Investigating Asphaltene Precipitation and Deposition in Ultra-Low Permeability Reservoirs during CO2-Enhanced Oil Recovery
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Experimental Equipment
2.3. Experimental Methods and Procedures
3. Results and Discussion
3.1. The Precipitation Onset Point for Asphaltenes
3.2. Effect of Asphaltene Precipitation on Formation Damage during CO2 Flooding
4. Conclusions
- (1)
- Utilizing a visual high-pressure tank, the precipitation onset point for asphaltenes was determined. The study revealed that for crude oil from the Changqing X block, this critical threshold is at 12.6 MPa. Notably, this onset point precedes the Minimum Miscibility Pressure (MMP). During the immiscible flooding phase, the extent of asphaltene precipitation escalates with increasing injection pressure. Upon transitioning to the miscible flooding stage, while asphaltene precipitation continues, it occurs to a significantly lesser degree.
- (2)
- A series of core flooding experiments were performed to assess the impact on recovery factor (RF) and permeability reduction in ultra-low permeability reservoirs. The results indicate that when the pressure is within the interval between the critical deposition pressure and MMP, both RF and the rate of core permeability loss increase with pressure. During the CO2 miscible flooding process, RF peaks, and the asphaltene content in the produced oil is at its highest, leading to substantial damage to the low-permeability reservoir.
- (3)
- A comparative analysis of the T2 response in oil-saturated cores before and after CO2 flooding was conducted. It was observed that asphaltene deposition minimally affects core porosity (approximately 8%). This suggests that in instances where the core has high permeability and larger pore-throat dimensions, the asphaltene deposits, which adhere to the pore-throat walls, do not substantially compromise the reservoir’s pore space.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Core NO. | Length, cm | Pore Volume, mL | Porosity,% | K, 10−3 μm2 |
---|---|---|---|---|
1 | 7.62 | 3.88 | 10.38 | 0.35 |
2 | 7.62 | 3.93 | 10.51 | 0.34 |
3 | 6.86 | 4.62 | 13.73 | 0.38 |
4 | 6.78 | 3.53 | 10.61 | 0.33 |
Component | W, % | Component | W, % | Component | W, % | Component | W, % |
---|---|---|---|---|---|---|---|
N2 | 1.52 | C7 | 3.84 | C17 | 1.98 | C27 | 1.08 |
CO2 | 0.01 | C8 | 6.1 | C18 | 1.69 | C28 | 1.06 |
C1 | 24.58 | C9 | 4.68 | C19 | 1.6 | C29 | 1.01 |
C2 | 4.37 | C10 | 3.84 | C20 | 1.37 | C30 | 0.85 |
C3 | 3.16 | C11 | 3.37 | C21 | 1.23 | C31 | 0.65 |
iC4 | 1.21 | C12 | 3.08 | C22 | 1.21 | C32 | 0.52 |
nC4 | 0.86 | C13 | 2.85 | C23 | 1.1 | C33 | 0.45 |
iC5 | 0.72 | C14 | 2.77 | C24 | 1.01 | C34 | 0.4 |
nC5 | 0.97 | C15 | 2.25 | C25 | 0.98 | C35 | 0.37 |
C6 | 1.52 | C16 | 2.16 | C26 | 1.02 | C36+ | 6.29 |
Component | Asphaltenes | Resins | Aromatics | Saturates | Total Yield |
---|---|---|---|---|---|
W, % | 1.32 | 8.59 | 13.52 | 63.78 | 87.21 |
P, MPa | 8 | 13 | 16 | 20 | |
---|---|---|---|---|---|
Content, % | |||||
Asphaltenes | 1.22 | 0.83 | 0.14 | 0.11 | |
Resins | 8.59 | 7.79 | 7.62 | 6.42 | |
Aromatics | 13.52 | 13.44 | 12.58 | 12.55 | |
Saturates | 63.78 | 59.98 | 59.37 | 59.37 | |
Total yield | 87.11 | 82.04 | 79.71 | 78.45 |
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Yin, D.; Li, Q.; Zhao, D. Investigating Asphaltene Precipitation and Deposition in Ultra-Low Permeability Reservoirs during CO2-Enhanced Oil Recovery. Sustainability 2024, 16, 4303. https://doi.org/10.3390/su16104303
Yin D, Li Q, Zhao D. Investigating Asphaltene Precipitation and Deposition in Ultra-Low Permeability Reservoirs during CO2-Enhanced Oil Recovery. Sustainability. 2024; 16(10):4303. https://doi.org/10.3390/su16104303
Chicago/Turabian StyleYin, Dandan, Qiuzi Li, and Dongfeng Zhao. 2024. "Investigating Asphaltene Precipitation and Deposition in Ultra-Low Permeability Reservoirs during CO2-Enhanced Oil Recovery" Sustainability 16, no. 10: 4303. https://doi.org/10.3390/su16104303
APA StyleYin, D., Li, Q., & Zhao, D. (2024). Investigating Asphaltene Precipitation and Deposition in Ultra-Low Permeability Reservoirs during CO2-Enhanced Oil Recovery. Sustainability, 16(10), 4303. https://doi.org/10.3390/su16104303