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Influence of Combustion Efficiency on the Operation of Spark Ignition Engines Fueled with Methane and Hydrogen Investigated in a Quasi-Dimensional Simulation Framework

机译:在准尺寸模拟框架中研究了甲烷和氢气燃料和氢气燃料燃料的燃烧效率的影响

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摘要

Within the context of widening application of numerical simulations for shortening engine development times, the present work covers the issue of quasi-dimensional simulation of spark ignition engines. Multi-fuel operation was the main goal of the study, with the analysis of methane and its blends with hydrogen; gasoline was also considered as a reference case. Data recorded on two engines with practically the same geometry, was used for calibrating the model. The first power unit was of commercial derivation for small applications, while the second one featured optical accessibility through the piston crown. The relative difference between the two engines allowed the top-land region crevice to be identified as the major contributor to overall combustion evolution, especially during its late stages. Using an in-cylinder pressure based method, compression ratio and blow-by losses were determined, and differences between fuel types were recognized in the sense of oxygen utilization rates. Then, the effects of the latter parameter were investigated with regard to model calibration. It was found that the entrainment coefficient was practically insensitive to combustion efficiency, while the characteristic length was closely linked to its modification. An important decrease was observed in the characteristic length when oxidation completeness was lower. Hydrogen addition to methane was found to improve combustion efficiency, most likely linked to its higher reactivity. These results emphasize the importance of incorporating fuel effects in quasi-dimensional simulation and given insight into how specific properties could be integrated for correct interpretation of results.
机译:在扩大缩短发动机开发时间的数值模拟应用中的应用的范围内,本工作涵盖了火花点火发动机的准尺寸模拟问题。多燃料运作是该研究的主要目标,分析甲烷及其与氢气的共混物;汽油也被认为是参考案例。用于校准模型的两种发动机上的数据记录在两个发动机上。第一电源单元是小型应用的商业推导,而通过活塞冠的第二个具有光学访问。两个发动机之间的相对差异允许将顶级区域缝隙识别为整体燃烧进化的主要贡献者,特别是在其后期阶段。使用基于缸内的压力的方法,确定压缩比和窜漏,并且在氧气利用率的感觉中识别燃料类型之间的差异。然后,在模型校准方面研究了后一种参数的效果。发现夹带系数几乎不敏感到燃烧效率,而特征长度与其改性密切相关。当氧化完整性较低时,在特征长度观察到重要的减少。发现甲烷的氢气加上提高燃烧效率,最可能与其更高的反应性相连。这些结果强调了在准维思模拟中纳入燃料效应的重要性,并考虑如何集成特定属性,以便正确解释结果。

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