Fractal theory and dynamic contact angle-based imbibition model for two-phase flow in porous media

Author:

Zhang LeiORCID,Imani Gloire12ORCID,Kang Lixin,Ping Jingjing,Sun HaiORCID,Fan DongyanORCID,Fu Shuaishi,Hou LeiORCID,Memon Bilal Shams3ORCID,Yang YongfeiORCID,Yao Jun

Affiliation:

1. School of Petroleum Engineering, China University of Petroleum 1 , Qingdao, Shandong 266580, China

2. Key Laboratory of Unconventional Oil & Gas Development (China University of Petroleum (East China)), Ministry of Education 2 , Qingdao 266580, China

3. Department of Petroleum & Gas Engineering, Dawood University of Engineering & Technology 5 , Karachi, Pakistan

Abstract

During the development of tight oil reservoirs, there are significant occurrences of spontaneous imbibition. Understanding the spontaneous imbibition behavior at the core scale of tight sandstone holds significant importance in improving the recovery rate. This study presents a novel mathematical model for characterizing the spontaneous imbibition phenomenon in tight porous media, drawing upon the fractal theory and the dynamic contact angle in capillary bundles. The proposed model has been verified by the results of core imbibition experiments in the literature. Furthermore, we conducted spontaneous imbibition simulation studies using core structures of different pore types extracted from real tight reservoirs to validate the applicability of the new mathematical model. Comparative analysis shows that the derived mathematical approach fits well with the simulation results, but the heterogeneity of the pore space can lead to certain errors between the model and the simulation results. The influencing factors analysis suggests that the higher the porosity, the higher the final recovery rate, whereas an increase in pore fractal dimension has little effect on the final recovery rate.

Funder

National Natural Science Foundation of China

Shandong Provincial Natural Science Foundation

Fundamental Research Funds for the Central Universities

Publisher

AIP Publishing

Subject

Condensed Matter Physics,Fluid Flow and Transfer Processes,Mechanics of Materials,Computational Mechanics,Mechanical Engineering

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