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A Quasi-Dimensional Model for Estimating the Influence of Hydrogen-Rich Gas Addition on Turbulent Flame Speed and Flame Front Propagation in IC-SI Engines

机译:一种估计富含氢气添加对IC-Si发动机湍流火焰速度的影响的准尺寸模型及火焰前繁殖

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Addition of hydrogen-rich gas to gasoline in internal combustion engines is gaining increasing interest, as it seems suitable to reach near-zero emission combustion, able to easily meet future stringent regulations. Bottled gas was used to simulate the output of an onboard reformer (21% H{sub}2, 24% CO, 55% N{sub}2). Measurements were carried out on a 4-stroke, 2-cylinder, 0.5-liter engine, with EGR, in order to calculate the heat release rate through a detailed two-zone model. A quasi-dimensional model of the flame was developed: it consists of a geometrical estimate of the flame surface, which is then coupled with the heat release rate. The turbulent flame speed can then be inferred. The model was then applied to blends of gasoline with hydrogen-rich gas, showing the effect on the flame speed and transition from laminar to turbulent combustion. Comparison between the quasi-dimensional model and the conventional Metgalchi-Keck + Damkohler model gave a general validation for gasoline operation and suggested a modification of the usual time-delay function for transition from laminar to turbulent flame. Results give new insight in previous findings from the heat release calculation: the effect of hydrogen-rich gas addition on flame speed is predominant in the early phase of the flame propagation, and the effect of the high curvature of the flame at the onset of combustion, compensated by the high mass diffusivity of hydrogen, is believed to be the physical reason to such behavior.
机译:在内燃发动机中加入富含氢气的汽油是增加兴趣,因为它似乎适合达到零零排放燃烧,能够容易地满足未来的严格规定。瓶装气体用于模拟板载重整器的输出(21%H} 2,24%CO,55%N {Sub} 2)。用EGR在4行程,2缸,0.5升发动机上进行测量,以通过详细的双区模型计算热释放速率。开发了火焰的准尺寸模型:它包括火焰表面的几何估计,然后与热释放速率偶联。然后可以推断出湍流速度。然后将该模型应用于富含氢气的汽油的混合物,显示对火焰速度的影响和从层流到湍流燃烧的效果。准尺寸模型与传统MetGalchi-keck + Damkohler模型之间的比较给了汽油操作的一般验证,并建议改变通常的时间延迟函数用于从层流到湍流火焰的过渡。结果在热释放计算中发出新的发现:富含氢气的效果对火焰速度的效​​果在火焰传播的早期阶段,以及火焰在燃烧开始时的高曲率的影响通过氢气的高质量扩散性补偿,被认为是这种行为的物理原因。

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