通过试点和实地规模的模拟研究,评估酸性水库中的修饰基托桑复合物
Hamid Khattab1, Ahmed A Gawish1, Sayed Gomaa2,3
1Petroleum Engineering Department, Faculty of Petroleum & Mining Engineering, Suez University, Cairo, Egypt.
Scientific reports
|May 9, 2024
概括
修改后的奇托桑生物聚合物显著增强了酸性水库中的石油回收. 这种先进的材料表现出优越的粘度和抗压性,与未经修改的奇多相比,提高了11%的油提取率.
科学领域:
- 石油工程是石油工程中的一个.
- 聚合物科学 聚合物科学
背景情况:
- 使用生物聚合物的化学洪水正在为增强石油回收 (EOR) 获得吸引力,特别是在具有挑战性的酸性水库中.
- 奇托是一种天然生物聚合物,具有前景,但需要进行修改,以在恶劣的水库条件下获得最佳性能.
研究的目的:
- 为了研究修改的基多生物聚合物在酸性环境中增强石油回收的有效性.
- 在模拟的水库条件下 (盐度,温度,压力,pH) 评估改性基托桑的质行为和性能.
主要方法:
- 奇托通过将其与乙烯基/烯基单体通过乳液聚合物化进行组合而改性.
- 在模拟的水库条件下评估了风湿性质.
- 进行了实验室规模的洪水实验和先进的水库模拟 (tNavigator).
主要成果:
- 与未经修改的基托桑相比,改性基托桑在酸性介质中表现出增强的粘度和优越的抗压效应.
- 实验室的洪水试验显示,使用改性基多的石油回收比未改性基多提高了11%.
- 储水模拟证实了复合物的有效性,实现了48%的回收因子,而原生酸盐的回收因子为39%,水泛滥的回收因子为37%.
结论:
- 改性酸盐生物聚合物代表了在酸性储库中增强石油回收的有希望的进步.
- 复合材料在性能和石油回收率上显示出显著的改进,表现优于传统方法.
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