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Experimental Investigation and Modeling of Early Flame Propagation Stages in Operating Conditions Representative of Modern High Efficiency Spark Ignition Engines

机译:现代高效火花点火发动机的操作条件早期火焰繁殖阶段的实验研究

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The present social context imposes effective reductions of transport greenhouse gases and pollutant emissions. To answer to this demand, car manufacturers adopted technologies such as downsizing, turbocharging, intense in-cylinder aerodynamics and diluted combustion process. In this context, to master mixture ignition is crucial to ensure an efficient heat release. To get to a clearer knowledge about the physics holding early stages of premixed mixture combustion, the PRISME institute in the framework of the French government research project ANR MACDOC generated a consistent experimental database to study ignition and spherical flame propagation processes in a constant volume vessel in laminar and turbulent environment. This allows to have a detailed description of the flame dynamics of an air / isooctane mixture depending on thermochemical properties of the mixture and nature of the diluent (O_2, H_2O, CO_2 and synthetic stoichiometric exhaust gas recirculation), as well as on turbulence intensity and ignition energy. A system simulation model based on the coherent flame model approach was then setup at IFP Energies nouvelles accounting for the influence of the flame stretch, through the integration of a non-linear formulation of the mixture Markstein number, and the flame wrinkling due to turbulence. The model allowed to have a deeper insight in the interpretation of experiments and to dissociate the interacting phenomena holding the combustion process. This modeling improving seems to be a necessary step to model next generation spark ignition engines operating under steady and transient conditions.
机译:现在的社会背景造成了有效减少运输温室气体和污染物排放。为了回答这种需求,汽车制造商采用了缩小化,涡轮增压,激烈的气体动力学和稀释燃烧过程等技术。在这种情况下,掌握混合点火是至关重要的,以确保有效的热释放。为了了解有关持有预混混合燃烧的早期阶段的物理学的知识,法国政府研究项目ANR MacDoc框架中的普遍研究所产生了一致的实验数据库,用于研究恒定容器中的点火和球形火焰传播过程层流和湍流环境。这允许根据稀释剂(O_2,H_2O,CO_2和合成化学计量的废气再循环的混合物和性质的热化学性质以及湍流强度和湍流强度和湍流强度,详细描述空气/异辛烷混合物的火焰动力学描述。以及湍流强度和湍流强度点火能量。然后,基于相干火焰模型方法的系统仿真模型在IFP能量Nouvelles占火焰拉伸的影响,通过整合混合物Markstein数的非线性制剂,以及由于湍流引起的火焰皱纹。该模型允许在对实验的解释中进行更深的洞察力,并解离持有燃烧过程的相互作用现象。这种建模改进似乎是模拟在稳定和瞬态条件下运行的下一代火花点火发动机的必要步骤。

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