Experimental Investigation and Numerical Simulation of Dynamic Characteristics for Multithermal Fluid-Assisted SAGD in Extraheavy Oil Reservoir
Экспериментальное исследование и численное моделирование динамических характеристик SAGD с многотемпературной флюидной поддержкой в сверхтяжелых нефтяных коллекторах
2021-07-05
SCID: 54.1/eh6wfpkv
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dissolved carbon dioxideheat loss reductionmultithermal fluid-assisted SAGDnitrogen injectionnoncondensate gas coinjectionsteam chamber zoningsteam-assisted gravity drainage
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Abstract (AI)
Abstract Loss of the vast majority of heat and steam is an unavoidable problem encountered during conventional steam-assisted gravity drainage (SAGD) in extraheavy oil reservoirs. The noncondensate gas coinjection technique of reducing energy consumption and enhancing oil recovery can effectively solve this problem. Aiming at extraheavy oil with a high initial viscosity, the influence of noncondensate gases in multithermal fluids on the physical parameters of extraheavy oil was experimentally studied; the production characteristics and mechanism of multithermal fluid-assisted SAGD were studied through numerical simulation. A comparative investigation of the conventional SAGD and multithermal fluid-assisted SAGD injection schemes was conducted. The characteristics and mechanism of the steam chamber during the production processes were analyzed. The results show that a steam-gas-oil system forms in the steam chamber in the case of multithermal fluids. The steam chamber can be partitioned into four zones, and the flow of the oil mainly occurs in the steam condensation zone and the oil drainage zone. The injected multithermal fluids increase the horizontal expansion of the steam chamber, while the dissolved carbon dioxide reduces the residual oil saturation. Moreover, the nitrogen injection significantly reduces the heat loss and increases the heat utilization for multithermal fluid-assisted SAGD in developing extraheavy oil reservoirs.
Key Findings
1
Dissolved carbon dioxide from the multithermal fluids reduces residual oil saturation in extraheavy oil.
2
In multithermal fluid-assisted SAGD, a steam-gas-oil system forms within the steam chamber, which can be partitioned into four distinct zones.
3
Injected multithermal fluids increase the horizontal expansion of the steam chamber compared to conventional SAGD.
4
Nitrogen injection significantly reduces heat loss and increases heat utilization for multithermal fluid-assisted SAGD.
5
Noncondensable gas coinjection with steam (multithermal fluids) mitigates heat and steam loss in SAGD for extraheavy oil reservoirs.
6
Oil flow during production primarily occurs in the steam condensation zone and the oil drainage zone of the steam chamber.
Research Object
Multithermal fluid-assisted SAGD process in extraheavy oil reservoirs
Research Subject
Dynamic characteristics, production performance and mechanisms including steam-chamber behavior, zone partitioning, oil flow locations, heat loss/heat utilization, and effects of dissolved CO2 and injected N2 on residual oil saturation and steam-chamber expansion for multithermal fluid-assisted SAGD
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2021-07-05
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