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N-heptane ignition delay time with temperature criterion for HCCI combustion

机译:具有HCCI燃烧温度标准的正庚烷点火延迟时间

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Ignition delay time is key to any hydrocarbon combustion process. In that sense, this parameter has to be known accurately, and especially for internal combustion engine applications. Combustion timing is one of the most important factors influencing overall engine performances like power output, combustion efficiency, emissions, in-cylinder peak pressure, etc. In the case of two stage combustion process (e.g. HCCI mode), this parameter is controlled by chemical kinetics. In this paper, an ignition delay time model including 7 direct reactions and 13 species coupled with a temperature criterion is described. This mechanism has been obtained from the previous 26-step n-heptane reduced mechanism, focusing on reactions group of the low temperature regime which is the most important phase during the two stage combustion process. The complete model works with 7 reactions until the critical temperature is reached, leading to the detection of the ignition delay time value. The resulting ignition delay times obtained with the 7-step model have been compared to those of a calculation using a full kinetics of n-heptane developed by Lawrence Livermore National Laboratory. This comparison has pointed out that the model reproduces the ignition delay time with a good accuracy with differences smaller than 2 CAD and a computational time around one millisecond.
机译:点火延迟时间是任何碳氢化合物燃烧过程的关键。从这个意义上说,必须准确地知道该参数,尤其是对于内燃机应用。燃烧正时是影响整体发动机性能(如功率输出,燃烧效率,排放,缸内峰值压力等)的最重要因素之一。在两阶段燃烧过程(例如HCCI模式)下,此参数由化学物质控制动力学。在本文中,描述了包括7个直接反应和13种物质以及温度准则的点火延迟时间模型。该机理是从先前的26步正庚烷还原机理获得的,重点是低温状态的反应组,该组是两阶段燃烧过程中最重要的阶段。完整的模型可以进行7个反应,直到达到临界温度,从而检测到点火延迟时间值。将通过7步模型获得的点火延迟时间与使用由Lawrence Livermore国家实验室开发的正庚烷的完整动力学进行计算的点火延迟时间进行了比较。该比较已经指出,该模型以良好的精度再现了点火延迟时间,其差异小于2 CAD,并且计算时间约为一毫秒。

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