利用乳清蛋白分离物作为CO2泡沫稳定剂提高采收率

Q4 Chemical Engineering
M. Said, M. Jaafar, S. Omar, Ali Mohamed Samin
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引用次数: 0

摘要

了解发泡性能的基本方面将影响其在不同浓度的临界聚集浓度(CAC)下的产生和稳定性、泡沫体积稳定性、泡沫高度、盐度影响和原油CO2泡沫稳定性。基于二氧化碳的强化采油技术被广泛用于从储层中提取额外的石油。蛋白质在界面处的吸附产生具有高粘度的极粘弹性层。本研究旨在研究乳清蛋白分离物(WPI)是否是一种可用于提高原油采收率的发泡剂。WPI降低了界面的表面张力,这也有通过形成粘弹性网络和指向高表面模量来揭示和稳定界面的倾向。相比之下,十二烷基硫酸钠(SDS)表面活性剂的表面张力比WPI低,但它们不会产生高模量界面。在石油和各种盐条件下,WPI比SDS泡沫更能稳定泡沫。与SDS泡沫相比,添加氯化钠(NaCl)增加了WPI泡沫的半衰期和泡沫体积。当NaCl浓度为2wt%及以上时,SDS发泡性和泡沫稠度显著降低,而WPI泡沫增加。原油对两种泡沫都有影响,但WPI泡沫没有SDS泡沫那么受影响,因为它与传统泡沫相比强度高。研究表明,WPI将界面张力从38降低到11 mN/m,并降低了表面张力(72.3降低到48 mN/m)。它足够低,可以作为发泡剂的替代品来提高石油的采收率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Utilization of Whey Protein Isolate as CO2 Foam Stabilizer for Enhanced Oil Recovery
Understanding the fundamental aspects of foaming properties will influence its generation and stabilization at different concentrations of the critical aggregation concentration (CAC), foam volume stability, foam height, salinity influences, and crude oil CO2-foam stability. Carbon-Dioxide based enhanced oil recovery techniques are widely employed to extract additional oil from the reservoir. The adsorption of protein at the interfaces produces extremely viscoelastic layers with high viscosity. This research aims to investigate whether whey protein isolate (WPI) is a foaming agent that can be used to improve oil recovery. WPI lowers the interfaces’ surface tension, which also has a propensity to disclose and stabilize the interface by forming a viscoelastic network and directing to high surface moduli. Comparatively, the surface tension is lowered by sodium dodecyl sulfate (SDS) surfactants than the WPI, but they do not produce a high modulus interface. WPI is demonstrated to be a greater foam stabilizer in oil and various salt conditions than SDS foam. Adding sodium chloride (NaCl) increased the half-life and volume of foam more on WPI foam compared to SDS foam. SDS foamability and foam consistency decreased dramatically at 2 wt% of NaCl concentration and above while WPI foam increased. The crude oil affected both foams, but WPI foam has not been affected as much as the SDS foam due to its high strength compared to traditional foams. The study shows that WPI reduced interfacial tension from 38 to 11 mN/m and reduced surface tension (72.3 to 48 mN/m). It was low enough and can be used as a substitute for a foaming agent to enhance the recovery of oil.
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来源期刊
ASEAN Journal of Chemical Engineering
ASEAN Journal of Chemical Engineering Chemical Engineering-Chemical Engineering (all)
CiteScore
1.00
自引率
0.00%
发文量
15
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