Condensate-Banking Removal and Gas-Production Enhancement Using Thermochemical Injection: A Field-Scale Simulation
Abstract
:1. Introduction
2. Methodology
2.1. Process Description
2.2. Reservoir Model
2.3. Fluid Model
3. Results and Discussion
3.1. Impact of Flowing Bottom-Hole Pressure
3.2. Impact of Gas-Production Rate
3.3. Thermochemical Treatment
3.4. Comparison Analysis
4. Conclusions
- Compared to conventional gas-injection treatment, the thermochemical approach was found to be vastly superior in coping with condensate-banking-related production issues.
- The simulation work indicated that thermochemical injection could restore the initial reservoir condition and sustain gas production for more than 680 days, compared to 104 days using gas-injection treatment.
- For the particular model used in this investigation, total gas recovery for the thermochemical-based procedure was 89%, compared to 25% for the traditional gas-injection approach.
- In the case of the thermochemical-based approach, the exothermic nature of the thermochemical reaction released pressure and heat, thereby increasing pressure around the wellbore, and heating fluids in this region.
- Edicts reacted rather violently, giving rise to a pressure pulse, fostering the creation of microfractures accompanied by an according reduction in capillary pressure.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Parameter | Value |
---|---|
Total bulk reservoir volume (ft3) | |
Total pore volume (ft3) | |
Total hydrocarbon pore volume (ft3) | |
Original oil in place, OOIP (STB) | |
Original gas in place, OGIP (SCF) |
Component | Mol % |
---|---|
N2 | 10.07 |
CO2 | 2.01 |
H2S | 2.65 |
CH4 | 66.89 |
C2H6 | 6.85 |
C3H8 | 3.05 |
NC4 | 1.25 |
IC4 | 0.59 |
NC5 | 0.5 |
IC5 | 0.46 |
FC6 | 0.68 |
FC7 | 0.79 |
FC8 | 0.8 |
FC9 | 0.67 |
FC10 | 0.53 |
FC11 | 0.33 |
C12+ | 1.88 |
Sum | 100.00 |
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Hassan, A.; Abdalla, M.; Mahmoud, M.; Glatz, G.; Al-Majed, A.; Al-Nakhli, A. Condensate-Banking Removal and Gas-Production Enhancement Using Thermochemical Injection: A Field-Scale Simulation. Processes 2020, 8, 727. https://doi.org/10.3390/pr8060727
Hassan A, Abdalla M, Mahmoud M, Glatz G, Al-Majed A, Al-Nakhli A. Condensate-Banking Removal and Gas-Production Enhancement Using Thermochemical Injection: A Field-Scale Simulation. Processes. 2020; 8(6):727. https://doi.org/10.3390/pr8060727
Chicago/Turabian StyleHassan, Amjed, Mohamed Abdalla, Mohamed Mahmoud, Guenther Glatz, Abdulaziz Al-Majed, and Ayman Al-Nakhli. 2020. "Condensate-Banking Removal and Gas-Production Enhancement Using Thermochemical Injection: A Field-Scale Simulation" Processes 8, no. 6: 727. https://doi.org/10.3390/pr8060727
APA StyleHassan, A., Abdalla, M., Mahmoud, M., Glatz, G., Al-Majed, A., & Al-Nakhli, A. (2020). Condensate-Banking Removal and Gas-Production Enhancement Using Thermochemical Injection: A Field-Scale Simulation. Processes, 8(6), 727. https://doi.org/10.3390/pr8060727