首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Multidimensional Modeling of Natural Gas Jet and Mixture Formation in Direct Injection Spark Ignition Engines--Development and Validation of a Virtual Injector Model
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Multidimensional Modeling of Natural Gas Jet and Mixture Formation in Direct Injection Spark Ignition Engines--Development and Validation of a Virtual Injector Model

机译:直喷式火花点火发动机天然气射流和混合气形成的多维建模-虚拟喷油器模型的开发和验证

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During the last few years, the integration of CFD tools in the internal combustion (IC) engine design process has continually increased, allowing time and cost savings as the need for experimental prototypes has diminished. Numerical analyses of IC engine flows are rather complex from both the conceptual and operational sides. In fact, these flows involve a variety of unsteady phenomena and the right balance between numerical solution accuracy and computational cost should always be reached. The present paper is focused on computational modeling of natural gas (NG) direct injection (DI) processes from a poppet-valve injector into a bowl-shaped combustion chamber. At high injection pressures, the gas efflux from the injector and the mixture formation processes include turbulent and compressible flow features, such as rarefaction waves and shock formation, which are difficult to accurately capture with numerical simulations, particularly when the combustion chamber geometry is complex and the piston and intake/exhaust valve grids are moving. In this paper, a three-dimensional moving grid model of the combustion engine chamber, originally developed by the authors to include simulation of the actual needle lift, has been enhanced by increasing the accuracy in the proximity of the sonic section of the critical valve-seat nozzle, in order to precisely capture the expansion dynamics the methane undergoes inside the injector and immediately downstream from it. The enhanced numerical model was then validated by comparing the numerical results to Schlieren experimental images for gas injection into a constant-volume bomb. Numerical studies were carried out in order to characterize the fuel-jet properties and the evolution of mixture formation for a centrally mounted injector configuration in the case of a pancake-shaped test chamber and the real engine chamber. Finally, the fluid properties calculated by the model in the throat section of the critical nozzle were taken as reference data for developing a new effective virtual injector model, which allows the designer to remove the whole computational domain upstream from the sonic section of the nozzle, keeping the flow properties virtually unchanged there. The virtual injector model outcomes were shown to be in very good agreement with the results of the enhanced complete injector model, substantiating the reliability of the proposed novel approach.
机译:在过去的几年中,CFD工具在内燃机(IC)设计过程中的集成不断增加,由于对实验原型的需求减少,从而节省了时间和成本。从概念和操作两方面对内燃机的流量进行数值分析是相当复杂的。实际上,这些流涉及各种不稳定的现象,应该始终在数值解的精度和计算成本之间达到正确的平衡。本文的重点是从提升阀式喷射器到碗形燃烧室的天然气(NG)直接喷射(DI)过程的计算模型。在高喷射压力下,来自喷射器和混合物形成过程的气体外流包括湍流和可压缩的流动特征,例如稀疏波和冲击形成,这很难通过数值模拟准确地捕获,尤其是当燃烧室的几何形状复杂且活塞和进气/排气门格栅正在移动。在本文中,作者提高了在关键阀的声波部分附近的精度,从而增强了内燃机室的三维运动网格模型,该模型最初是由作者开发的,其中包括对实际针升程的模拟。座喷嘴,以便精确捕获甲烷在喷油器内部以及紧接其下游的膨胀动力学。然后,通过将数值结果与将气体注入到恒定体积炸弹中的Schlieren实验图像进行比较,验证了增强的数值模型。进行了数值研究,以表征在饼形测试室和实际发动机室的情况下,对于中央安装的喷射器配置,其燃料喷射特性和混合物形成的演变。最后,将模型在关键喷嘴的喉部截面中计算出的流体特性作为参考数据,以开发新的有效虚拟喷油器模型,从而使设计人员能够从喷嘴的声波部分上游移除整个计算域,在那里保持流动特性几乎不变。虚拟喷油器模型的结果表明与增强的完整喷油器模型的结果非常吻合,从而证实了所提出的新方法的可靠性。

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