Convection at the Edge of a Steam-Assisted-Gravity-Drainage Steam Chamber
Конвекция на границе паровой камеры при паропомощном гравитационном дренировании
2011-03-10
SCID: 54.1/eyv8emug
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condensate invasionconvective heat transferrelative permeability effectssteam chamber edgesteam-assisted gravity drainage
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Abstract (AI)
Summary Steam-assisted gravity drainage (SAGD) has become the preferred process to recover bitumen from Athabasca deposits in Alberta. The method consists of a lower horizontal production well, typically located approximately 2 m above the base of the oil zone, and an upper horizontal injection well located roughly 5 to 10 m above the production well. Steam flows from the injection well into a steam chamber that surrounds the wells and releases its latent heat to the cool oil sands at the edge of the chamber. This research re-examines heat transfer at the edge of the steam chamber. Specifically, a new theory is derived to account for convection of warm condensate into the oil sand at the edge of the chamber. The results show that, if the injection pressure is higher than the initial reservoir pressure, convective heat transfer can be larger than conductive heat transfer into the oil sand at the edge of the chamber. However, enhancement of the heat-transfer rate by convection may not necessarily imply higher oil rates; this can be explained by relative permeability effects at the chamber edge. As the condensate invades the oil sand, the oil saturation drops and, consequently, the oil relative permeability falls. This, in turn, results in the reduction of the oil mobility, despite the lowered oil viscosity because of higher temperature arising from convective heat transfer.
Key Findings
1
A new theory is derived that accounts for convection of warm condensate into the oil sand at the steam-chamber edge in SAGD.
2
Condensate invasion lowers oil saturation and oil relative permeability, reducing oil mobility despite decreased oil viscosity from higher temperatures.
3
Enhanced heat-transfer rate from convection does not necessarily produce higher oil rates due to relative permeability effects at the chamber edge.
4
If injection pressure exceeds initial reservoir pressure, convective heat transfer can exceed conductive heat transfer into the oil sand at the chamber edge.
Research Object
Edge of a steam chamber in Steam-Assisted Gravity Drainage (SAGD) oil sands reservoirs where warm condensate invades the oil sand
Research Subject
Convective versus conductive heat transfer and its impact on oil saturation, relative permeability and oil mobility at the steam-chamber edge under injection-pressure-driven condensate convection
Publication Details
Publication Date
2011-03-10
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References available in scid.ai5
Mathematical Modeling of Steam-Assisted Gravity Drainage2005
Review of Phase A Steam-Assisted Gravity-Drainage Test1994
A Steam Assisted Gravity Drainage Model For Tar Sands: Radial Geometry1993
A Steam-Assisted Gravity Drainage Model For Tar Sands: Linear Geometry1992
A New Approach To The Modelling Of Steam-Assisted Gravity Drainage1985
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