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A fully coupled computational fluid dynamics and multi-zone model with detailed chemical kinetics for the simulation of premixed charge compression ignition engines

机译:完全耦合的计算流体动力学和具有详细化学动力学的多区域模型,用于模拟预混合增压压燃式发动机

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Modelling the premixed charge compression ignition (PCCI) engine requires a balanced approach that captures both fluid motion as well as low- and high-temperature fuel oxidation. A fully integrated computational fluid dynamics (CFD) and chemistry scheme (i.e. detailed chemical kinetics solved in every cell of the CFD grid) would be the ideal PCCI modelling approach, but is computationally very expensive. As a result, modelling assumptions are required in order to develop tools that are computationally efficient, yet maintain an acceptable degree of accuracy. Multi-zone models have been previously shown accurately to capture geometry-dependent processes in homogeneous charge compression ignition (HCCI) engines. In the presented work, KIVA-3V is fully coupled with a multi-zone model with detailed chemical kinetics. Computational efficiency is achieved by utilizing a low-resolution discretization to solve detailed chemical kinetics in the multi-zone model compared with a relatively high-resolution CFD solution. The multi-zone model communicates with KIVA-3V at each computational timestep, as in the ideal fully integrated case. The composition of the cells, however, is mapped back and forth between KIVA-3V and the multi-zone model, introducing significant computational time savings. The methodology uses a novel re-mapping technique that can account for both temperature and composition non-uniformities in the cylinder. Validation cases were developed by solving the detailed chemistry in every cell of a KIVA-3V grid. The new methodology shows very good agreement with the detailed solutions in terms of ignition timing, burn duration, and emissions.
机译:对预混合增压压缩点火(PCCI)发动机进行建模需要一种平衡的方法,该方法既可以捕获流体运动,也可以捕获低温和高温燃料氧化。完全集成的计算流体动力学(CFD)和化学方案(即在CFD网格的每个单元中求解的详细化学动力学)将是理想的PCCI建模方法,但在计算上非常昂贵。结果,需要建模假设以便开发在计算上有效但仍保持可接受程度的准确性的工具。先前已正确显示了多区域模型,以捕获均质充量压缩点火(HCCI)发动机中与几何相关的过程。在提出的工作中,KIVA-3V与具有详细化学动力学的多区域模型完全耦合。与相对高分辨率的CFD解决方案相比,通过利用低分辨率离散化来解决多区域模型中的详细化学动力学,可以实现计算效率。与理想的完全集成案例一样,多区域模型在每个计算时间步长都与KIVA-3V通信。但是,单元的组成在KIVA-3V和多区域模型之间来回映射,从而节省了大量计算时间。该方法使用一种新颖的重新映射技术,可以解决圆柱体中的温度和成分不均匀性。通过解决KIVA-3V网格每个单元中的详细化学反应来开发验证案例。在点火正时,燃烧持续时间和排放方面,新方法与详细解决方案非常吻合。

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