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pH-Sensitive Polymers for Novel Conformance-Control and Polymer-Flood Applications

机译:适用于新型一致性控制和聚合物注水应用的pH敏感聚合物

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Novel conformance-control and polymer-flood applications that exploit the pH sensitivity of partially hydrolyzed polyacrylamide (HPAM) are proposed. The key feature of this process is the injection of the HPAM solution under acidic conditions. The low pH makes polymer molecules coil tightly, resulting in a very low polymer-solution viscosity. This allows the polymer solution to be injected into the reservoir at a substantially reduced injection pressure. Once injected, the acid reacts with the formation minerals to cause a spontaneous pH increase, uncoiling the polymer chains and causing a large increase in solution viscosity. Such a viscosity-control scheme can be exploited for placement of a concentrated polymer solution in high-permeability zones, where it later viscosifies to divert subsequently injected fluids (in-depth conformance control), or to reduce the high pressure drop near the wellbore during polymer injection (injectivity improvement). Extensive laboratory experiments were systematically performed and interpreted to evaluate the novel applications of pH-sensitive HPAM. The evaluations require (a) quantification of steady-shear viscosities, (b) characterization of geochemical reactions with acids, and (c) transport evaluation of HPAM solutions in cores. Rheological measurements show that shear viscosities of HPAM solution have a pronounced, but reversible, dependence on pH. The peak pHs observed in several shut-ins guarantee that spontaneous geochemical reactions can return the polymer solution to its original high viscosity. The use of a weak acid is the key. Coreflood results show that the HPAM solution under acidic conditions can be propagated through cores with much higher mobility than at neutral pH. However, low-pH conditions increase adsorption (polymer loss) and require additional chemical cost (for acid). The optimum injection formulation (polymer concentration, injection pH) will depend on the specific reservoir mineralogy, permeability, salinity, and injection conditions.
机译:提出了利用部分水解聚丙烯酰胺(HPAM)的pH敏感性的新型一致性控制和聚合物驱应用。该过程的关键特征是在酸性条件下注入HPAM溶液。低pH值使聚合物分子紧密盘绕,从而导致非常低的聚合物溶液粘度。这使得聚合物溶液可以在大大降低的注入压力下注入到储层中。注入后,酸与地层矿物发生反应,导致pH值自发增加,使聚合物链解开并导致溶液粘度大幅增加。可以利用这种粘度控制方案将浓缩的聚合物溶液放置在高渗透率区域中,然后在该区域中进行增粘以转移后续注入的流体(深度一致性控制),或减少井眼期间井眼附近的高压降聚合物注入(提高注入性)。系统地进行了广泛的实验室实验并进行了解释,以评估pH敏感型HPAM的新应用。评估需要(a)定量测定稳态剪切粘度,(b)用酸进行地球化学反应的表征,以及(c)岩心中HPAM溶液的迁移评估。流变学测量表明,HPAM溶液的剪切粘度对pH具有明显但可逆的依赖性。在几个关闭状态中观察到的峰值pH值可确保自发的地球化学反应可使聚合物溶液恢复其原始的高粘度。使用弱酸是关键。 Coreflood结果表明,在酸性条件下,HPAM溶液可以以比中性pH高得多的迁移率通过核扩散。但是,低pH条件会增加吸附(聚合物损失),并需要额外的化学费用(用于酸)。最佳的进样配方(聚合物浓度,进样pH)将取决于特定的储层矿物学,渗透率,盐度和进样条件。

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