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Performance and exhaust emissions of a biodiesel engine

机译:生物柴油发动机的性能和废气排放

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In this study, the applicabilities of Artificial Neural Networks (ANNs) have been investigated for the performance and exhaust-emission values of a diesel engine fueled with biodiesels from different feedstocks and petroleum diesel fuels. The engine performance and emissions characteristics of two different petroleum diesel-fuels (No. 1 and No. 2), biodiesels (from soybean oil and yellow grease), and their 20% blends with No. 2 diesel fuel were used as experimental results. The fuels were tested at full load (100%) at 1400-rpm engine speed, where the engine torque was 257.6 Nm. To train the network, the average molecular weight, net heat of combustion, specific gravity, kinematic viscosity, C/H ratio and cetane number of each fuel are used as the input layer, while outputs are the brake specific fuel-consumption, exhaust temperature, and exhaust emissions. The back-propagation learning algorithm with three different variants, single layer, and logistic sigmoid transfer function were used in the network. By using weights in the network, formulations have been given for each output. The network has yielded R~2 values of 0.99 and the mean % errors are smaller than 4.2 for the training data, while the R~2 values are about 0.99 and the mean % errors are smaller than 5.5 for the test data. The performance and exhaust emissions from a diesel engine, using biodiesel blends with No. 2 diesel fuel up to 20%, have been predicted using the ANN model.
机译:在这项研究中,人工神经网络(ANNs)的适用性已研究了使用不同原料和石油柴油燃料生物柴油为燃料的柴油发动机的性能和废气排放值。实验结果使用了两种不同的石油柴油燃料(1号和2号),生物柴油(来自大豆油和黄色油脂)以及它们与2号柴油的20%混合气的发动机性能和排放特性。在发动机转速为257.6 Nm的发动机转速1400 rpm的全负荷(100%)下测试了燃料。为了训练该网络,将每种燃料的平均分子量,燃烧净热,比重,运动粘度,C / H比和十六烷值用作输入层,而输出则是制动器的特定燃料消耗量,排气温度。和废气排放。网络中使用了具有三种不同变体,单层和逻辑S形传递函数的反向传播学习算法。通过使用网络中的权重,已为每个输出给出了公式。网络得出的R〜2值为0.99,训练数据的平均误差百分比小于4.2,而R〜2值约为0.99,测试数据的平均误差误差小于5.5。已使用ANN模型预测了柴油机的性能和废气排放,其中使用了生物柴油与高达20%的2号柴油混合而成的混合物。

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