天然气直喷双燃料发动机燃烧过程的数值分析

M. Jud, C. Wieland, G. Fink, T. Sattelmayer
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引用次数: 8

摘要

建立预测高压双燃料燃烧的高效计算流体动力学模型是改进概念、减少实验次数和使开发过程更具成本效益的最重要步骤之一。对于柴油和天然气,首先利用作者建立的这种模型从湍流化学相互作用的角度分析燃烧过程,阐明燃烧过程是受化学过程限制还是受混合过程限制的问题。在这些发现的基础上,开发了一种简化的反应机制,以节省高达35%的计算时间。对不同喷气时间代表不同点火前预混程度的燃烧模型的预测能力进行了测试。通过与快速压缩膨胀机实验结果的比较,较好地预测了气体射流的放热速率形状、点火时间和燃尽情况。最后,利用该模型对实验中不同几何构型下的失燃现象进行了分析。在这些几何构型中,在低温水平下,燃气射流覆盖了柴油射流的首选点火区域。由于该模型是基于详细的化学方法,它将来也可以用于其他燃料组合或预测排放。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Analysis of the Combustion Process in Dual-Fuel Engines With Direct Injection of Natural Gas
An efficient computational fluid dynamics model for predicting high pressure dual-fuel combustion is one of the most essential steps in order to improve the concept, to reduce the number of experiments and to make the development process more coste-efficient. For Diesel and natural gas such a model developed by the authors is first used to analyze the combustion process with respect to turbulence chemistry interaction and to clarify the question whether the combustion process is limited by chemistry or the mixing process. On the basis of these findings a reduced reaction mechanism is developed in order to save up to 35% of computing time. The prediction capability of the modified combustion model is tested for different gas injection timings representing different degrees of premixing before ignition. Compared to experimental results from a rapid compression expansion machine, the shape of heat release rate, the ignition timing of the gas jet and the burnout are well predicted. Finally, misfiring observed at different geometric configurations in the experiment are analyzed with the model. It is identified that in these geometric configurations at low temperature levels the gas jet covers the preferred ignition region of the diesel jet. Since the model is based on the detailed chemistry approach, it can in future also be used for other fuel combinations or for predicting emissions.
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