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Optimization of Cold Start Operating Conditions in a Stoichiometric GDI Engine with Wall-guided Piston using CFD Analysis

机译:使用CFD分析,使用壁引擎的化学计量GDI发动机冷启动操作条件优化

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The purpose of this paper is to investigate the mixture formation and optimize the operating conditions under cold start in a stoichiometric (λ=1) GDI engine with wall-guided piston using a 3D commercial code, STAR-CD [8]. For GDI engine under cold start, it can be difficult to carry out the optimization of operating conditions by engine test alone without the understanding of mixture formation inside the combustion chamber. In this study, three cold start conditions of the catalyst heating mode with split injection, the cranking under freezing temperature and acceleration before engine warm-up which causes oil dilution were calculated. In particular, injection strategy for each cold start condition were optimized and compared to the engine test data. The previously validated spray models [6] were applied to the analysis of the spray formation and mixing process inside the combustion chamber. Also, Bai's droplet-wall interaction model and liquid film model considering the film stripping on the surface were used for better prediction of wall film behavior. This approach reasonably predicts the interaction of the injected spray and the in-cylinder flow, the mixture distribution around the spark plug, and liquid film on the wall inside the combustion chamber. The analysis results show that under cold start with relatively low engine speed, injection parameters such as pressure, split injection ratio and timing strongly affect tumble flow, mixture formation and wall wetting. The results for the optimized injection conditions are qualitatively in good agreements with experimental data in terms of combustion stability (RPM variation), HC emission, and oil dilution.
机译:本文的目的是研究混合物形成,并在化学计量(λ= 1)GDI发动机中使用3D商业代码,STAR-CD [8]用壁引导活塞优化冷启动下的操作条件。对于冷启动下的GDI发动机,通过单独的发动机试验可以难以进行操作条件的优化,而不会理解燃烧室内的混合物形成。在该研究中,三个冷启动条件的催化剂加热模式具有分流注射,计算在发动机预热之前的冷冻温度和加速度下的曲柄,这使得油稀释稀释。特别地,针对每个冷启动条件的注射策略进行了优化,并与发动机测试数据进行比较。以前验证的喷雾模型[6]应用于燃烧室内的喷雾形成和混合过程的分析。此外,考虑到表面上的薄膜剥离的液滴壁相互作用模型和液膜模型用于更好地预测壁膜行为。该方法合理地预测喷射喷射的喷射和缸内流动的相互作用,在燃烧室内的壁上围绕火花塞周围的混合物分布。分析结果表明,在冷启动的发动机速度相对较低,注射参数如压力,分流率和定时强烈影响滚动流动,混合物形成和壁润湿。优化注射条件的结果与燃烧稳定性(RPM变异),HC发射和油稀释方面的实验数据具有良好的协议。

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