A Thermal-Fluid-Solid Coupling Computation Model of Initiation Pressure Using Supercritical Carbon Dioxide Fracturing

Author:

Chen Yi123ORCID,Kang Zhihong1,Kang Yuzhu4,Chen Xiaocheng5,Chen Xiaohong67,Fan Qingteng8,Du Yukun67,Wang Jinguang9

Affiliation:

1. School of Energy Resources, China University of Geosciences (Beijing), Beijing 100083, China

2. Oil & Gas Survey, China Geological Survey, Beijing 100029, China

3. Key Laboratory of Unconventional Oil & Gas, China Geological Survey, Beijing 100029, China

4. Petroleum Exploration and Production Research Institute, SINOPEC, Beijing 100083, China

5. Qingdao Geological Exploration Institute, China Metallurgical Geology Bureau, Qingdao 266000, China

6. Key Laboratory of Unconventional Oil & Gas Development, Ministry of Education, Qingdao 266580, China

7. School of Petroleum Engineering, China University of Petroleum, Qingdao 266580, China

8. CRRC Qingdao Sifang Rolling Stock Research Institute Co., Ltd., Qingdao 266000, China

9. No.4 Drilling Company of Daqing Drilling Engineering Company, Daqing 163000, China

Abstract

With the characteristics of low fracturing pressure, little damage to the reservoirs, and assuming the role of carbon storage, supercritical carbon dioxide (SC-CO2) fracturing is suitable for the development of unconventional oil and gas resources. Based on the tensile failure mechanism of rocks, this paper establishes a thermal-fluid-solid coupling initiation pressure model for SC-CO2 fracturing. Using this model, the changes in formation temperature and pore pressure near a wellbore caused by invasion of CO2 into the formation are analyzed, as well as the impact of these changes on the tangential stress of reservoir rocks. The field data of SC-CO2 fracturing in a sandstone gas well are used to validate the reliability of the model. The results show that SC-CO2 fracturing can significantly reduce the initiation pressure, which decreases with the increase in fracturing fluid injection rate. The minimum value of tangential stress is located at the well wall, and the direction of tangential stress caused by formation temperature and pore pressure is opposite, with the former greater than the latter. The increase in Poisson’s ratio, the increase in elastic modulus and the decrease in bottom hole temperature can reduce the initial fracturing pressure of the reservoir. The computation model established in this paper provides an effective method for understanding the reservoir fracturing mechanism under the condition of SC-CO2 invasion.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

MDPI AG

Subject

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

Reference41 articles.

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