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A OD Phenomenological Model Using Detailed Tabulated Chemistry Methods to Predict Diesel Combustion Heat Release and Pollutant Emissions

机译:一种OD现象模型,使用详细的表格化学方法预测柴油燃烧热释放和污染物排放

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In the last two decades, piston engine specifications have deeply evolved. Indeed, new challenges nowadays concern the reduction of pollutant emissions (EURO regulations) and CO2 emissions. To satisfy these new requirements, powertrains have become very complex systems including a large number of high technology components (high pressure injectors, turbocharger, Exhaust Gas Recirculation (EGR) loop, after-treatment devices...). In this context, the engine control plays a major role in the development and the optimization of powertrains. Few years ago, engine control strategies were mainly defined by experiments on engine test benches. This approach is not adapted to the complexity of future engines: on the one hand, tests are too expensive and on the other hand, they do not give many information to understand interactions between components. Today, a promising alternative to tests may be the use of 0D/1D simulation tools. These methods have been widely used in the past ten years and allow to build engine control algorithms. However, they are generally based on empirical models and often suffer from a lack of predictivity. A solution for extending the range of application of the system simulation consists in developing more physical models based on the 3D calculations experience. This way has been recently followed at IFP Energies nouvelles, leading to the development and implementation of several libraries dedicated to powertrains (IFP-Engine, IFP-Exhaust) and drivetrains (IFP-Drive) in the AMESim simulation software. The work we propose here is coherent with the approach chosen at IFP Energies nouvelles and aims at developing a phenomenological model for the pollutants emissions in a combustion chamber of a piston engine. For this purpose, a model able to take into account multiple injections, conventional Diesel mode and Homogeneous Charge Compression Ignition (HCCI) mode have been developed modelling physical phenomena like: 1. spray atomisation and the liquid phase penetration -vaporisation deduced from a characteristic time 2. presumed mixing distribution computed with a p-function where the mixture fraction variance equation is obtained from the integration of turbulence, inlet/outlet spray zone mass and evaporation 3. The auto-ignition and diffusive combustion regimes determined by Flame Propagation of 1LDM (FPI / Intrinsic Low-Dimensional Manifolds) tabulation combined with turbulence regime by a Presumed Conditional Moments (PCM) method In this paper, we propose a modelling of NOx based on tabulations of a characteristic time and NO mass fraction equilibria. After a brief introduction of the combustion model, the NOx model is theoretically described and results on a Diesel conventional engine are presented, compared to experimental data.
机译:在过去的二十年中,活塞式发动机的规格已经深深的演变。事实上,新的挑战时下关注的污染物排放(欧规)和二氧化碳排放量的减少。为了满足这些新的要求,动力系统已经变得非常复杂的系统在内的大量高科技组件(高压喷射器,涡轮增压器,废气再循环(EGR)回路,后处理装置...)。在这种情况下,发动机的控制起着发展的重要作用和动力系统的优化。几年前,发动机控制策略主要是由发动机试验台上试验确定了。这种方法不适合于未来发动机的复杂性:一方面是,测试是太昂贵,而另一方面,他们不给多的信息,了解成分之间的相互作用。如今,一个很有前途的替代测试可能使用的0D / 1D仿真工具。这些方法已被广泛应用在过去的十年中,并允许建立发动机的控制算法。然而,他们一般是根据经验模型,往往由于缺乏预测性的困扰。一种用于扩展系统仿真的应用范围解决方案包括在开发基于3D计算体验更加的物理模型。这样,最近已在遵循IFP能源新生力量,从而致力于在AMESim仿真软件的动力系统(IFP发动机,IFP-排气)和传动系统(IFP-驱动器)的几个库的开发和实施。我们建议在这里工作的协调统一与IFP能源新生力量,旨在开发用于在活塞式发动机的燃烧室中的污染物排放现象模型选择的方法。为了这个目的,可以考虑到多次注射,常规柴油机模式和均质充量压缩点火(HCCI)模式的模型已经开发建模的物理现象,如:1.喷雾雾化,并从特征时间液相渗透-vaporisation推导2.其中从湍流的积分获得的混合物馏分方差方程的p函数来计算推定混合分布,入口/出口区喷雾质量和蒸发3.自动点火和扩散燃烧制度确定由1LDM的火焰传播( FPI /固有的低维流形)制表通过假定条件矩(PCM)方法在本文中与湍流方案联合,提出了一种基于的特性时间和NO质量分数均衡表格NOx的建模。简要介绍的燃烧模型后,所述NOx模型理论上描述并在柴油传统发动机的结果被呈现,对比实验数据。

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