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Modeling of Steam Distillation Mechanism during Steam Injection Process Using Artificial Intelligence

机译:喷射过程中蒸汽蒸馏机理的人工智能建模

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摘要

Steam distillation as one of the important mechanisms has a great role in oil recovery in thermal methods and so it is important to simulate this process experimentally and theoretically. In this work, the simulation of steam distillation is performed on sixteen sets of crude oil data found in the literature. Artificial intelligence (AI) tools such as artificial neural network (ANN) and also adaptive neurofuzzy interference system (ANFIS) are used in this study as effective methods to simulate the distillate recoveries of these sets of data. Thirteen sets of data were used to train the models and three sets were used to test the models. The developed models are highly compatible with respect to input oil properties and can predict the distillate yield with minimum entry. For showing the performance of the proposed models, simulation of steam distillation is also done using modified Peng-Robinson equation of state. Comparison between the calculated distillates by ANFIS and neural network models and also equation of state-based method indicates that the errors of the ANFIS model for training data and test data sets are lower than those of other methods.
机译:蒸汽蒸馏是重要的机理之一,在热法的采油中起着重要的作用,因此从实验和理论上模拟这一过程很重要。在这项工作中,对蒸汽蒸馏的模拟是对文献中发现的16套原油数据进行的。这项研究中使用了诸如人工智能神经网络(ANN)和自适应神经模糊干扰系统(ANFIS)之类的人工智能(AI)工具作为模拟这些数据集的馏出物回收率的有效方法。十三套数据用于训练模型,三套数据用于测试模型。所开发的模型在输入油的特性方面具有高度的兼容性,并且可以在最少进入的情况下预测馏出油的产率。为了显示所提出模型的性能,还使用修正的Peng-Robinson状态方程进行了蒸汽蒸馏的模拟。通过ANFIS和神经网络模型计算出的馏出物以及基于状态的方法方程的比较表明,用于训练数据和测试数据集的ANFIS模型的误差低于其他方法。

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