对于pH敏感的可逆逆乳液的相位逆转机制
Fei Liu1, Yongfei Li2, Xiaqing Li3
1College of Petroleum Engineering, Shandong Institute of Petroleum and Chemical Technology, Dongying 257061, China.
Molecules (Basel, Switzerland)
|November 14, 2023
概括
研究人员开发了一种新的可逆乳化剂,DMOB,用于钻井流体,使石油转化为水或水转化为石油的有效转化. 这一进步优化了钻井流体的性能,通过控制 pH 调整的相位逆转,并结合有机粘土来提高稳定性.
科学领域:
- * 材料科学 材料科学
- * 合体和表面化学
- * 石油工程 石油工程
背景情况:
- *可逆乳化钻井液提供了石油和水基系统的优势.
- *核心技术依赖于可逆乳液及其乳化剂.
- * 了解相位逆转机制对于优化钻井流体性能至关重要.
研究的目的:
- *为了制备和描述一种新的可逆乳化剂,DMOB (N,N-二甲基-N'-油酸-1,4-butanediamine).
- * 研究乳液和钻井液的可逆相反转机制.
- * 探索有机粘土对可逆乳化钻井液的影响.
主要方法:
- * DMOB可逆乳化剂的合成和表征.
- *通过HLB和泽塔电位测量对乳液相位逆转的研究.
- *分析pH诱导的相变和有机粘土的作用.
- * 乳液和油水接口的微结构分析.
主要成果:
- * DMOB证明了可逆相逆转,通过pH调整控制.
- *油水界面表面活性剂分布的变化调节了HLB值.
- *高达2.50g/100ml的有机粘土保持了可逆相反性能.
- * 有机粘土与表面活性剂形成复合物,影响微观结构并增强稳定性.
结论:
- * 该研究阐明了DMOB用于可逆相逆的酸反应机制.
- * pH控制在乳液和钻井液中可逆相逆转时是有效的.
- *可添加有机粘土,以提高可逆乳化钻井液的稳定性,而不会影响性能.
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