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High swirl-inducing piston bowls in small diesel engines for emission reduction

机译:小型柴油发动机中的高涡流活塞碗,用于减少排放

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Detailed three-dimensional CFD simulations involving flow and combustion chemistry are used to study the effect of swirl induced by re-entrant piston bowl geometries on pollutant emissions from a single-cylinder diesel engine. The baseline engine configuration consists of a hemispherical piston bowl and an injector with finite sac volume. The first iteration involved using a torroidal, slightly re-entrant bowl geometry, and a sac-less injector. Pollutant emission measurements indicated a reduction in emissions with this modification. Simulations on both configurations were then conducted to understand the effect of the changes. The simulation results indicate that the selected piston bowl geometry could actually be reducing the in-cylinder swirl and turbulence and the emission reduction may be entirely due to the introduction of the sac-less injector. In-cylinder air motion was then studied in a number of combustion chamber geometries, and a geometry which produced the highest in-cylinder swirl and Turbulence Kinetic Energy (TKE) around the compression top dead centre (TDC) was identified. The optimal nature of this re-entrant piston bowl geometry is confirmed by detailed combustion simulations and emission predictions.
机译:详细的三维CFD模拟涉及流量和燃烧化学,用于研究凹入式活塞碗几何形状引起的涡流对单缸柴油机污染物排放的影响。基准发动机配置包括一个半球形的活塞碗和一个有限的囊体积的喷射器。第一次迭代涉及使用环形,稍微凹入的碗形几何形状和无囊注射器。污染物排放量测量表明,采用此改进后排放量减少了。然后对两种配置进行仿真以了解更改的效果。仿真结果表明,所选的活塞碗几何形状实际上可以减少缸内涡流和湍流,并且排放的减少可能完全归因于无囊喷射器的引入。然后,在许多燃烧室几何形状中研究了缸内空气运动,并确定了产生最高缸内涡流和绕压缩上止点(TDC)的湍流动能(TKE)的几何形状。凹入式活塞碗几何形状的最佳性质已通过详细的燃烧模拟和排放预测得到确认。

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