Numerical Simulation Study of Pressure-Driven Water Injection and Optimization Development Schemes for Low-Permeability Reservoirs in the G Block of Daqing Oilfield

Author:

Wang Biao12,Zhao Yanjie1,Tian Yajie3,Kong Cuilong4,Ye Qinyou5,Zhao Sicong2,Li Zihao1,Suo Yu1678ORCID

Affiliation:

1. School of Petroleum Engineering, Northeast Petroleum University, Daqing 163318, China

2. The 10th Oil Production Plant, Daqing Oil Filed, Petro China, Daqing 163318, China

3. Research Institute of Petroleum Exploration and Development, No. 20 Xueyuan Road, Haidian District, Beijing 100083, China

4. Oil Production Engineering Research Institute, Daqing Oilfield Company Limited, China National Petroleum Corporation, Daqing 163453, China

5. Unconventional Resources Development Company of Petro China Jilin Oilfield Company, Songyuan 138000, China

6. Postdoctoral Resource Center, Daqing Oilfield Company Limited, Daqing 163458, China

7. Key Laboratory of Continental Shale Hydrocarbon Accumulation and Efficient Development (Northeast Petroleum University), Ministry of Education, Daqing 163318, China

8. Heilongjiang Province Key Laboratory of Oil and Gas Reservoir Fracturing and Evaluation, Daqing 163318, China

Abstract

Pressure-driven water injection technology shows significant potential in addressing the key challenges of low-permeability oil reservoirs, improving water flooding development efficiency. Grounded in FDEM theory, this study establishes fluid matrix constitutive equations and employs FDEM to resolve rock stress–strain fields. A numerical simulation method for pressure-driven water injection in low-permeability reservoirs is developed to study the impact of different well pattern densities. The results indicate that the 90° horizontal well pattern using the five-spot method yields optimal outcomes, with approximately 32.32% higher cumulative liquid production than vertical well patterns. The 45° horizontal well pattern with the reversed nine-spot method also performs well, with about 30% higher cumulative liquid production than single-row vertical wells. Pressure-driven water injection improves matrix oil–water permeability and expands water flooding coverage. Based on the pressure gradient distribution driven by different well patterns, an evaluation method for the inter-well utilization capacity and its effectiveness was established. This method quantitatively assesses the reservoir depletion under various horizontal well encryption schemes. For research on timing of water injection in pressure-driven water flooding. Compared to pressure-driven water injection after 90 days, there is increased cumulative oil production after 40 days, emphasizing the importance of early pressure maintenance for higher cumulative oil production and enhanced recovery rates in low-permeability reservoir development. These findings provide crucial theoretical and practical support.

Funder

National Natural Science Foundation of China

New Era Longjiang Outstanding Master’s and Doctoral Thesis Project

Key Laboratory of Enhanced Oil and Gas Recovery, Ministry of Education

Heilongjiang Province

Publisher

MDPI AG

Subject

Process Chemistry and Technology,Chemical Engineering (miscellaneous),Bioengineering

Reference32 articles.

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