Sensitivity Analysis of CO2 Minimum Miscibility Pressure Optimizes Gas-Injection EOR

C. Carpenter
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Abstract

This article, written by JPT Technology Editor Chris Carpenter, contains highlights of paper SPE 216683, “Large-Scale, High-Throughput Sensitivity Analysis of CO2 Minimum Miscibility Pressure To Optimize Gas-Injection EOR Processes,” by Ali Abedini, SPE, ZhenBang Qi, SPE, and Thomas de Haas, SPE, Interface Fluidics, et al. The paper has not been peer reviewed. Performance of CO2 injection relies on accurate CO2 minimum miscibility pressure (MMP) and miscibility data at reservoir conditions. A slim tube is the most-reliable tool to measure MMP under different miscibility mechanisms; however, it is very time- and capital-intensive, making it impossible to provide high-throughput data to assess the effect of other gases. Rising-bubble apparatus and vanishing-interfacial-tension techniques are cheaper and easier to run, but these methods are unable to capture different miscibility mechanisms fully. In the case study presented in the complete paper, the authors present a highly efficient microfluidic platform to measure, in a faster and easier manner, high-quality MMP data of CO2 with various impurities significantly. Conducting miscibility tests at high pressure or high temperature with live oil samples and real gas mixtures requires a platform capable of handling complex fluid systems at reservoir conditions. An advanced microfluidic system was used to perform a large set of miscibility/MMP tests to investigate the role of different impurities on the MMP of pure CO2 with an oil sample from a depleted reservoir in Alberta. The results reported demonstrate the capabilities of the new microfluidic approach to provide fast and accurate high-volume miscibility and MMP data for a wide range of gas compositions unobtainable by conventional methods. The portable microfluidic platform integrates fluid-control, microfluidic, and imaging systems, enabling performance of a series of miscibility and MMP measurements (Fig. 1a). The platform is equipped with three high-pressure pumps to control gas injection, oil injection, and backpressure. The gas sample, oil sample, and effluent are stored in sample bottles heated with a heating jacket and connected to the pumps. The valves and tubing are placed in a valve box that heats up internally. The manifold is the holder for the microfluidic chip and consists of bottom and top pieces that sandwich the chip. The bottom of the manifold is controlled by a hydraulic pump. The time-lapse imaging is performed using a microscope equipped with a high-resolution camera. Fig. 1b shows the microfluidic chip and the porous media design. The serpentine porous media, with a total length of 57 cm, contains circular pillars to promote multiple contacts in the system. Table 1 of the complete paper contains the list of the gases used in this study. The composition of the recycled gas includes approximately 86% CO2, approximately 7.7% methane, and other impurities. To validate the accuracy of the microfluidic MMP, the data were compared with the MMP data obtained with the slim tube. The measurements were conducted with pure CO2 and a mix of CO2 with recycled gas. While the tests were not performed at exactly the same conditions and in the same time frame, the results showed that the microfluidic MMP data were in good agreement with those of the slim-tube tests.​​​​
二氧化碳最小混溶压力敏感性分析优化注气采收率
本文由 JPT 技术编辑 Chris Carpenter 撰写,收录了 Interface Fluidics 公司的 Ali Abedini(SPE)、ZhenBang Qi(SPE)和 Thomas de Haas(SPE)等人撰写的 SPE 216683 号论文 "为优化注气 EOR 工艺而进行的大规模、高通量 CO2 最小混溶压力敏感性分析 "的要点。 该论文未经同行评审。 二氧化碳注入的性能取决于储层条件下准确的二氧化碳最小混溶压力 (MMP) 和混溶数据。细管是测量不同混溶性机制下 MMP 的最可靠工具;然而,它非常耗时耗资,无法提供高通量数据来评估其他气体的影响。上升气泡仪器和消失界面张力技术更便宜,也更容易操作,但这些方法无法完全捕捉到不同的混溶机制。在完整论文中介绍的案例研究中,作者提出了一种高效的微流控平台,能以更快、更简便的方式测量含有各种杂质的二氧化碳的高质量 MMP 数据。 在高压或高温条件下对实际油样和气体混合物进行混溶性测试,需要一个能够在油藏条件下处理复杂流体系统的平台。我们使用先进的微流控系统进行了大量的混溶性/MMP 测试,以研究不同杂质对纯二氧化碳与阿尔伯塔省枯竭油藏油样的 MMP 的影响。报告的结果表明,新的微流控方法能够为各种气体成分提供快速、准确的高容量混溶性和 MMP 数据,这是传统方法无法实现的。 便携式微流控平台集成了流体控制、微流控和成像系统,可进行一系列混溶性和 MMP 测量(图 1a)。该平台配备了三个高压泵,用于控制气体注入、油注入和背压。气样、油样和流出物储存在用加热套加热的样品瓶中,并与泵相连。阀门和管道放置在内部加热的阀门箱中。歧管是微流控芯片的支架,由夹住芯片的底部和顶部部件组成。歧管底部由液压泵控制。使用配备高分辨率相机的显微镜进行延时成像。图 1b 显示了微流控芯片和多孔介质设计。总长度为 57 厘米的蛇形多孔介质包含圆形支柱,以促进系统中的多重接触。完整论文的表 1 列出了本研究中使用的气体清单。回收气体的成分包括约 86% 的二氧化碳、约 7.7% 的甲烷和其他杂质。为了验证微流控 MMP 的准确性,我们将数据与使用细管获得的 MMP 数据进行了比较。测量使用了纯二氧化碳和二氧化碳与回收气体的混合物。虽然测试不是在完全相同的条件和时间范围内进行的,但结果表明微流控 MMP 数据与细管测试的数据非常一致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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