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首页> 外文期刊>Journal of Petroleum Science & Engineering >Study on rheology and microstructure of phenolic resin cross-linked nonionic polyacrylamide (NPAM) gel for profile control and water shutoff treatments
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Study on rheology and microstructure of phenolic resin cross-linked nonionic polyacrylamide (NPAM) gel for profile control and water shutoff treatments

机译:酚醛树脂交联非离子聚丙烯酰胺(NPAM)凝胶的流变和微观结构研究,用于控制和水截止处理

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摘要

Phenolic resin cross-linked polymer gel as a plugging agent for profile control and water shutoff has wide industrial applications. There have been many studies on the gel, but research on the rheology and microstructure has not been systematic. In this study, the rheological properties and microstructure of phenolic resin gel were measured by using a Haake Mars 60 rheometer and a Carl Zeiss Jena cryo-etching electron microscope. Viscosity and viscoelastic moduli of the gel rose constantly and the structure became denser during the gelation process. An increasing polymer or cross-linker concentration increased the viscosity and viscoelastic moduli of the gel. This increase is attributed to a higher polymer concentration contributing to form a stronger membrane structure and a higher cross-linker concentration making the density of the spherical particles higher. The addition of salt and acid affected the stability of the gel. As salinity increased or pH decreased, both the viscosity and viscoelastic moduli of the gel decreased. Combined with the microstructures of the gel systems, this outcome confirmed that salt and acid made the structure of the gel fragile and easily dehydrated. The results showed that phenolic resin gel (gelation temperature: 95 degrees C; aging time: 8 h) can maintain good stability under a salinity of less than 30,000 mg/L or alkaline conditions with pH 7. This study can help to understand the gelation mechanism of phenolic resin gel and the impact mechanism of various factors.
机译:酚醛树脂交联聚合物凝胶作为轮廓控制和水截止的堵塞剂具有宽的工业应用。对凝胶有很多研究,但对流变学和微观结构的研究尚未系统化。在该研究中,通过使用Haake Mars 60流变仪测量酚醛树脂凝胶的流变性和微观结构,以及Carl Zeiss Jena Cryo-蚀刻电子显微镜。凝胶的粘度和粘弹性模量不断上升,并且结构在凝胶化过程中变得更浓。增加的聚合物或交联剂浓度增加了凝胶的粘度和粘弹性模量。该增加归因于较高的聚合物浓度,其含有更强的膜结构和更高的交联剂浓度,使得球形颗粒的密度更高。添加盐和酸影响凝胶的稳定性。随着盐度的增加或pH降低,凝胶的粘度和粘弹性模量均降低。结合凝胶系统的微观结构,该结果证实盐和酸使凝胶的结构易碎并且容易脱水。结果表明,酚醛树脂凝胶(凝胶化温度:95℃;老化时间:8小时)可在盐度低于30,000mg / L或碱性条件下保持良好的稳定性,PH> 7.本研究可以有助于了解酚醛树脂凝胶的凝胶化机制以及各种因素的冲击机理。

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