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A piston geometry and nozzle spray angle investigation in a DI diesel engine by quantifying the air-fuel mixture

机译:通过量化空燃混合气来研究DI柴油机中的活塞几何形状和喷嘴喷雾角度

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摘要

Low temperature diesel combustion has been widely investigated over the last few years for reducing in-cylinder emissions of Direct Injection (DI) diesel engines without sacrificing efficiency and fuel consumption. The spatial distribution of the fuel within the combustion chamber and the air-fuel mixing quality are the key factors affecting temperature generation within the cylinder. Avoiding fuel rich areas within the cylinder can significantly reduce the local high temperatures resulting in low NOx formation. This paper investigates the effects of the combustion chamber geometry and spray angle on the air-fuel mixing and emissions formation of a DI diesel engine. A new quantitative factor measuring the air-fuel mixing quality has been adopted in order to analyze and compare air-fuel mixing quality for different piston geometries. The results have shown that pistons with a narrow entrance and a deep combustion re-entrant chamber benefit from increased air-fuel mixtures due to the significantly higher swirl generated within the cylinder. However, the improved air-fuel mixing does not consequently lead to a reduced NOx generation, which is highly affected by the combustion efficiency of the engine.
机译:在过去的几年中,为降低直喷式(DI)柴油机的缸内排放而未牺牲效率和燃料消耗,对低温柴油机燃烧进行了广泛的研究。燃烧室内燃料的空间分布和空燃混合质量是影响气缸内温度产生的关键因素。避免气缸内的燃料富集区域会显着降低局部高温,从而降低NOx的形成。本文研究了燃烧室几何形状和喷雾角度对DI柴油机的空燃混合和排放形成的影响。为了分析和比较不同活塞几何形状的空燃混合质量,采用了一种新的定量系数来测量空燃混合质量。结果表明,由于气缸内产生的涡流明显更高,进气口狭窄且燃烧室深度较深的活塞受益于增加的空气燃料混合物。然而,改善的空气-燃料混合不会因此导致减少的NO x产生,而NO x的产生很大程度上受到发动机的燃烧效率的影响。

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