In-Depth Water Conformance Control: Design, Implementation and Surveillance of the First Thermally Active Polymers Treatment TAP in a Colombian Field

M. Gutierrez, Joan Sebastian García, Ruben Castro, Tatiana Yiceth Zafra, Jonattan Rojas, Rocio Macarena Ortiz, H. Quintero, H. García, Luis Niño, Jhon Amado, D. Quintero, M. Kiani
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Abstract

The Yariguí-Cantagallo is a mature oil field located in the western flank of the middle Magdalena valley basin in Colombia. Oil production started in 1941 and has been supported by water injection since 2008 with the aim of maintaining the pressure in the reservoir and increasing oil production. However, due to the channeling of the injected water, the water cut in some wells has been increasing, reaching values greater than 90%. Therefore, ECOPETROL S.A. implemented the first deep conformance treatment in Colombia through the design, execution, monitoring and evaluation of the technology in the YR-521 and YR-517 patterns for improving sweep efficiency of the waterflooding process. Brightwater® technology (also known as Thermally Active Polymer, TAP) has been used as an in-depth conformance improvement agent in reservoirs under waterflood suffering from the presence of thief zones or preferential flow channels. BrightWater® consists of expandable submicron particles injected downhole with a dispersive surfactant as a batch using injection water as a carrier. The selection of the injection patterns and treatment volume estimation was carried out through analysis of diagnostic plots and analytical pattern simulations. Treatment design and chemistry selection were based on reservoir characteristics, especially the temperature profile between the injector and offset producing wells in each pattern. Thus, laboratory tests with the representative fluids at various temperatures were carried out. Injection in the first pattern began on December 14, 2020, with a cumulative 6344 bbls of water containing TAP, at an injection rate of 700 bpd, gradually increasing the concentration from 3,500 ppm to 12,000 ppm. Once the injection was completed in this pattern and using the same surface facility, the second injection pattern was executed, on December 23, 2020. In the second pattern a cumulative of 9152 bbls of water containing TAP was injected at an injection rate of 700 bpd at concentration from 3500 ppm up to 8000 ppm. This paper summarizes the first TAP pilot implementation in Colombia and will describe the methodology and results of project QAQC monitoring and injection-production. Based on results to date, after one year monitoring (decrease in water cut up to 6%, in some wells, with consequent increase in oil recovery up to 18,642 STB), five additional treatments are planned in other injection patterns in this field between 2022 and 2023. It was validated that the deep conformance improvement technology allows blocking the preferential flow channels, reaching new areas with high oil saturation. Incremental oil production, potential increase in reserves, and reduction of OPEX due to lower water production were some of the observed benefits from this trial. Likewise, calculations show positive impacts in reducing the carbon footprint and water management.
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深度水一致性控制:哥伦比亚油田首个热活性聚合物处理TAP的设计、实施和监测
Yariguí-Cantagallo是位于哥伦比亚中部Magdalena山谷盆地西侧的成熟油田。该油田于1941年开始采油,自2008年以来一直通过注水支持,目的是保持油藏压力并提高产量。然而,由于注入水的窜流,一些井的含水率一直在增加,达到90%以上。因此,ECOPETROL S.A.通过设计、实施、监测和评估YR-521和YR-517区块的技术,在哥伦比亚实施了第一个深度一致性处理,以提高水驱过程的波及效率。Brightwater®技术(也被称为热活性聚合物,TAP)已被用作水驱油藏中存在盗窃层或优先流动通道的深度稠度改善剂。BrightWater®是将可膨胀的亚微米颗粒与分散性表面活性剂一起注入井下,以注入水作为载体。通过分析诊断图和分析模式模拟进行注射模式的选择和处理量的估计。处理方案的设计和化学药剂的选择是基于储层特征,特别是每个模式下注入井和邻井生产井之间的温度分布。因此,对具有代表性的流体在不同温度下进行了实验室测试。第一种模式于2020年12月14日开始注入,累计注入6344桶含有TAP的水,注入速度为700桶/天,浓度从3500 ppm逐渐增加到12000 ppm。在此模式下,使用相同的地面设施完成注入后,将于2020年12月23日执行第二种注入模式。在第二种模式中,以700桶/天的注入速率累计注入9152桶含TAP的水,注入浓度从3500ppm到8000ppm。本文总结了在哥伦比亚的第一次TAP试点实施,并将描述项目QAQC监测和注入生产的方法和结果。根据迄今为止的结果,经过一年的监测(一些井的含水率下降了6%,采收率提高了18642 STB),计划在2022年至2023年期间对该油田的其他注入模式进行5次额外的处理。实验结果表明,深层一致性改善技术可以阻断优先流动通道,到达新的高含油饱和度区域。增产、潜在的储量增加以及由于产水量减少而降低的运营成本是该试验的一些观察到的好处。同样,计算也显示了在减少碳足迹和水管理方面的积极影响。
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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