A Multistage Theoretical Model To Characterize the Liquid Level During Steam-Assisted-Gravity-Drainage Process
Многоступенчатая теоретическая модель для характеристики уровня жидкости в процессе добычи с паровой подсказкой и гравитационным дренажем
2016-08-10
SCID: 54.1/nyygewj9
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liquid level characterizationmultistage mathematical modelproduction/injection ratio (PIR)steam-assisted gravity drainage
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Abstract (AI)
Summary The technology of steam-assisted gravity drainage (SAGD) with a dual horizontal well pair has been widely adopted in thermal recovery for heavy oil in recent years. However, the close distance between injector and producer makes it easy to cause steam breakthrough, which means lower thermal efficiency as well as higher investment. It is generally acknowledged that there is a vapor-liquid interface between the injector and producer. A suitable liquid level is desired to prevent steam from being produced directly; otherwise, an overly high liquid level would influence oil productivity or even submerge the injector. The existence of a liquid level generates a temperature difference (i.e., subcool) between two wells. Subcool has widely been used to characterize the liquid level in research, yet it is inaccurate. Further studies are still needed on how to maintain a suitable and stable liquid level in SAGD development. In addition to the heat-loss model and geometric features of the steam chamber (SC), mass conservation, energy conservation, and gravity-drainage theory are used to develop a multistage mathematical model for liquid-level characterization during the SAGD process. The new model is validated against both field data and simulation results. On the basis of this model, an optimal production/injection ratio (PIR) at different times could be calculated to maintain a stable liquid level above the producer, avoiding steam channeling accordingly. Besides, the model can also be used to predict optimal steam-injection rate under constant-pressure injection. Other SAGD dynamic performance predictions, such as SC expansion speed, could also be derived from this model. In addition, recommendations for liquid-level adjustment are offered on the basis of field conditions.
Key Findings
1
A multistage mathematical model combining heat-loss, geometric steam-chamber features, mass and energy conservation, and gravity-drainage theory was developed to characterize liquid level during SAGD.
2
The model can derive other dynamic SAGD performance metrics, such as steam-chamber expansion speed, and supports field-based recommendations for liquid-level adjustment.
3
The model enables calculation of optimal production/injection ratio (PIR) over time to maintain a stable liquid level above the producer and avoid steam channeling.
4
The model is validated against both field data and simulation results, demonstrating its applicability to real operations.
5
Under constant-pressure injection, the model can predict optimal steam-injection rates.
Research Object
Liquid level (vapor–liquid interface) within the steam chamber between injector and producer wells during the steam-assisted gravity drainage (SAGD) process
Research Subject
Characterization and prediction of the liquid level dynamics and related performance (including subcool, optimal production/injection ratio, optimal steam-injection rate, steam-chamber expansion and stability to avoid steam breakthrough) via a multistage mass–energy–gravity-drainage mathematical model
Publication Details
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2016-08-10
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References available in scid.ai5
Steam Chamber Development and Production Performance Prediction of Steam Assisted Gravity Drainage2014
A Critical Review of the Status of SAGD: Where Are We and What Is Next?2008
SAGD Performance Optimization Through Numerical Simulations: Methodology and Field Case Example2001
A Steam Assisted Gravity Drainage Model For Tar Sands: Radial Geometry1993
A Steam-Assisted Gravity Drainage Model For Tar Sands: Linear Geometry1992