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Steam Injection in Tight Oil Reservoir

机译:蒸汽注射液中的储油液

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Steam injection—a thermal-based enhanced oil recovery (EOR) process—is used to improve fluid mobility within a reservoir, and it is well known that it yields positive results in heavy-oil reservoirs. In theory, steam injection has the potential of being applied in light-oil reservoirs to enable vaporization of in-situ reservoir fluids, but field developments and scientific studies of this application are sparse. Conventional displacement methods like water-flooding and gas-flooding have been applied to some extent, however, oil extraction in such reservoirs relies on recovery mechanisms like capillary imbibition or gravity drainage to recover oil from the reservoir matrix. Furthermore, low-permeability reservoir rocks are associated with low gravity drainage and high residual oil saturation. The objective of this study is to evaluate the potential of steam injection for light (47°API) oil extraction in naturally-fractured reservoirs. It is theorized that this method will serve as an effective tool for recovery of light hydrocarbons through naturally-fractured networks with the benefit of heat conduction through the rock matrix. This research investigates the application of light-oil steamflood (LOSF) in naturally- fractured reservoirs (NFR). A simulation model comprised of a matrix block surrounded by fracture network was used to study oil recovery potential under steam injection. To simulate gravity drainage, steam was injected through a horizontal well completed in the upper section of the fracture network, while the production well was completed at the bottom of the fracture network. The simulation included two different porous media: (1) natural fractures and (2) matrix blocks. Each of these porous media was assumed to be homogeneous and characterized based on typical reservoir properties for carbonate formations. This study also analyzed the impact of different recovery mechanisms during steam injection for a light-oil sample in NFR, with reservoir sensitivity examined, based on varying amounts of vaporization, injection rate, permeability, matrix height and capillary pressure. Of these, vaporization was found to be the dominant factor in the application of LOSF in NFR, as described in detail within the results.
机译:蒸汽喷射 - 基于热基增强的油回收(EOR)工艺 - 用于改善储层内的流体迁移率,众所周知,它在重油储存器中产生阳性结果。理论上,蒸汽注入具有在轻油储层中施加的潜力,以实现原位储层液体的蒸发,但该应用的现场发育和科学研究是稀疏的。在某种程度上,在某种程度上施加了常规的位移方法,如水淹水和煤气泛滥,这种储存器中的油萃取依赖于毛细管性吸收或重力引流等恢复机制,以从储存基质中回收油。此外,低渗透储层岩石与低重力引流和高残留的油饱和有关。本研究的目的是评估天然裂缝储层中光(47°API)油萃取的蒸汽注射的潜力。理论上,该方法将作为通过自然裂缝网络回收光碳氢化合物的有效工具,其通过岩石基质的热传导的损益。本研究调查了轻油蒸汽灌木(LOSF)在天然裂缝储层(NFR)中的应用。包括由断裂网络包围的矩阵块的模拟模型用于研究蒸汽喷射下的储油潜力。为了模拟重力排水,通过在裂缝网络的上部完成的水平良好地注入蒸汽,而生产良好在裂缝网络的底部完成。该模拟包括两种不同的多孔介质:(1)天然骨折和(2)基质块。假设这些多孔介质中的每一个是均匀的,并基于碳酸酯形成的典型储层性能。该研究还分析了在NFR中的轻油样品中蒸汽喷射过程中不同恢复机制的影响,基于不同量的汽化,注射速率,渗透性,基质高度和毛细管压力来检查储层敏感性。其中,发现蒸发是在NFR中施用LOSF的显性因素,如在结果中详细描述的。

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