Well trajectory optimization of ultradeep and high-pressure drilling engineering based on high in situ stress as the main control factor: A case study from the Ordovician carbonate reservoir in the Shunbei area of the Tarim Basin

Author:

Yang Ruiqiang1ORCID,Ding Wenlong2ORCID,Zhao Zhan3ORCID,Liu Jingtao4,Shi Shuo3,Zhao Teng3ORCID,Han Pengyuan3ORCID

Affiliation:

1. Huabei Oilfield CBM Branch Company, Changzhi, China.

2. China University of Geosciences, School of Energy Resources, Beijing, China and China University of Geosciences, Ministry of Education, Key Laboratory for Marine Reservoir Evolution and Hydrocarbon Abundance Mechanism, Beijing, China. (corresponding author)

3. China University of Geosciences, School of Energy Resources, Beijing, China and China University of Geosciences, Ministry of Education, Key Laboratory for Marine Reservoir Evolution and Hydrocarbon Abundance Mechanism, Beijing, China.

4. SINOPEC Northwest Oilfield Co, Research Institute of Engineering and Technology, Urumqi, China.

Abstract

With increasing oil and gas exploration and development, well trajectory optimization has gradually become the focus of the oil and gas industry. Considering the wellbore instability in the Shunbei area of the Tarim Basin, the well trajectory was scientifically optimized under the guidance of rock mechanics, drilling engineering, and mathematical methods, combined with actual geologic data, and with in situ stress as the main controlling factor. In this paper, the stress state of the wellbore is analyzed by linear elastic theory to establish the stress distribution model of the wellbore. The safety window model of wellbore stability is established using different rock failure criteria to calculate the collapse pressure and fracture pressure of the formation. Based on this, the safe mud density window is defined to achieve wellbore trajectory optimization. Finally, the influence factors of wellbore stability are discussed, and the applicability of different rock failure criteria is evaluated. The results indicate that under the normal faulting stress regime condition in the study area, the direction of horizontal minimum principal stress is the best drilling direction, where the borehole inclination angle of [Formula: see text] > 50° is the optimal well trajectory. The wellbore stabilities of high-angle deviated wells and horizontal wells are better than those of low-angle deviated wells and vertical wells. The calculation results of the Mogi-Coulomb criterion can describe the conditions of the in situ stress field more accurately. The safe windows for different well trajectories are obtained directly by the numerical method, which is very practical for optimizing well trajectories and improving wellbore stability.

Funder

National Science and Technology Major Project of China

National Natural Science Foundation of China

Publisher

Society of Exploration Geophysicists

Subject

Geology,Geophysics

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