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Preparation and Performance Evaluation of Polymeric Microspheres Used for Profile Control of Low-Permeability Reservoirs

机译:用于低渗透储层型材控制的聚合物微球的制备和性能评价

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To improve in-depth profile control in a low-permeability reservoir, polymeric microspheres were used. A distillation–precipitation polymerization method was adopted to prepare nanometer-sized polymeric microspheres, whose structure, apparent pattern, thermal endurance, particle size, hydration, and swelling capacity were tested and analyzed by a series of techniques, including infrared spectroscopy, scanning electron microscopy, thermogravimetry, high-pressure and high-temperature rheometry, and dynamic light scattering. The prepared polymeric microspheres were copolymerization products of acrylamide, acrylic acid, and methyl methacrylate that were uniformly round with a centralized size distribution. The nanometer-sized microspheres had satisfactory hydration/swelling performance, indicating that they could act as oil displacement profile control agents. With the increase of shear rate, the apparent viscosity of the polymeric microspheres was significantly reduced, and the fluid possessed a pseudoplastic behavior. When the shear rate was 100–1000?s?1, the fluid demonstrated a Newtonian fluid behavior. After the polymeric microspheres were hydrated, the particle size distribution curve shows a normal distribution, reaching a maximum swelling size of 21.3 times that of the original microspheres. The plugging performance and deformability of the polymeric microspheres gradually enhanced with swelling time, which makes the microspheres effective pore channel plugging agents for delivering a better in-depth profile control effect in rock cores with lower permeability. The core flooding test showed that, for the heterogeneous core with a permeability of 10?μm2, polymer microspheres have good plugging effect.
机译:为了改善低渗透贮存器中的深度型材控制,使用聚合物微球。采用蒸馏沉淀聚合方法制备纳米尺寸的聚合物微球,其结构,表观图案,绝热性,粒度,水合和溶胀容量进行了测试,并通过一系列技术,包括红外光谱,扫描电子显微镜检查,热重试,高压和高温流变仪,以及动态光散射。制备的聚合物微球是丙烯酰胺,丙烯酸和甲基丙烯酸甲酯的共聚产物,其具有集中尺寸分布的均匀圆形。纳米尺寸的微球具有令人满意的水合/溶胀性能,表明它们可以充当油位移轮廓控制剂。随着剪切速率的增加,聚合物微球的表观粘度显着降低,流体具有假塑性行为。当剪切速率为100-1000?1时,流体展示了牛顿流体行为。在水合聚合物微球后,粒度分布曲线显示正常分布,达到原始微球的最大溶胀尺寸为21.3倍。聚合物微球的堵塞性能和可变形性随溶胀时间逐渐增强,这使得微球有效的孔通道堵塞剂,用于在具有较低渗透性的岩石芯中提供更好的深入剖面控制效果。核心泛洪试验表明,对于具有10Ωμm2的渗透性的异质芯,聚合物微球具有良好的堵塞效果。

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