Enhanced Oil Recovery and CO2 Storage Performance in Continental Shale Oil Reservoirs Using CO2 Pre-Injection Fracturing
Abstract
:1. Introduction
2. Experimental Section
2.1. Sample Preparation
2.2. Experimental Apparatus and Methods
3. Results
3.1. EOR Performance Analysis of CO2 Pre-Injection
3.2. Analysis of CO2 Solubility in Formation Fluids of Shale Oil Reservoirs during Pre-Injection
3.3. Analysis of CO2 Adsorption in Shale Oil Reservoirs during Pre-Injection
3.4. Numerical Simulation of CO2 Storage by Pre-Injection
4. Discussion
5. Conclusions
- (1)
- After seven cycles of conventional CO2 huff and puff, the average oil recovery was 29.84%, while that of CO2 pre-injection was 39.27%, showing a relative growth of 31.6%. At higher injection pressures and pump rates, CO2 could diffuse deeper into the cores, create induced fractures to expand its contact area with the shale and mix with crude oil at the miscible state, all of which jointly led to considerable enhancement of shale oil recovery.
- (2)
- With increasing pressure, the CO2 solubility grew considerably in both oil and water and so did the quantity of the CO2 molecules adsorbed onto the shale. With the high injection pressure and rate of CO2 pre-injection, more extensive and more effective contact between the CO2 and formation fluids was expected, and this improved the CO2 storage performance.
- (3)
- Numerical simulation validated the effectiveness of CO2 pre-injection, regarding CO2 geological storage. The simulation results showed that CO2 could flow further into the reservoirs (leading to a larger swept zone) and enter micro-nano pores that were beyond the reach of the conventional CO2 huff and puff. Excellent storage performance was seen in the production stage, as the average storage ratio of CO2 reached 76.46%. CO2 pre-injection has tremendous potential for the geological storage of CO2.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Ions | Na+ and K+ | Ca2+ | Mg2+ | Cl− | SO42− | HCO3− |
---|---|---|---|---|---|---|
Concentration (mg/L) | 2320 | 39 | 5 | 1450 | 307 | 3420 |
Specimen No. | Diameter (cm) | Length (cm) | Porosity (%) | Permeability (mD) |
---|---|---|---|---|
1—Huff and puff | 2.51 | 5.01 | 5.49 | 0.0314 |
2—Huff and puff | 2.51 | 5.00 | 5.17 | 0.0224 |
3—Pre-injection | 2.50 | 5.01 | 5.81 | 0.0392 |
4—Pre-injection | 2.51 | 5.02 | 4.96 | 0.0271 |
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Zhang, A.; Lei, Y.; Zhang, C.; Tao, J. Enhanced Oil Recovery and CO2 Storage Performance in Continental Shale Oil Reservoirs Using CO2 Pre-Injection Fracturing. Processes 2023, 11, 2387. https://doi.org/10.3390/pr11082387
Zhang A, Lei Y, Zhang C, Tao J. Enhanced Oil Recovery and CO2 Storage Performance in Continental Shale Oil Reservoirs Using CO2 Pre-Injection Fracturing. Processes. 2023; 11(8):2387. https://doi.org/10.3390/pr11082387
Chicago/Turabian StyleZhang, An, Yalin Lei, Chenjun Zhang, and Jiaping Tao. 2023. "Enhanced Oil Recovery and CO2 Storage Performance in Continental Shale Oil Reservoirs Using CO2 Pre-Injection Fracturing" Processes 11, no. 8: 2387. https://doi.org/10.3390/pr11082387
APA StyleZhang, A., Lei, Y., Zhang, C., & Tao, J. (2023). Enhanced Oil Recovery and CO2 Storage Performance in Continental Shale Oil Reservoirs Using CO2 Pre-Injection Fracturing. Processes, 11(8), 2387. https://doi.org/10.3390/pr11082387