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Experimental Investigation of Microscopic/Macroscopic Efficiency of Polymer Flooding in Fractured Heavy Oil Five-Spot Systems

机译:断裂重油五点系统聚合物驱微观/宏观效率的实验研究

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This paper concerns on experimental investigation of biopolymer/polymer flooding in fractured five-spot systems. In this study, a series of polymer injection processes were performed on five-spot glass type micromodels saturated with heavy crude oil. Seven fractured glass type micromodels were used to illustrate the effects of polymer type/concentration on oil recovery efficiency in presence of fractures with different geometrical properties (i.e., fractures orientation, length and number of fractures). Four synthetic polymers as well as a biopolymer at different levels of concentration were tested. Also a micromodel constituted from dead-end pores with various geometrical properties was designed to investigate microscopic displacement mechanisms during polymer/water flooding. The results showed that polymer flooding is more efficient by using hydrolyzed synthetic polymers with high molecular weight as well as locating injection well in a proper position respect to the fracture geometrical properties. In addition, by monitoring of microscopic efficiency, pulling, stripping, and oil thread flow mechanisms were detected and discussed. The results showed that flow rate, fluid type, polymer concentration, and geometrical properties of pores influence the efficiency of mentioned mechanisms. Furthermore, it was detected that polymer's velocity profile play a significant role on oil recovery efficiency by influencing both macroscopic and microscopic mechanisms. This study demonstrates different physical and chemical conditions that affect the efficiency of this enhanced oil recovery method.
机译:本文关注裂缝五点系统中生物聚合物/聚合物驱的实验研究。在这项研究中,一系列的聚合物注入过程是在重油饱和的五点玻璃型微模型上进行的。使用七个破裂的玻璃类型的微观模型来说明存在不同几何特性的裂缝(即裂缝的方向,裂缝的长度和数量)时聚合物类型/浓度对采油效率的影响。测试了四种浓度不同的合成聚合物以及生物聚合物。还设计了由具有各种几何特性的死角孔构成的微观模型,以研究聚合物/水驱过程中的微观驱替机制。结果表明,通过使用高分子量的水解合成聚合物以及将注入井相对于裂缝的几何特性适当地定位,聚合物驱油效率更高。另外,通过监视微观效率,检测并讨论了牵拉,剥离和油线流动机制。结果表明,流速,流体类型,聚合物浓度和孔的几何性质影响上述机理的效率。此外,还发现聚合物的速度分布通过影响宏观和微观机理,对采油效率起着重要作用。这项研究表明了不同的物理和化学条件会影响这种提高采油率方法的效率。

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