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Propagation and Retention of Viscoelastic Surfactants in Carbonate Cores

机译:粘弹性表面活性剂在碳酸盐岩心中的传播和保留

摘要

Viscoelastic surfactant have found numerous application in the oil fields as fracturing and matrix acidizing fluid additives in the recent years. They have the ability to form long worm-like micelles with the increase in pH and calcium concentration, which results in increasing the viscosity and elasticity of partially spent acids. On one hand, concentration of surfactant in the fluids has profound effects on their performance downhole. Additionally, there is continuous debate in the industry on whether the gel generated by these surfactants causes formation damage, especially in dry gas wells. Therefore, being able to analyze the concentration of these surfactants in both live and spent acids is of great importance for production engineers who apply surfactant-based fluids in the oil fields. In the present work, a two-phase titration method was optimized for quantitative analysis of a carboxybetaine viscoelastic surfactant, and surfactant retention in calcite cores was quantitatively determined by two phase titration method and the benefits of using mutual solvents to break the surfactant gel formed inside the cores was assessed. On the other hand, high temperatures and low pH are usually involved in surfactant applications. Surfactants are subjected to hydrolysis under such conditions due to the existence of a peptide bond (-CO-NH-) in their molecules, leading to alteration in the rheological properties of the acid. The impact of hydrolysis at high temperatures on the apparent viscosity of carboxybetaine viscoelastic surfactant-based acids was evaluated in the present study, and the mechanism of viscosity changes was determine by molecular dynamics (MD) simulations.Our results indicate that, first, significant amount of surfactant has been retained in the carbonate matrix after acidizing treatment and there is a need to use internal breakers when surfactant-based acids are used in dry gas wells or water injectors. Second, hydrolysis at high temperatures has great impact on surfactant-acid rheological properties. Short time viscosity build-up and effective gel break-down can be achieved if surfactant-acid treatments are carefully designed; otherwise, unexpected viscosity reduction and phase separation may occur, which will affect the outcome of acid treatments.
机译:近年来,粘弹性表面活性剂作为压裂和基质酸化流体添加剂已在油田中得到广泛应用。随着pH和钙浓度的增加,它们具有形成长蠕虫状胶束的能力,从而导致部分废酸的粘度和弹性增加。一方面,流体中表面活性剂的浓度对其井下性能有深远影响。另外,在工业上关于由这些表面活性剂产生的凝胶是否引起地层损害,尤其是在干气井中,一直存在争论。因此,对于在油田中使用基于表面活性剂的流体的生产工程师而言,能够分析这些表面活性剂在活酸和废酸中的浓度非常重要。在目前的工作中,优化了一种两相滴定法以定量分析羧基甜菜碱粘弹性表面活性剂,并通过两相滴定法定量测定了方解石核中的表面活性剂保留量,以及使用互溶剂破坏内部形成的表面活性剂凝胶的好处对核心进行了评估。另一方面,表面活性剂的应用通常涉及高温和低pH。由于表面活性剂在分子中存在肽键(-CO-NH-),因此在这种条件下会发生水解,从而导致酸的流变特性发生变化。本研究评估了高温水解对羧基甜菜碱粘弹性表面活性剂基酸的表观粘度的影响,并通过分子动力学(MD)模拟确定了粘度变化的机理。在酸化处理后,大部分表面活性剂已保留在碳酸盐基质中,当在干气井或注水器中使用基于表面活性剂的酸时,需要使用内部破胶剂。第二,高温下的水解对表面活性剂-酸的流变性具有很大的影响。如果精心设计表面活性剂-酸处理剂,可以在短时间内增加粘度并有效地分解凝胶。否则,可能会发生意外的粘度降低和相分离,这将影响酸处理的结果。

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    Yu Meng;

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  • 年度 2011
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