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ANFIS-GA modeling of dynamic viscosity of N-Alkane in different operational conditions

机译:N形烷烃动态粘度的ANFIS-GA模型

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摘要

Viscosity is known as one of major properties of fluids which have straight effects on different parts of chemical and petroleum industries. Due to this importance, in the present work, adaptive neuro-fuzzy interference system (ANFIS) was coupled with genetic algorithm (GA) to predict dynamic viscosity of normal alkane in terms of molecular weight of n-alkane, temperature and pressure. In order to prepare and validate the predicting model 228 experimental data points were extracted from the literature. The outputs of this predictive tool were compared with the experimental data and comparisons showed that predicted dynamic viscosities have good agreement with experimental data. According to the statistical and graphical analyses this simple tool can be used as a rigorous and accurate method for prediction of dynamic viscosity of n-alkane, especially at reservoir conditions.
机译:粘度被称为流体的主要性质之一,其对化学和石油行业的不同部分具有直接影响。 由于这一重要性,在本作的工作中,自适应神经模糊干扰系统(ANFIS)与遗传算法(GA)偶联,以在N-烷烃,温度和压力的分子量方面预测正烷烃的动态粘度。 为了准备和验证预测模型228实验数据点从文献中提取。 将该预测工具的输出与实验数据进行比较,并且比较显示预测的动态粘度与实验数据有良好的一致性。 根据统计和图形分析,这种简单的工具可用作预测N-烷烃的动态粘度的严格和准确的方法,尤其是在储层条件下。

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