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Modeling Gelation Time of Organically Crosslinked Polyacrylamide Gel System for Conformance Control Applications

机译:用于组成控制应用的有机交联聚丙烯酰胺凝胶系统的凝胶化时间

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Gel-based conformance control has been successfully applied in both sandstone and carbonate reservoirs. However, deep conformance-control in high-temperature reservoirs is still a challenge due to fast gelation. Gelation time depends on several factors. Successful modeling of the different parameters’ effects on gelation time is invaluable for formulation optimization to realize sufficient gelation-time for deep- diversion. In this work, a laboratory study was conducted to investigate and model gelation-time for organically-crosslinked Polyacrylamide formulations. Sulfonated polyacrylamides with different molecular weights were used. The solutions were organically crosslinked using a polyethylenemine (PEI). The effects of different factors including temperature, brine salinity, pH, and polymer and cross-linker concentrations on gelation time were investigated using bottle tests and rheological measurements. For bottle tests, the solutions are prepared and aged in an oven. The vials are then retrieved and visually examined for gelation before being returned to the oven. For rheological measurement, dedicated solutions are prepared in separate vials and aged in the oven. Each vial is then retrieved where the solutions viscous and elastic moduli are measured. The results indicate that polyacrylamide/PEI gel exhibits good thermal stability and gelation time reaches up to two and a half days at 95°C. The gelation time decreases with increasing temperature, polymer molecular weight, and polymer and crosslinker concentrations. However, there were lower limits for the polymer and crosslinker concentrations below which gels were not observed. Brine salinity and pH showed a wide range of effects on gelation time. Gelation time slightly increases with increasing the solution salinity at a fixed pH of around 8.0. A mathematical model was developed based on the experimental results to capture the effects of the main parameters. The predictable equation of gelation time was constructed using multivariable regression method, and the model successfully predicts the gelation time of the conformance control system at a fixed pH value of around 8.0. The good agreement is illustrated by the R-square value being around 98%. Furthermore, the model shows that temperature posses the highest impact on gelation time followed by the crosslinker concentration and brine salinity. The developed mathematical model can be used to predict the gelation time of a polyacrylamide-PEI gel system. In addition, it can be utilized to optimize a given gel design and further validate the applicability of a given polymer/crosslinker formulation for deep fluid diversion application.
机译:凝胶基一致性控制已成功应用于砂岩和碳酸盐储层。然而,由于快速凝胶化,高温水库中的深度符合控制仍然是一个挑战。凝胶化时间取决于几个因素。成功建模不同参数对凝胶化时间的影响对于配方优化来说是非常无价的,以实现深度转移的足够凝胶化时间。在这项工作中,进行了实验室研究以研究有机交联的聚丙烯酰胺制剂的凝胶化时间。使用具有不同分子量的磺化聚丙烯酰胺。使用聚乙烯胺(PEI)有机溶液组合交联。使用瓶试验和流变测量研究了不同因素,包括温度,盐水盐度,pH和聚合物和聚合物和交联浓度的交联时间。对于瓶子测试,制备溶液并在烘箱中老化。然后在返回烘箱之前检索瓶子并视觉检查凝胶化。为了流变测量,专用溶液在单独的小瓶中制备并在烤箱中老化。然后检索每个小瓶,其中测量溶液粘性和弹性模量。结果表明,聚丙烯酰胺/ PEI凝胶表现出良好的热稳定性,凝胶化时间在95℃下达到两天和半天。随着温度,聚合物分子量和聚合物和交联剂浓度的增加,凝胶化时间降低。然而,在未观察到未观察到凝胶的聚合物和交联剂浓度的较低限制。盐水盐度和pH显示出对凝胶时间的各种影响。随着固定pH值的固定pH值,凝胶化时间略有增加。基于实验结果开发了数学模型,以捕获主要参数的影响。使用多变量回归方法构建凝胶化时间的可预测方程,并且模型成功地预测了符合控制系统的固定pH值为约8.0的凝胶化时间。 R-Square值达到98%左右的良好协议。此外,该模型表明,温度对凝胶时间的影响最高,然后是交联剂浓度和盐水盐度。开发的数学模型可用于预测聚丙烯酰胺 - PEI凝胶系统的凝胶化时间。此外,它可以用于优化给定的凝胶设计,并进一步验证给定聚合物/交联剂配方的适用性用于深流体导流施加。

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