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Laboratory Evaluation of Novel Surfactant for Foam Assisted Steam EOR Method to Improve Conformance Control for Field Applications

机译:泡沫辅助蒸汽EOR方法新型表面活性剂的实验室评价,提高现场应用综合控制

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Steam injection is a widespread thermal enhanced oil recovery (EOR) method to increase oil mobility. The introduction of steam heats the reservoir, ultimately lowering oil viscosity and in turn enhancing heavy oil recovery. In the steam injection process, recovery of oil is limited by steam channeling due to reservoir heterogeneities. Early breakthrough implies that there is a large consumption of steam and incomplete reservoir drainage. Injection of surfactant with steam and a non-condensable gas such as nitrogen can generate foam in situ. Foam will redirect steam, increase apparent viscosity and reduce steam channeling. Although the technology is promising, it is not always economically attractive due to the large volumes that must be injected continuously, high adsorption of surfactant on reservoir rocks, and limited thermal stability of the surfactant. The opportunity exists to design steam foam surfactant formulations with improved performance at high temperature. In this paper, a systematic approach to screen surfactants for field applications at high temperature is presented. A feasibility test was conducted with the surfactant formulation (HSF-X) at target reservoir conditions to understand the thermal stability and adsorption behavior of the surfactant. Investigation found that the thermal decomposition and adsorption of the surfactant on sandstone rock under static conditions was mimimum at 200°C. In core flood testing conducted using silica sand and natural sandstone cores, foam generated by injecting N2 and HSF-X surfactant solution was able reduce steam mobility between 40 to 100 times at 100°C and 10 to 15 times at 200°C more compared to steam mobility in the absence of the foam. Finally oil recovery experiments at 200°C using silica sand cores indicated the ability of the HSF- X surfactant to foam in the presence of oil and enhance recovery of oil (a +20% increase in the original oil in place (OOIP) was observed).
机译:蒸汽喷射是一种广泛的热增强型油回收(EOR)方法,以增加油动流动性。蒸汽引入加热储层,最终降低油粘度,并又提高重油回收。在蒸汽喷射过程中,由于储层异质性,通过蒸汽通道的恢复受到限制。早期突破意味着蒸汽和储层排水的大量消​​耗。用蒸汽注射表面活性剂和诸如氮的不可冷凝气体可以原位产生泡沫。泡沫将重定向蒸汽,增加表观粘度并减少蒸汽通道。虽然该技术很有希望,由于必须连续注射的大容量,表面活性剂在储层岩石上的高吸附和表面活性剂的热稳定性有限,并且表面活性剂的热稳定性有限,但它并不总是有吸引力。有机会设计蒸汽泡沫表面活性剂配方,在高温下具有改善的性能。本文介绍了在高温下筛选用于筛选现场应用的表面活性剂的系统方法。在靶储层条件下用表面活性剂制剂(HSF-X)进行可行性测试,以了解表面活性剂的热稳定性和吸附行为。调查发现,在静态条件下砂岩岩体上的热分解和吸附在砂岩岩体下的200℃下是最大的。在使用硅砂和天然砂岩芯进行的核心泛洪测试中,通过喷射N2和HSF-X表面活性剂溶液产生的泡沫在100℃和10至15倍的情况下,与...相比,将蒸汽迁移率降低40至100倍。在没有泡沫的情况下蒸汽流动性。最后,使用二氧化硅砂芯的200℃下的油回收实验表明了HSF-X表面活性剂在油的存在下泡沫的能力,并增强油的恢复(A + 20%的原始油的增加(OoIP)被观察到)。

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