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Gelation Kinetics of Hydrogels Based on Acrylamide–AMPS–NVP Terpolymer Bentonite and Polyethylenimine for Conformance Control of Oil Reservoirs

机译:基于丙烯酰胺-AMPS-NVP三元共聚物膨润土和聚乙烯亚胺的水凝胶的凝胶动力学用于油藏的一致性控制

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摘要

Relatively smaller volumes of gelling systems had been used to address conformance problems located near the wellbore in oil reservoirs with harsh temperature and salinity conditions. These gelling systems were formulated with high concentrations of low-molecular-weight acrylamide-based polymers crosslinked with polyethylenimine (PEI). However, for in-depth conformance control, in which large gelant volumes and long gelation times were required, lower-base polymer loadings were necessary to ensure the economic feasibility of the treatment. In this study, a gelling system with high-molecular weight 2-acrylamido-2-methylpropane sulfonic acid (AMPS), N-vinyl-2-pyrrolidone (NVP), acrylamide terpolymer, and PEI, with the addition of bentonite as a filler, was formulated. The influence of the gelant formulation and reservoir conditions on the gelation kinetics and final gel strength of the system was investigated through bottle tests and rheological tests. The addition of clay in the formulation increased the gelation time, thermal stability, and syneresis resistance, and slightly improved the final gel strength. Furthermore, samples prepared with polymer and PEI concentrations below 1 wt %, natural bentonite, and PEI with molecular weight of 70,000 kg/kmol and pH of 11: (i) presented good injectivity and propagation parameters (pseudoplastic behavior and viscosity ~25 mPa·s); (ii) showed suitable gelation times for near wellbore (~5 h) or far wellbore (~21 h) treatments; and (iii) formed strong composite hydrogels (equilibrium complex modulus ~10–20 Pa and Sydansk code G to H) with low syneresis and good long-term stability (~3 to 6 months) under harsh conditions. Therefore, the use of high-molecular-weight base polymer and low-cost clay as active filler seems promising to improve the cost-effectiveness of gelling systems for in-depth conformance treatments under harsh conditions of temperature and salinity/hardness.
机译:已经使用相对较小体积的胶凝系统来解决温度和盐度条件苛刻的油藏中靠近井眼的一致性问题。这些胶凝体系是用高浓度与聚乙烯亚胺(PEI)交联的低分子量丙烯酰胺基聚合物配制的。但是,对于需要大量胶凝剂体积和长胶凝时间的深度一致性控制,为确保该处理的经济可行性,需要降低碱聚合物的用量。在这项研究中,胶凝体系由高分子量的2-丙烯酰胺基-2-甲基丙烷磺酸(AMPS),N-乙烯基-2-吡咯烷酮(NVP),丙烯酰胺三元共聚物和PEI组成,并添加了膨润土作为填充剂,已制定。通过瓶装试验和流变试验研究了胶凝剂配方和储层条件对胶凝动力学和最终胶凝强度的影响。在配方中添加粘土增加了胶凝时间,热稳定性和耐脱水收缩性,并略微提高了最终胶凝强度。此外,以聚合物和PEI浓度低于1 wt%,天然膨润土和分子量为70,000 kg / kmol,pH为11的PEI制备的样品表现出良好的注入性和传播参数(假塑性行为和粘度〜25 mPa· s); (ii)对于近井眼(〜5 h)或远井眼(〜21 h)处理显示出合适的胶凝时间; (iii)形成了坚固的复合水凝胶(平衡复模量〜10–20 Pa,Sydansk代码G至H),在苛刻的条件下具有低脱水收缩性和良好的长期稳定性(〜3至6个月)。因此,使用高分子量基础聚合物和低成本的粘土作为活性填料似乎有望提高在苛刻的温度和盐度/硬度条件下进行深度一致性处理的胶凝体系的成本效益。

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