Influence of Pressure Difference Between Reservoir and Production Well on Steam-Chamber Propagation and Reservoir-Production Performance
Влияние перепада давления между пластом и добывающей скважиной на распространение паровой камеры и продуктивность пласта
2019-02-06
SCID: 54.1/gf5btrfx
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SAGD production performanceinjector/producer pressure differencemodified mathematical modelsteam-assisted gravity drainagesteam-chamber propagation
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Abstract (AI)
Summary Steam-assisted gravity drainage (SAGD) is the most-effective thermal recovery method to exploit oil sand. The driving force of gravity is generally acknowledged as the most-significant driving mechanism in the SAGD process. However, an increasing number of field cases have shown that pressure difference might play an important role in the process. The objective of this paper is to simulate the effects of injector/producer-pressure difference on steam-chamber evolution and SAGD production performance. A series of 2D numerical simulations was conducted using the MacKay River and Dover reservoirs in western Canada to investigate the influence of pressure difference on SAGD recovery. Meanwhile, the effects of pressure difference on oil-production rate, stable production time, and steam-chamber development were studied in detail. Moreover, by combining Darcy's law and heat conduction along with a mass balance in the reservoir, a modified mathematical model considering the effects of pressure difference is established to predict the SAGD production performance. Finally, the proposed model is validated by comparing calculated cumulative oil production and oil-production rate with the results from numerical and experimental simulations. The results indicate that the oil production first increases rapidly and then slows down when a certain pressure difference is reached. The pressure difference has strong effects on steam-chamber-rising/expansion stages. However, at the expansion stage, lower pressure difference can achieve the same effect as high pressure difference. In addition, it is shown that the steam-chamber-expansion angle is a function of pressure difference. Using this finding, a new mathematical model is established considering the modification of the expansion angle, which (Butler 1991) treated as a constant. With the proposed model, production performance such as cumulative oil production and oil-production rate can be predicted. The steam-chamber shape is redefined at the rising stage, changing from a fan-like shape to a hexagonal shape, but not the single fan-like shape defined by (Butler 1991). This shape redefinition can clearly explain why the greatest oil-production rate does not occur when the steam chamber reaches the caprock. Literature surveys show few studies on how pressure difference influences steam-chamber development and SAGD recovery. The current paper provides a modified SAGD production model and an entirely new scope for SAGD enhanced oil recovery (EOR) that makes the pressure difference a new optimizable factor in the field.
Key Findings
1
Injector/producer pressure difference significantly influences steam-chamber evolution and SAGD production performance, affecting oil-production rate and stable production time.
2
Oil production increases rapidly with pressure difference up to a threshold, then growth slows once a certain pressure difference is reached.
3
Pressure difference strongly affects steam-chamber rising and expansion stages, but during expansion lower pressure difference can achieve similar effects as higher pressure difference.
4
Steam-chamber expansion angle depends on pressure difference; incorporating this variable angle into a modified mathematical model improves prediction of cumulative oil production and oil-production rate.
5
Steam-chamber shape during the rising stage is redefined from a single fan-like shape to a hexagonal shape, explaining why peak oil-production rate does not coincide with the chamber reaching the caprock.
Research Object
Steam-assisted gravity drainage (SAGD) reservoir–well system (injector and producer) in oil-sand reservoirs
Research Subject
Influence of injector–producer pressure difference on steam-chamber propagation, steam-chamber geometry evolution, and SAGD production performance (oil-production rate, cumulative recovery, and stable production time)
Publication Details
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2019-02-06
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