An Experimental and Simulation Study of Early Flame Development in a Homogeneous-charge Spark-Ignition Engine

Yajuvendra Shekhawat, D. Haworth, Alessandro d’Adamo, F. Berni, S. Fontanesi, Philipp Schiffmann, D. Reuss, V. Sick
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引用次数: 23

Abstract

An integrated experimental and Large-Eddy Simulation (LES) study is presented for homogeneous premixed combustion in a spark-ignition engine. The engine is a single-cylinder two-valve optical research engine with transparent liner and piston: the Transparent Combustion Chamber (TCC) engine. This is a relatively simple, open engine configuration that can be used for LES model development and validation by other research groups. Pressure-based combustion analysis, optical diagnostics and LES have been combined to generate new physical insight into the early stages of combustion. The emphasis has been on developing strategies for making quantitative comparisons between high-speed/high-resolution optical diagnostics and LES using common metrics for both the experiments and the simulations, and focusing on the important early flame development period. Results from two different LES turbulent combustion models are presented, using the same numerical methods and computational mesh. Both models yield Cycle-to-Cycle Variations (CCV) in combustion that are higher than what is observed in the experiments. The results reveal strengths and limitations of the experimental diagnostics and the LES models, and suggest directions for future diagnostic and simulation efforts. In particular, it has been observed that flame development between the times corresponding to the laminar-to-turbulent transition and 1% mass-burned fraction are especially important in establishing the subsequent combustion event for each cycle. This suggests a range of temporal and spatial scales over which future experimental and simulation efforts should focus.
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均装药火花点火发动机早期火焰发展的实验与仿真研究
对火花点火发动机均质预混燃烧进行了实验与大涡模拟相结合的研究。该发动机为单缸双气门光学研究发动机,采用透明衬套和活塞:透明燃烧室(TCC)发动机。这是一个相对简单的、开放的引擎配置,可以用于LES模型的开发和其他研究小组的验证。基于压力的燃烧分析、光学诊断和LES相结合,对燃烧的早期阶段产生了新的物理见解。重点是制定策略,在高速/高分辨率光学诊断和LES之间进行定量比较,使用实验和模拟的通用指标,并关注重要的早期火焰发展时期。采用相同的数值方法和计算网格,给出了两种不同的LES湍流燃烧模型的计算结果。两种模型在燃烧中产生的循环到循环变化(CCV)都高于实验中观察到的变化。结果揭示了实验诊断和LES模型的优势和局限性,并为未来的诊断和模拟工作提出了方向。特别是,已经观察到,层流到湍流转变和1%质量燃烧分数对应的时间之间的火焰发展对于建立每个循环的后续燃烧事件尤为重要。这表明未来的实验和模拟工作应该集中在一系列的时间和空间尺度上。
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