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Application of ANN to Predict S.I. Engine Performance and Emission Characteristics Fuelled Bioethanol

机译:ANN的应用预测S.I.发动机性能和排放特性燃料的生物乙醇

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The performance of artificial neural network (ANN) to predict spark ignition (S.I) engine performance such as torque, BSFC, exhaust temperature and emissions (CO and HC) for various compression ratios was investigated. For training and testing the ANN, experimental data from a single cylinder Hydra spark ignition engine powered by various bioethanol and gasoline blends (E0, E10, E20, E40 and E60) were used. ANN performance was measured by mean squared errors and correlation coefficient. The training function used was trainbr and the training algorithm used was feed-forward back propagation. The overall correlation coefficient obtained from the prediction was 0.98526 and the mean squared error obtained was very low (9.26E-06).
机译:研究了人工神经网络(ANN)以预测用于各种压缩比的扭矩,BSFC,排气温度和排放(CO和HC)的火花点火(S.I)发动机性能。为了训练和测试ANN,使用由各种生物乙醇和汽油共混物(E0,E10,E20,E40和E60)供电的单缸HydrA火花点火发动机的实验数据。 ANN性能是通过平均平方误差和相关系数测量的。使用的训练功能是TrainBR,使用的训练算法是前馈回传播。从预测获得的总相关系数为0.98526,所获得的平均平均误差非常低(9.26e-06)。

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