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Some Key Features to Consider When Studying Acrylamide-Based Polymers for Chemical Enhanced Oil Recovery

机译:在研究基于丙烯酰胺的聚合物以提高化学采油率时应考虑的一些关键特征

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Among Chemical Enhanced Oil Recovery (CEOR) methods, polymer flooding is a straightforward technique with a long commercial history and proven results. It consists in injecting polymer-augmented water into a subterranean formation in order to improve, thanks to the viscosity increase, the sweep efficiency in the reservoir and provides a mobility control between water and the hydrocarbons. However, implementing successfully a polymer flood in the field requires specific know-how to avoid polymer degradation and associated viscosity loss. The first stage begins with the selection of the right polymer for the reservoir, depending on the water quality, temperature, permeability and presence of contaminants such as iron, hydrogen sulfide and oxygen. Several laboratory tests have to be performed to ensure the long term stability of the product as well as core flooding experiments to check parameters such as injectivity and propagation through the porous medium. The next step is the design and selection of equipment for the dissolution and the injection of the polymer solution into the reservoir. Surface facilities are paramount for the quality of the injected solution: the goal is to allow a good hydration, maturation and transport of the solution while avoiding any type of degradation that can occur either chemically (oxygen ingress) or mechanically (chokes, centrifugal pumps). Another aspect that can be assessed is the degradation of the back -produced polymer. Several studies have shown that there is no influence of the polymer on the separation of crude and water; the polymer being water-soluble. However, when the viscosity of the produced water is above 4 mPa.s, a treatment may be operated before the water treatment process to avoid any difficulty in the surface facilities and an optimum efficiency.
机译:在化学强化采油(CEOR)方法中,聚合物驱是一种简单的技术,具有悠久的商业历史和久经考验的结果。它包括将聚合物增强的水注入地下地层,以提高粘度,从而提高储层的扫除效率,并提供水和碳氢化合物之间的迁移率控制。但是,要在现场成功实施聚合物驱,需要有专门的知识来避免聚合物降解和相关的粘度损失。第一阶段从为水库选择合适的聚合物开始,这取决于水质,温度,渗透性以及污染物(例如铁,硫化氢和氧气)的存在。必须进行几次实验室测试以确保产品的长期稳定性,并进行岩心驱油实验,以检查诸如注入性和通过多孔介质的传播等参数。下一步是设计和选择用于溶解聚合物溶液并将其注入储层的设备。表面设施对于注入溶液的质量至关重要:目标是使溶液良好地水合,成熟和运输,同时避免任何可能发生的化学(氧气进入)或机械(扼流圈,离心泵)降解类型。可以评估的另一方面是反向产生的聚合物的降解。几项研究表明,该聚合物对原油和水的分离没有影响。该聚合物是水溶性的。然而,当采出水的粘度高于4mPa.s时,可以在水处理过程之前进行处理以避免表面设施的任何困难和最佳效率。

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