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Modeling of precipitated asphaltene using the ANFIS approach

机译:使用ANFIS方法建模沉淀沥青质

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摘要

Asphaltene precipitation is introduced as a seriously problematic issue in the petroleum reservoirs that causes filling porosity of rocks and reduction of oil production. Hence, estimating the amount of precipitated asphaltene has huge importance in preventing the deposition of asphaltene. The present study was done to estimate the precipitated asphaltene as a function of temperature, dilution ratio, and molecular weight of different n-alkanes using adaptive neuro-fuzzy inference system (ANFIS). Moreover, another new scaling model was also developed to compare with the ANFIS model. In addition, these two developed models have been compared with previously developed correlations. The obtained values of R2 for the ANFIS and scaling models were 0.9912 and 0.9862, respectively. These tools are simple to use and can be used as an accurate approximation of the precipitated asphaltene as a function of temperature, dilution ratio, and molecular weight of different n-alkanes.
机译:在石油储层中引入沥青质沉淀,作为岩石储层的严重问题问题,导致填充岩石的孔隙率和降低油生产。 因此,估计沉淀的沥青质量在预防沥青质沉积方面具有重要意义。 使用适应性神经模糊推理系统(ANFIS)来估计本研究以估计沉淀的沥青质作为不同N-烷烃的不同N-烷烃的分子量。 此外,还开发了另一个新的缩放模型来与ANFIS模型进行比较。 此外,已经将这两个开发的模型与先前显影的相关性进行了比较。 对于ANFIS和缩放模型的R 2的所得值分别为0.9912和0.9862。 这些工具易于使用,可用作沉淀沥青质的精确近似,作为温度,稀释比和不同正烷烃的分子量的函数。

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