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Biodiesel Conversion Modeling under Several Conditions Using Computational Intelligence Methods

机译:使用计算智能方法在多种条件下进行生物柴油转化建模

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摘要

The computational intelligence (CI) methods such as artificial neural network (ANN) and adaptive neuro-fuzzy inference system (ANFIS) have many applications in chemistry, oil and gas, electronics, financial, telecommunications, and many others. In this article, ANN and ANFIS are used to model and predict the biodiesel conversion under several conditions. The inputs of the proposed CI models are oil type, catalyst type, calcination temperature, catalyst concentration, methanol-to-oil ratio, n-hexane-to-oil volume ratio, reaction time, and reaction temperature and the output is biodiesel conversion. Experimental data of available literature are used to train and test the CI models in MATLAB 7.0.4 software. Comparison between the proposed ANN and ANFIS models and the experimental data show that the proposed CI models are very efficient and fast tools, and there is a good agreement between them and the experimental data with a minimum error. Also, it can be found that the introduced ANN model is more accurate than the ANFIS model. The proposed ANN model has overall MRE% (mean relative error percentage) <1.5%, RMSE (root mean square error) <1.34, R (correlation coefficient) >09995, and MAE (mean absolute error) <0.9.
机译:诸如人工神经网络(ANN)和自适应神经模糊推理系统(ANFIS)之类的计算智能(CI)方法在化学,石油和天然气,电子,金融,电信等领域都有许多应用。在本文中,ANN和ANFIS用于在几种条件下建模和预测生物柴油转化率。提出的CI模型的输入是油类,催化剂类型,煅烧温度,催化剂浓度,甲醇与油的比例,正己烷与油的体积比,反应时间和反应温度,输出是生物柴油转化率。现有文献的实验数据用于在MATLAB 7.0.4软件中训练和测试CI模型。所提出的ANN和ANFIS模型与实验数据的比较表明,所提出的CI模型是非常有效和快速的工具,并且它们与实验数据之间具有良好的一致性,且误差最小。此外,可以发现引入的ANN模型比ANFIS模型更准确。拟议的ANN模型的总体MRE%(平均相对误差百分比)<1.5%,RMSE(均方根误差)<1.34,R(相关系数)> 09995,MAE(平均绝对误差)<0.9。

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