利用高pH下聚合物溶液性质的变化提高碱驱聚合物的经济性

L. Nurmi, R. Hincapie, T. Clemens, S. Hanski, Ante Borovina, H. Födisch, A. Janczak
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引用次数: 1

摘要

碱聚合物(AP)驱油是一种很有前途的提高原油采收率(EOR)的方法,可以提高活性油的采收率。为了优化原油的增量采收率,必须仔细选择碱和聚合物的类型和浓度。除了常规的聚合物驱实验室测试外,还需要研究高pH值对聚合物的影响及其随时间变化的性质。考虑近井和油藏效应是设计该工艺的关键。我们正在展示如何理解和利用聚合物在高pH环境中的性能,从而降低AP项目的成本、增加注入能力和提高采收率。对奥地利Matzen油田AP驱的聚合物性能进行了评价。评估包括在高pH条件下老化过程中聚合物流变学的变化,相行为测试,以及使用老化和未老化聚合物溶液进行单/两相岩心驱油。此外,还测量了老化聚合物的吸附和界面张力。在储层温度下的厌氧条件下,通过高温加速法进行了老化研究。聚合物的水解程度随时间的推移是通过核磁共振确定的,并与粘度性能有关。Matzen AP驱项目中的AP条件(pH > 10)导致测试HPAM的聚合物水解初始速率比中性pH水平下的水解速率提高了100倍。这导致聚合物溶液粘度在49°C的初始条件下,在几天内迅速增加了160%,之后增加趋于平稳。在较高温度下的加速老化实验预测了增加的粘度水平的长期稳定性。在具有代表性的岩心中进行了单相注入试验,验证了在相同聚合物浓度下老化溶液与未老化溶液的性能。与传统的中性pH条件相比,AP条件下聚合物的保留率降低。两期岩心驱油试验表明,在油藏条件下聚合物粘度增加。老化和未老化聚合物溶液的驱替效率相似,证实了使用较低的聚合物浓度和利用由于水解而增加的聚合物粘度可以节省成本的潜力。结果表明,碱聚合物工程的设计需要考虑聚合物流变性随时间的变化。碱聚合物项目的成本可以降低,因为相同的驱替效率所需的聚合物浓度较低,聚合物的保留率也较低。碱聚合物工程的有效设计应考虑到未老化聚合物的良好注入性和聚合物溶液在碱中的老化性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improving Alkali Polymer Flooding Economics by Capitalizing on Polymer Solution Property Evolution at High pH
Alkali Polymer (AP) flooding is a promising Enhanced Oil Recovery (EOR) method to increase oil recovery from reactive oils. It is essential to carefully select the alkali and polymer type and concentration to optimize incremental oil recovery. In addition to the conventional laboratory tests for polymer flooding, the effects of the high pH on the polymer and its evolving properties over time need to be investigated. Consideration of near-wellbore and reservoir effects is a key in designing the process. We are showing how understanding and taking advantage of the polymer performance in a high pH environment allows to reduce costs, increase injectivity and incremental oil recovery for AP projects. The polymer performance was evaluated for AP flooding of the Matzen field (Austria). Evaluations included changes in polymer rheology during aging at high pH conditions, phase behavior tests, and single/two-phase core floods with aged and non-aged polymer solutions. In addition, adsorption of the aged polymer and interfacial tension was measured. The aging was studied in anaerobic conditions at reservoir temperature and through an accelerated method at elevated temperature. The degree of polymer hydrolysis over time was determined via NMR and linked to viscosity performance. The AP conditions in the Matzen AP flooding project (pH > 10) lead to an increased initial rate of polymer hydrolysis of the tested HPAM by a factor of 100 compared to hydrolysis at a neutral pH level. This resulted in a rapid increase in polymer solution viscosity of 160 % compared with initial conditions within days at reservoir temperature of 49 °C, after which the increase leveled off. Accelerated aging experiments at higher temperature predict long-term stability of the increased viscosity level for several years. Single-phase injection test in representative core confirmed the performance of the aged solution compared to a non-aged solution at the same polymer concentration. The retention of polymers is reduced in AP conditions compared with traditional neutral pH conditions. Two-phase core flood tests showed the increased polymer viscosity at reservoir conditions. The displacement efficiency of the aged and non-aged polymer solution was similar confirming the potential for cost savings using lower polymer concentration and making use of the increased polymer viscosity owing to hydrolysis. The results show that the design of alkali polymer projects needs to take the changing polymer rheology with time into account. The costs of alkali polymer projects can be reduced owing to the lower required polymer concentrations for the same displacement efficiency and reduced retention of polymer. An efficient design of alkali polymer projects takes good injectivity of non-aged polymers and the aging of the polymer solutions in alkali into account.
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