聚合物在恶劣温度和盐度条件下的稳定性

T. Skauge, P. A. Ormehaug, A. Alsumaiti, S. Masalmeh, A. Skauge
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引用次数: 1

摘要

聚合物驱在中东地区的碳酸盐岩储层中具有巨大的提高采收率潜力。ADNOC已经制定了EOR路线图来实现其中的一些储量。该路线图的一个里程碑是识别和验证在高温和高盐度条件下具有良好性能的聚合物。储层条件包括温度在100 ~ 130℃之间,地层盐水TDS超过20万ppm,碳酸盐岩中二价离子浓度高。这些条件已经超出了合成聚合物和大多数生物聚合物的限制。在这里,我们报告了一些合成聚合物在高温、高盐度(HTHS)条件下在厌氧条件下的热稳定性测量。设计并制作了定制的热稳定室和注水钻机,在不接触氧气或铁的情况下进行存储和测量。采用不同比例的酰胺、丙烯酸酯、ATBS和NVP组成的一系列合成聚合物,在120℃下进行了长达2年的温度稳定性测试。从一开始就频繁地测量剪切粘度,而在粘度随温度的变化趋势确定后,两次测试之间的时间增加。通过测量长连续油管上的压差来确定粘度。用~200 ~ ~ 180000 mg/L TDS三种不同的盐水作为溶剂。结果表明,低ATBS和/或NVP的聚合物在高温高盐复合条件下稳定性差,降解时间短。高ATBS度的聚合物在高温高压条件下表现出良好的稳定性。对于这些聚合物,高盐度可能通过稳定聚合物构象来提高稳定性。在本文中,我们报告了一些聚合物在高温高压条件下的热稳定性,使用定制设计的热稳定性室和驱油钻机进行储存和粘度测量。该设计与其他方法相比有了显著的改进,在测量过程中,样品要么被移除并暴露在空气中,要么在测量过程中打开到惰性气氛中。发现了在高温高压条件下稳定的聚合物,扩大了聚合物提高采收率的应用范围,适用于温度高达120℃的碳酸盐岩油藏和高矿化度的地层水。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Polymer Stability at Harsh Temperature and Salinity Conditions
Polymer flooding has a large potential for unlocking EOR reserves in carbonate reservoirs in the Middle East. ADNOC has developed an EOR roadmap to realize some of these reserves. A milestone on this roadmap is to identify and verify polymers that have good performance at high temperature and high salinity conditions. The reservoir conditions include temperatures in the range of 100 – 130 ºC and formation brines of more than 200 000 ppm TDS with high concentrations of divalent ions in carbonate rock. These conditions have been beyond the limitations of synthetic polymers and most biopolymers. Here we report thermal stability measurements performed at anaerobic conditions for a number of synthetic polymers at high temperature, high salinity (HTHS) conditions. A custom thermal stability chamber and flooding rig was designed and produced where storage and measurements were performed without contact with oxygen or iron. A series of synthetic polymers with different ratios of the monomers amide, acrylate, ATBS and NVP were tested for temperature stability for up to 2 years at 120 ºC. Shear viscosity was measured frequently from the start while the time between tests was increased after trends in viscosity versus temperature was established. The viscosity was determined by measuring the differential pressure over a long coiled tubing. Three different brines ranging from ~200 to ~180 000 mg/L TDS were used as solvents. The results show that polymers with a low degree of ATBS and/or NVP have poor stability at the combined conditions of high temperature and high salinity and degrade within a short time. Polymers with a high degree of ATBS showed good stability at HTHS conditions. For these polymers high salinity improved stability, probably by stabilizing polymer conformation. In this paper, we report thermal stability at HTHS conditions for a number of polymers using a custom designed thermal stability chamber and flooding rig for storage and viscosity measurement. The design gives significant improvement over other methods where samples are either removed and exposed to air during measurement or opened to inert atmosphere during measurement. Polymers stable at HTHS conditions were identified, expanding the boundaries for polymer EOR applications to carbonate reservoirs with temperatures up to 120 ºC and high salinity formation water.
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