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Real-Time Resistivity Monitoring Tool for In-Situ Foam Front Tracking

机译:用于原位泡沫前跟踪的实时电阻率监测工具

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Surfactant Foam assisted CO2 EOR, though getting traction for its environomic mobility control potential, faces numerous challenges for deployment in HPHTHS heterogeneous carbonate reservoirs. Amongst the major challenges, the first is the lack of a surfactant formulation compatible with our carbonate reservoirs and the second is the absence of a foam and CO2 front monitoring tool either at laboratory or field scale. In this study, a novel monitoring technique has been developed to track quality of the foam while core- flooding. This is essential to capture the onset formation, development rate and break-through of the said foam across varying length of core-plugs. This has been previously conducted in lab-scale by virtue of pressure response with or without expensive imaging methods. This tool complements the conventional method of studying pressure response with resistance measurements across the core allowing tracking of the foam generation and propagation. Various preconditioning smart brines (SB) were alternatively injected with the non-ionic surfactant APG, co-injected with gas, to generate foam in-situ in carbonate reservoir samples. In addition, we briefly discuss a new idea involving resistivity and pressure measurements for the optimization of foam (and CO2 foam) injection into porous media The foam generation, stability and breakthrough were studied as a function of salinity, ion composition and injected pore volumes of the various brines and surfactant. Core-plugs of 2 different rock types were flooded with 4 variations of smart brines at a constant flow rate. The tested formulations were ramped up from 2 to 8 pore volumes. The response of the ΔP/PV integrated with the Δρ/PV curves were analysed to detect foam generation and breakthrough. This allowed an immediate characterization of the foam performance providing capability of tracking the foam formation/dissipation across the length of the core- plugs, essential for compatible successful foam formulation. This novel method allowed for instantaneous resistance observations in lab-scale along with the pressure response. The performance of the monitoring technique provided a new dimension in understanding foam flooding. This was integrated to provide comprehensive analysis of the formulated foam. Our innovative method provides the capability of quicker screening to successfully generate foam in-situ in high salinity, hardness and heterogenic environment.
机译:表面活性剂泡沫辅助CO2 EOR虽然对其环境迁移率控制势进行牵引,但在HPHTHS的异质碳酸盐储层中展开了许多挑战。在主要的挑战中,首先是缺乏与我们的碳酸盐储层相容的表面活性剂配方,第二种是在实验室或场比例下不存在泡沫和二氧化碳前监测工具。在这项研究中,已经开发了一种新颖的监测技术来跟踪泡沫的质量,而核心泛滥。这对于捕获所述泡沫的起始形成,开发速率和断裂,这对于芯塞的变化长度来说是必不可少的。这是通过使用压力响应或没有昂贵的成像方法的压力响应来进行的。该工具补充了使用核心的电阻测量的传统方法,允许跟踪泡沫产生和传播。各种预处理智能盐水(Sb)可选合地用非离子表面活性剂APG注射,共注入气体,以在碳酸盐储层样品中产生泡沫原位。此外,我们简要讨论了涉及用于优化泡沫(和二氧化碳泡沫)注射到多孔介质的电阻率和压力测量的新想法,以盐度,离子组成和注射孔体积的函数研究了泡沫产生,稳定性和突破各种盐水和表面活性剂。 2种不同岩石类型的核心插头被饱和4种变化,以恒定的流速。测试的制剂从2〜8个孔隙体积增加。分析了与ΔP/ PV曲线集成的ΔP/ PV的响应以检测泡沫产生和突破。这允许立即表征泡沫性能,提供在核心塞的长度上跟踪泡沫形成/耗散的能力,这对于兼容的成功泡沫制剂是必不可少的。这种新的方法允许实验室标度的瞬时阻力观察以及压力响应。监控技术的性能在了解泡沫洪水中提供了一种新的维度。这一点是对配方泡沫的综合分析。我们的创新方法提供了在高盐度,硬度和异常环境中成功产生泡沫原位的更快筛选的能力。

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