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Application and Mechanisms of Self-Generated Heat Foam for Enhanced Oil Recovery

机译:自生热泡沫在提高采油率中的应用及机理

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Foams are widely used in the oil and gas industry due to their unique viscous and elastic properties. However, typical foam injection methods into reservoirs require large equipment with high injection pressure, which might not be suitable for development of offshore oilfields, deep wells, or high condensate petroleum reservoirs. Here, for the first time, we report self generated heat foams (SGHFs) that are systematically generated and studied by combining self-generated nitrogen gas reactants (sodium nitrite and ammonium chloride) and environmentally friendly surfactants. Sandpack oil recovery flooding experiments at 60 degrees C and 4 MPa along with two-dimensional (2D) visualization micromodel experiments were carried out to analyze the oil displacement mechanisms. Various oil recovery aspects such as heat production, oil viscosity reduction, foam generation, profile control, and heat-foam synergistic effects were investigated. The results showed that SGHFs can increase oil recovery by 33.9% from homogeneous (permeability of similar to 2 Darcy) single layer formation and by 20.4% from heterogeneous (permeability ratio 10) multilayer formation. The incremental oil recovery by SGHFs was much higher than that of conventional foam or self-generated heat (SGH) without foam. The heat produced by the SGHF chemical reaction increased the temperature of the crude oil by 13 degrees C, reduced the crude oil viscosity by 35%, and helped increase oil recovery by reducing the mobility ratio. Moreover, the foams generated by SGHFs had a remarkable effect on the profile (conformance) control in the presence of crude oil. The synergistic effect between the heat and the foam produced by SGHF chemical reaction can be explained by (1) The chemical reaction can produce small and uniform foam, seen by the 2D micromodel, which can block large pores in porous media and enhance sweep efficiency and (2) The uniform sweep efficiency due to the presence of foam can help distribute the heat and make the temperature rise evenly along the sandpack, which was beneficial to reduce the crude oil viscosity throughout the entire porous media and improve oil recovery.
机译:泡沫由于其独特的粘性和弹性特性而被广泛用于石油和天然气工业。但是,向储层中注入泡沫的典型方法需要具有高注入压力的大型设备,这可能不适合开发海上油田,深井或高凝析油储层。在这里,我们首次报道了通过结合自生氮气反应物(亚硝酸钠和氯化铵)和环保型表面活性剂而系统生成和研究的自生发热泡沫(SGHF)。进行了60摄氏度和4兆帕的沙袋采油驱油实验以及二维(2D)可视化微观模型实验,以分析驱油机理。研究了采油的各个方面,例如热量的产生,油的粘度降低,泡沫的产生,轮廓控制和热泡沫的协同作用。结果表明,SGHFs可从均质(渗透率与2 Darcy相似)单层地层中提高33.9%的采收率,并从非均质(渗透率> 10)多层地层中提高20.4%的采收率。 SGHF的增量采油量远高于常规泡沫或不带泡沫的自生热(SGH)。 SGHF化学反应产生的热量使原油温度提高了13摄氏度,使原油粘度降低了35%,并通过降低了迁移率帮助提高了采油率。而且,在原油存在下,SGHF产生的泡沫对轮廓(一致性)控制有显着影响。热量与SGHF化学反应产生的泡沫之间的协同作用可以解释为(1)二维微观模型可以看出,化学反应可以产生小的且均匀的泡沫,可以堵塞多孔介质中的大孔并提高清扫效率和(2)由于泡沫的存在而产生的均匀吹扫效率可以帮助热量分布,并使温度沿着沙堆均匀上升,这有利于降低整个多孔介质中的原油粘度并提高采油率。

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