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GA-ANFIS modeling of higher heating value of wastes: Application to fuel upgrading

机译:GA-ANFIS浪费加热价值建模:燃料升级的应用

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摘要

Combustion of wastes is a promising source for energy recovery because of having appropriate higher heating value (HHV) in order to use as fuel. The present study was aimed to estimate HHV value using a hybrid adaptive neuro-fuzzy inference system and genetic algorithm called GA-ANFIS. This model can predict HHV as a function of carbon (%C), hydrogen (%H), oxygen (%O), nitrogen (%N), and sulfur (%S) mass percentages. This suggested model has been also compared with other published correlations, and based on obtained results, great accuracy of our model was confirmed. The obtained values of Mean Squared Error (MSE) and R-squared were 0.236 and 0.9983, respectively. Consequently, this model can be very valuable to have accurate prediction of waste HHV value.
机译:废物燃烧是能量回收的有希望的源,因为具有适当的加热值(HHV)以便用作燃料。本研究旨在使用称为GA-ANFIS的混合自适应神经模糊推理系统和遗传算法来估算HHV值。该模型可以将HHV预测为碳(%C),氢(%H),氧(%O),氮(%N)和硫(%S)质量百分比的函数。该建议的模型也与其他公布的相关性相比,并基于获得的结果,确认了我们模型的良好准确性。所获得的平均平方误差(MSE)和R角的值分别为0.236和0.9983。因此,该模型可以非常有价值地对废物HHV值预测。

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