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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >Optimization of diesel substitution rate based on piston maximum temperature pattern recognition in dual-fuel engine
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Optimization of diesel substitution rate based on piston maximum temperature pattern recognition in dual-fuel engine

机译:基于双燃料发动机活塞最大温度模式识别的柴油替代率优化

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The diesel and natural gas dual-fuel engine has gained increasing interest in recent years because of its excellent power and economy. However, the diesel substitution rate cannot be controlled optimally, owing to the lack of a feedback indicator reflecting the cylinder combustion process, which easily leads to a serious thermal load problem. This paper presents a closed-loop control with feedback from a piston maximum temperature (PMT) pattern to regulate the diesel substitution rate in real time. A v-support vector machine (v-SVM) is proposed to train classifiers for online recognition of the PMT pattern. Nitrogen oxide (NOx) emission levels, excess air coefficient, engine speed and inlet pressure are chosen as feature variables. The PMTs, calculated by finite element analysis in ANSYS, are utilized to determine the labels of feature data. Moreover, 10-fold cross-validation is employed to choose the optimal kernel function, kernel parameters and penalty factor. A synthetic minority oversampling technique (SMOTE) is introduced to remedy the class imbalance problem in training classifiers. Furthermore, a timer-based debouncing mechanism is employed to alleviate the dynamic process influence on the PMT pattern recognition. Experiment revealed that the classifiers yield desirable predictions, with classification accuracies higher than 90%. Meanwhile, the diesel substitution rates are regulated to appropriate values through the closed-loop control algorithm, which guarantees that the dual-fuel engine runs in its safe region and maintains its excellent economy.
机译:由于其优良的权力和经济,柴油和天然气双燃料发动机近年来越来越兴趣。然而,由于缺乏反馈指示器反射汽缸燃烧过程的反馈指示器,不能最佳地控制柴油替换率,这容易导致严重的热负荷问题。本文介绍了闭环控制,具有从活塞最高温度(PMT)图案的反馈,实时调节柴油替换率。提出了V-Support向量机(V-SVM)以培训用于在线识别PMT模式的分类器。选择氮氧化物(NOx)发射水平,超出空气系数,发动机速度和入口压力作为特征变量。通过ANSYS的有限元分析计算的PMT,用于确定特征数据的标签。此外,采用10倍的交叉验证来选择最佳的内核函数,内核参数和惩罚因子。介绍了一种合成少数群体过采样技术(SMOTE)以弥补培训分类器中的类别不平衡问题。此外,采用基于定时器的脱位机制来缓解对PMT模式识别的动态过程影响。实验表明,分类器产生了理想的预测,分类精度高于90%。同时,通过闭环控制算法对柴油取代率调节到适当的值,这保证了双燃料发动机在其安全区域中运行并保持其优良的经济性。

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