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Variation in Squish Length and Swirl to Reach Higher Levels of EGR in a CNG Engine

机译:鳞状长度的变化和旋涡在CNG发动机中达到更高水平的EGR

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Gaseous methane fuel for internal combustion engines have proved to be a competitive source of propulsion energy for heavy duty truck engines. Using biogas can even reduce the carbon footprint of the truck to near-zero levels, creating fully environmentally friendly transport. Gas engines have already been on the market and proved to be a popular alternative for buses and waste transport. However, for long haulage these gas engines have not been on par with the equivalent diesel engines. To improve the power and efficiency of EURO VI gas engines running stoichiometrically, a direct way forward is adding more boost pressure and spark advance in combination with more EGR to mitigate knock. Using in-cylinder turbulence to achieve higher mixing rate, the fuel can still be combusted efficiently despite the increased fraction of inert gases. In this paper, previous findings on in-cylinder air flows for diesel engine simulations are investigated for the applicability on to stoichiometric gas combustion. Two key parameters were identified, swirl and squish. By varying the levels of swirl with different squish lengths in the piston design, the in-cylinder flow motion is altered to investigate its effect on stoichiometric gas combustion. The testing was performed on a single cylinder research engine operated in the equivalent multi cylinder engine operating points. The results show that previous modelling findings are verified on the pre-mixed gas combustion studied. By choosing swirl and squish for the design of the gas engine, it is possible to increase the combustion speed and thus the fraction of EGR in the combustion charge, without the latter having a negative impact on the combustion.
机译:用于内燃机的气态甲烷燃料已被证明是重型卡车发动机的推进能源竞争来源。使用沼气甚至可以将卡车的碳足迹降低到接近零水平,营造出完全环保的运输。燃气发动机已经在市场上,被证明是公共汽车和废物运输的最受欢迎的替代品。然而,对于长途运输,这些燃气发动机并未与等同的柴油发动机置于相同的柴油发动机。为了提高欧元vi燃气发动机运行的力量和效率,前进的直接方向是加上更多EGR以减轻爆震的升压和火花提前。尽管惰性气体分数增加,但是使用缸内湍流以实现更高的混合速率,仍然可以有效地燃烧。本文研究了柴油发动机模拟中的先前发现,以适用于化学计量气体燃烧。鉴定了两个关键参数,旋转和鳞屑。通过在活塞设计中改变具有不同鳞状长度的涡流水平,改变了缸内流动运动以研究其对化学计量气体燃烧的影响。在以等效的多气缸发动机操作点运行的单个汽缸研究发动机上进行测试。结果表明,在研究预混合的气体燃烧上验证了先前的建模结果。通过选择涡旋和剥离气体发动机的设计,可以增加燃烧速度,从而增加燃烧电荷中的EGR的馏分,而无需对燃烧产生负面影响。

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