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Artificial neural networks used for the prediction of the cetane number of biodiesel

机译:人工神经网络用于预测生物柴油的十六烷值

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Cetane number (CN) is one of the most significant properties to specify the ignition quality of any fuel for internal combustion engines. The CN of biodiesel varies widely in the range of 48-67 depending upon various parameters including the oil processing technology and climatic conditions where the feedstock (vegetable oil) is collected. Determination of the CN of a fuel by an experimental procedure is a tedious job for the upcoming biodiesel production industry. The fatty acid composition of base oil predominantly affects the CN of the biodiesel produced from it. This paper discusses the currently available CN estimation techniques and the necessity of accurate prediction of CN of biodiesel. Artificial Neural Network (ANN) models are developed to predict the CN of any biodiesel. The present paper deals with the application of multi-layer feed forward, radial base, generalized regression and recurrent network models for the prediction of CN. The fatty acid compositions of biodiesel and the experimental CNs are used to train the networks. The parameters that affect the development of the model are also discussed. ANN predicted CNs are found to be in agreement with the experimental CNs. Hence, the ANN models developed can be used reliably for the prediction of CN of biodiesel.
机译:十六烷值(CN)是最重要的属性之一,用于指定内燃机的任何燃料的着火质量。生物柴油的CN在48-67范围内变化很大,这取决于各种参数,包括石油加工技术和收集原料(植物油)的气候条件。通过实验程序确定燃料的CN对即将到来的生物柴油生产行业来说是一项繁琐的工作。基础油的脂肪酸组成主要影响由此产生的生物柴油的CN。本文讨论了当前可用的CN估算技术以及准确预测生物柴油CN的必要性。开发了人工神经网络(ANN)模型来预测任何生物柴油的CN。本文探讨了多层前馈,径向基,广义回归和递归网络模型在CN预测中的应用。生物柴油和实验性CNs的脂肪酸组成用于训练网络。还讨论了影响模型开发的参数。 ANN预测的CN与实验CN一致。因此,开发的ANN模型可以可靠地用于生物柴油CN的预测。

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