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首页> 外文期刊>Petroleum Science and Technology >Application of ANFIS-GA as a novel and accurate tool for estimation of interfacial tension of carbon dioxide and hydrocarbon
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Application of ANFIS-GA as a novel and accurate tool for estimation of interfacial tension of carbon dioxide and hydrocarbon

机译:ANFIS-GA作为一种新颖的准确工具,用于估计二氧化碳和烃的界面张力

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摘要

In the recent years, the enhancement oil recovery processes become the one of the interesting topics in petroleum engineering because of declination of oil reservoirs. One of the most popular processes is the carbon dioxide injection that has special importance because of its environmentally friendly and high efficiency of displacement. The interfacial tension (IFT) between carbon dioxide and hydrocarbon is known as a key parameter in this process so in the present investigation the Adaptive neuro-fuzzy inference system (ANFIS) was coupled with Genetic Algorithm (GA) to create a novel tool for prediction IFT between carbon dioxide and hydrocarbon in terms of temperature, pressure, molecular weight of alkane, gas and liquid densities. The outputs of predicting model were compared with experimental IFT statistically and graphically. The comparisons showed that predicting model has acceptable accuracy in prediction of IFT of hydrocarbon and carbon dioxide.
机译:近年来,由于石油储层的拒绝,增强石油恢复过程成为石油工程的有趣主题之一。 最受欢迎的过程之一是由于其环保和高效率,具有特殊重要性的二氧化碳注入。 二氧化碳和烃之间的界面张力(IFT)被称为该过程中的关键参数,因此在本研究中,在本研究中,自适应神经模糊推理系统(ANFIS)与遗传算法(GA)耦合,以创建一种用于预测的新型工具 IFT在二氧化碳和烃方面的温度,压力,烷烃,气体和液体密度的分子量之间。 将预测模型的输出与统计和图形的实验IFT进行比较。 比较显示,预测模型具有可接受的烃和二氧化碳预测的准确性。

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