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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Research of performance on a spark ignition engine fueled by alcohol-gasoline blends using artificial neural networks
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Research of performance on a spark ignition engine fueled by alcohol-gasoline blends using artificial neural networks

机译:基于神经网络的酒精汽油混合燃料火花点火发动机性能研究

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摘要

In this paper, we investigate various alcohol unleaded gasoline mixtures that can be used with no modifications in a spark-ignition engine. The mixtures consisted of 5%, 10% and 15% ethanol, methanol together and separately. Based on the recommendations of the Jordanian Petroleum Company (JoPetrol), total alcohol content should not exceed 15-20% owing to safety and ignition hazards. Optimizations for the use of alcohol were made for the maximum torque, maximum power and minimum specific fuel consumption values. For torque 0.9906, for brake power 0.997, and for brake specific fuel consumption 0.9312 regression values for tests have been obtained from models generated by the neural network. According to the modeling and optimizations, use of fuel mixture containing 11% methanol-1% ethanol for performance, and fuel mixture containing 2% methanol for BSFC were found to have better results.
机译:在本文中,我们研究了各种无铅汽油无铅汽油混合物,这些混合物可以不加修改地用于火花点火发动机。混合物分别由5%,10%和15%的乙醇,甲醇组成。根据约旦石油公司(JoPetrol)的建议,由于安全和着火危险,总酒精含量不应超过15-20%。针对最大扭矩,最大功率和最小比油耗值对酒精的使用进行了优化。对于扭矩0.9906,制动功率0.997和制动比油耗0.9312,已经从神经网络生成的模型中获得了测试的回归值。根据建模和优化,发现使用含11%甲醇-1%乙醇的燃料混合物可提高性能,而使用含2%甲醇的BSFC燃料混合物则具有更好的效果。

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