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A lumped kinetic model for high-temperature pyrolysis and combustion of 50 surrogate fuel components and their mixtures

机译:用于高温热解和50种替代燃料组分及其混合物的燃烧燃烧的集体动力学模型

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Wide distillation fuels (WDF) and gasoline/diesel blends have been proposed as new fuel formulations for advanced combustion engines. Recent studies have shown that multi-component gasoline and diesel surrogate mixtures can accurately mimic the distillation curve, functional group or hydrocarbon class distribution, average molecular weight, and other combustion properties of real fuels. This work presents an updated decoupling methodology to construct a 50-component fuel model, which consists of a skeletal sub-mechanism for large hydrocarbon components present in gasoline, jet and diesel fuels, a reduced C-5-C-n mechanism, and a detailed C-0-C-4 mechanism. The entire model contains 156 species and 1132 reactions. The chemical classes covered include n-alkanes, iso-alkanes, cyclo-alkanes and alkylbenzenes. Compared with the comprehensive detailed kinetic modeling approach, the present methodology largely reduces the model size due to the use of skeletal fuel mechanisms. Compared with the traditional decoupling methodology, our approach increases the model accuracy since it contains a detailed C-0-C-4 mechanism instead of a reduced C-2-C-3 mechanism. The present model was validated against experimental targets at high temperatures, including the pyrolysis and oxidation speciation data and global parameters such as ignition delay times and laminar flame speeds from 30 pure fuel components and 12 fuel mixtures. In general, the present model performs well against these experimental data, suggesting this methodology is a suitable approach for developing accurate kinetic models for multi-component fuels. Future work will extend the present framework to predict low-temperature combustion chemistry of multi component fuels.
机译:已经提出了宽蒸馏燃料(WDF)和汽油/柴油混合物作为先进燃烧发动机的新型燃料配方。最近的研究表明,多组分汽油和柴油替代混合物可以准确地模仿蒸馏曲线,官能团或烃类分布,平均分子量和真实燃料的其他燃烧性能。该工作提出了更新的去耦方法来构建一个50-分量的燃料模型,该方法包括汽油,喷射和柴油燃料中存在的大型烃组分的骨架子机制,减少的C-5-CN机制和详细的C. -0-C-4机制。整个模型包含156种和1132个反应。覆盖的化学类别包括N-烷烃,异烷烃,环烷基和烷基苯。与综合详细的动力学建模方法相比,本方法由于使用骨架燃料机构而导致模型尺寸大大降低。与传统的去耦方法相比,我们的方法增加了模型精度,因为它包含详细的C-0-C-4机构,而不是降低的C-2-C-3机构。本模型针对高温实验靶验证,包括热解和氧化形态数据和全局参数,如从30个纯燃料组分和12个燃料混合物的点火延迟时间和层状火焰速度。通常,本模型对这些实验数据进行良好,表明该方法是一种适用于用于多组分燃料的准确动力学模型的合适方法。未来的工作将扩展本框架以预测多组分燃料的低温燃烧化学。

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