石油工程
蒸汽注入
注水(采油)
润湿
渗吸
碳酸盐
传热
热传导
基质(化学分析)
毛细管作用
毛细管压力
材料科学
相对渗透率
机械
复合材料
地质学
多孔性
多孔介质
冶金
物理
发芽
生物
植物
作者
Joohyung Kim,Hyemin Park,Junwoo Seo,Kun Sang Lee,Wonmo Sung
标识
DOI:10.1080/12269328.2012.674427
摘要
Carbonate reservoirs contain over 90% of oil within an extremely tight matrix and are usually oil-wet, which makes them unfavorable for oil production. During water injection, water does not imbibe into the matrix, but flows preferentially through the fractures, resulting in very low oil recoveries. It is proposed that steam or hot water is injected, inducing a wettability change and rendering the matrix water-wet. Then, water can move into the matrix by capillary imbibition. From this perspective, it is crucial to analyze the contributions of conductive and convective heat transfer during steam injection.The mechanism of wettability changes is accounted for when steam is injected into carbonate reservoirs. The effect of strong capillary pressure in a tight matrix on the oil recovery is also examined. The purpose of this study is to evaluate the rate of conduction and convection and to determine optimum conditions that maximize heat transfer and wettability alteration in the tight matrix. An analytical solution and numerical results were compared for heat conduction within the matrix during steam injection. Investigations were also performed to determine the optimum injection time, steam injection pressure and steam quality required to make the carbonate matrix water-wet and maximize oil recovery. The results from this study show that convectional flow might be the most important heat-transfer mechanism to shorten the matrix wettability converting time. Based on analysis of the thermal process, an optimum steam injection strategy can be designed for a given matrix permeability and fracture spacing.
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