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首页> 外文期刊>Combustion Science and Technology >Spray Impingement and Combustion in a Model Opposed-Piston Compression Ignition Engine
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Spray Impingement and Combustion in a Model Opposed-Piston Compression Ignition Engine

机译:对置活塞压缩式点火发动机中的喷雾撞击和燃烧

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摘要

Spray impingement and combustion in a model opposed-piston compression ignition engine was investigated experimentally and computationally. A recently proposed pressure-dependent droplet collision model was implemented in the KIVA-3V computer program for the Reynolds Average Navier-Stokes calculation, which was validated against the time-averaged experimental data for the cylinder pressure. Compared with the widely-used O'Rourke model, the present model produces physically appraised predictions by accounting for the propensity of droplet bouncing upon collision at high engine pressuresa physical phenomenon overlooked in the previous models. The results show that droplet collisions can be promoted either by the impingement of the sprays from the oppositely placed three-nozzle fuel injectors under the condition of low engine speed and high load, or by the interaction of the sprays from each fuel injector in the presence of in-cylinder swirling flow. Motivated by fully utilizing the space of the combustion chamber, a new spray layout possessing the S-2 symmetry was proposed and computationally investigated in the study. Compared with Hofbauer's spray layout of the C-2 symmetry, the present layout tends to produce more distributed premixed fuel mass and hence results in a longer ignition delay time but a higher peak heat release rate.
机译:通过实验和计算研究了模型对置活塞压缩点火发动机中的喷雾撞击和燃烧。在KIVA-3V计算机程序中实施了最近提出的与压力有关的液滴碰撞模型,用于雷诺平均Navier-Stokes计算,并根据气缸压力的时间平均实验数据进行了验证。与广泛使用的O'Rourke模型相比,本模型通过考虑液滴在高发动机压力下碰撞时弹跳的倾向,产生了物理评估的预测,而先前模型中忽略了这种物理现象。结果表明,在低发动机转速和高负荷条件下,通过对置的三喷嘴喷油器喷射的喷雾的撞击,或存在时每个喷油器的喷雾的相互作用,均可促进液滴的碰撞。缸内涡流。通过充分利用燃烧室的空间,提出了一种新的具有S-2对称性的喷雾布局,并进行了计算研究。与霍夫鲍尔的C-2对称喷雾布局相比,本布局倾向于产生更多分布的预混合燃料质量,因此导致更长的点火延迟时间但更高的峰值放热率。

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