences, Peking University, Beijing, 100871, China

Edited by Jia-Jia Fei

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Abstract

A method for in-situ stress measurement via fiber optics was proposed. The method utilizes the relationship between rock mass elastic parameters and in-situ stress. The approach offers the advantage of long-term stress measurements with high spatial resolution and frequency, significantly enhancing the ability to measure in-situ stress. The sensing casing, spirally wrapped with fiber optic, is cemented into the formation to establish a formation sensing nerve. Injecting fluid into the casing generates strain disturbance, establishing the relationship between rock mass properties and treatment pressure. Moreover, an optimization algorithm is established to invert the elastic parameters of formation via fiber optic strains. In the first part of this paper series, we established the theoretical basis for the inverse differential strain analysis method for in-situ stress measurement, which was subsequently verified using an analytical model. This paper is the fundamental basis for the inverse differential strain analysis method.

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Petroleum Science
Pages 1171-1189

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Cite this article:
Zhang K-P, Chen M, Zhao C-J, et al. A continuous and long-term in-situ stress measuring method based on fiber optic. Part Ⅰ: Theory of inverse differential strain analysis. Petroleum Science, 2024, 21(2): 1171-1189. https://doi.org/10.1016/j.petsci.2023.10.006

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Received: 31 December 2022
Revised: 09 October 2023
Accepted: 09 October 2023
Published: 11 October 2023
© 2024 The Authors.

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