Study of Supercritical State Characteristics of Miscible CO2 Used in the Flooding Process
Abstract
:1. Introduction
2. Experimental Equipment and Methods
2.1. Experimental Equipment
2.2. Experimental Materials
2.3. Experimental Procedures
2.3.1. Phase Behavior of Supercritical CO2
2.3.2. Phase Behavior of Supercritical CO2—Formation Oil System
3. CO2 Supercritical Phase Behavior
3.1. Phase Behavior of CO2 at Saturation Vapor Pressure Line
3.2. Phase Behavior of CO2 from Gas Phase to Supercritical Phase
3.3. Phase Behavior of CO2 from Liquid Phase to Supercritical Phase
4. Supercritical Phase Behavior of CO2-Formation Oil System
4.1. Phase Behavior of Supercritical Injection Gas-Formation Oil System during Mass Transfer Process
4.2. Difference of Components in Supercritical Phase Region during Mass Transfer Process
4.3. Mass Transfer Capacity of Supercritical CO2 Extraction
5. Supercritical CO2 and Miscible-Phase Matching Mechanism
6. Conclusions
- (1)
- During the development process, the phase behavior of supercritical CO2 is complex. Experimental research shows that CO2 is a continuous change process when transitioning from a gas (or liquid) phase to a critical phase. When the pressure in the supercritical phase region increases, the number of droplet molecules increases, the density of CO2 changes drastically and the dissolving capacity and extraction capacity are significantly improved.
- (2)
- Supercritical CO2 has a significantly higher extraction capacity for formation oil components compared to supercritical CH4 and N2. The extraction and mass transfer capacity of CO2 is the most affected by the pressure, followed by CH4 and N2. The understanding of the phase behavior of CO2 provided the theoretical guidance for the application of CO2 flooding on the oilfields.
- (3)
- The density of supercritical CO2 is closely related to the oil–gas miscibility. The minimum miscible pressure of low-permeability reservoirs lies in the density range of supercritical CO2 of 0.50–0.85 g/cm3 in China and 0.40–0.80 g/cm3 abroad. The density of supercritical CO2 when CO2-formation oil reaches miscibility is mainly affected by temperature and oil composition, which provides a deeper view to understand the inner relationship between the supercritical CO2 and the oil–gas miscibility.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Zhang, Y.; Lyu, W.; Zhang, K.; He, D.; Li, A.; Cheng, Y.; Gao, J. Study of Supercritical State Characteristics of Miscible CO2 Used in the Flooding Process. Energies 2023, 16, 6693. https://doi.org/10.3390/en16186693
Zhang Y, Lyu W, Zhang K, He D, Li A, Cheng Y, Gao J. Study of Supercritical State Characteristics of Miscible CO2 Used in the Flooding Process. Energies. 2023; 16(18):6693. https://doi.org/10.3390/en16186693
Chicago/Turabian StyleZhang, Yu, Weifeng Lyu, Ke Zhang, Dongbo He, Ao Li, Yaoze Cheng, and Jiahao Gao. 2023. "Study of Supercritical State Characteristics of Miscible CO2 Used in the Flooding Process" Energies 16, no. 18: 6693. https://doi.org/10.3390/en16186693
APA StyleZhang, Y., Lyu, W., Zhang, K., He, D., Li, A., Cheng, Y., & Gao, J. (2023). Study of Supercritical State Characteristics of Miscible CO2 Used in the Flooding Process. Energies, 16(18), 6693. https://doi.org/10.3390/en16186693