Experimental Study and Application of Steam Flooding for Horizontal Well in Ultraheavy Oil Reservoirs
Экспериментальное исследование и применение парового заводнения для горизонтальных скважин в сверхтяжелых нефтяных коллекторах
2016-11-28
SCID: 54.1/489dk74k
Discuss with AI
high-temperature high-pressure visual simulationhorizontal wellsteam chamber expansionsteam floodingultraheavy oil reservoirs
Figures from the paper
Abstract (AI)
Based on the ultraheavy oil area in AL-1 Block, Shengli Oilfield, China, a two-dimensional (2D) high-temperature–high-pressure (HTHP) visualized scaled physical simulation system was constructed to investigate intensively oil displacement mechanisms underlying steam flooding for horizontal well at different development stages. The results indicated that whole process is divided into three phases: water extraction phase, steam effective displacement phase, and steam breakthrough phase. Different phases have different oil displacement mechanisms. These differences are caused mainly by the synthetic actions of horizontal displacement and vertical drainage. A series of physical experiments were conducted to evaluate the optimal parameters affecting the development effects of steam flooding for horizontal wells. The results indicated that the development effect at the pressure of 5 MPa is better than that at 7 MPa when the steam dryness at the bottom of the well was 0.6; the steam dryness at the bottom should be kept above 0.4; the steam chamber was fully expanded at the injected intensity of steam of 1.9 ton/(d. ha. m). Increasing steam dryness under high-pressure conditions can facilitate an effective development. The results were successfully used to guide 18 horizontal wells from AL-1 Block, and the data collected here may provide important guidance for steam flooding in heavy or ultraheavy oil reservoir.
Key Findings
1
A steam injection intensity of 1.9 ton/(d·ha·m) fully expands the steam chamber.
2
At steam bottom-hole dryness 0.6, development at 5 MPa pressure outperforms that at 7 MPa.
3
Bottom-hole steam dryness should be maintained above 0.4 for effective development.
4
Different oil displacement mechanisms operate across phases due to combined horizontal displacement and vertical drainage effects.
5
Experimental results guided successful application to 18 horizontal wells in AL-1 Block and can inform steam flooding in heavy/ultraheavy reservoirs.
6
Increasing steam dryness under high-pressure conditions enhances effective development.
7
Steam flooding process for horizontal wells in ultraheavy oil reservoirs proceeds in three phases: water extraction, steam effective displacement, and steam breakthrough.
Research Object
Steam flooding process applied to horizontal wells in ultraheavy oil reservoirs (AL-1 Block, Shengli Oilfield)
Research Subject
Oil displacement mechanisms and development-effect parameters (phases, steam dryness, injection pressure and intensity, steam chamber expansion) governing performance of steam flooding for horizontal wells
Publication Details
Publication Date
2016-11-28
Journal
Publisher
ISSN
Access Type
Author Information
Download PDF
Subscribe to digest
References available in scid.ai5
Analysis of Reservoir Applicability of Hydrophobically Associating Polymer2015
Efficient Prediction of SAGD Productions Using Static Factor Clustering2015
Improving Steam-Assisted Gravity Drainage Using Mobility Control Foams: Foam Assisted-SAGD (FA-SAGD)2010
Steam-Assisted Gravity Drainage: Concept, Development, Performance And Future1994
New Scaling Criteria For Chemical Flooding Experiments1990