湍流射流点火系统主室点火机理的数值模拟

M. Muller, Corbin Freeman, Peng Zhao, Haiwen Ge
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引用次数: 16

摘要

利用三维燃烧CFD研究了预燃室燃烧产生的热湍流射流对稀薄预混CHVair混合气的着火机理。在美国密歇根州立大学(MSU)的快速压缩机(RCM)上进行了湍流射流点火实验。首先使用RANS模型进行完整模拟验证,然后将其结果作为边界条件,分别使用RANS和LES进行详细模拟。为了从热射流中分离热和化学动力学效应,考虑了两种不同的腔室入口条件:惰性情况(仅包括热效应)和反应情况(考虑热和化学动力学效应)。研究发现,化学动力学效应对主燃烧室的点火起着重要的作用。对比RANS和LES计算的OH和HRR(热释放率)表明,RANS预测的燃烧速度略快,这意味着预测的湍流火焰速度更高。观察到涡量、混合场和温度场之间的相关关系,表明流动动力学对火焰锋面附近的混合过程有强烈的影响,从而影响火焰的传播。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Simulation of Ignition Mechanism in the Main Chamber of Turbulent Jet Ignition System
The ignition mechanism of a lean premixed CHVair mixture by a hot turbulent jet issued from the pre-chamber combustion is investigated using 3D combustion CFD. The turbulent jet ignition experiments conducted in the rapid compression machine (RCM) at Michigan State University (MSU) were simulated. A full simulation was carried out first using RANS model for validation, the results of which were then taken as the boundary condition for the detailed simulations using both RANS and LES. To isolate the thermal and chemical kinetic effects from the hot jet, two different inlet conditions of the chamber were considered: inert case (including thermal effects only) and reactive case (accounting for both thermal and chemical kinetic effects). It is found that the chemical kinetic effects are important for the ignition in the main chamber. Comparison of OH and HRR (heat release rate) computed by RANS and LES shows that RANS predicts slightly faster combustion, which implies higher predicted turbulent flame speed. Correlations between vorticity, mixing field, and temperature field are observed, which indicate that the flow dynamics strongly influence the mixing process near the flame front, and consequently affect flame propagation.
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