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Computational study of the influence of in-cylinder flow on spark ignition-controlled auto-ignition hybrid combustion in a gasoline engine

机译:缸内流量对汽油发动机火花点火控制自动点火混合燃烧影响的计算研究

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In this research, computational fluid dynamics simulations were performed to investigate the effect of in-cylinder flow motion on the in-cylinder conditions and spark ignition-controlled auto-ignition hybrid combustion. It is proved in this study that asymmetric intake valve events could be used to generate the swirl-dominated flow motion. However, the macroscopic flows, such as the swirl and tumble, show very weak correlations with zone-to-zone conditions and hybrid combustion process. The detailed investigation on the in-cylinder zone-to-zone conditions indicates that the in-cylinder turbulent kinetic energy level and the mean flow velocity (Vm) around the spark plug would directly affect the early flame propagation process, which in turn affect the subsequent auto-ignition process through changing the heat transfer between central burned gas and end-gas. In addition, the increased temperature inhomogeneity of the spherical zones caused by the in-cylinder flow motion would prolong the auto-ignition combustion. The structures of the flame front and auto-ignition sites also demonstrate the significant impact of in-cylinder motion on the combustion process. It is found that the combustion mode transition is very sensitive to the in-cylinder turbulent kinetic energy, Vm, and temperature and its inhomogeneity, indicating that these flow and thermal conditions could be used to optimize the hybrid combustion mode operation. It also proves the fluctuations of the in-cylinder flow, and thermal conditions could be the reasons leading to significant cycle-to-cycle variations in spark ignition-controlled auto-ignition hybrid combustion.
机译:在这项研究中,进行了计算流体动力学模拟,以研究缸内流动运动对缸内条件和火花点火控制的自动点火混合燃烧的影响。这项研究证明,不对称的进气门事件可用于产生旋涡主导的流动运动。但是,宏观的流动(例如旋流和滚流)与区域间条件和混合燃烧过程之间的相关性很弱。对缸内区域间条件的详细研究表明,缸内湍动能水平和火花塞周围的平均流速(Vm)将直接影响早期的火焰传播过程,进而影响火焰的早期传播。随后的自动点火过程是通过改变中央燃烧的气体与终端气体之间的热传递来实现的。另外,由于缸内流动运动引起的球形区域的温度不均匀性的增加将延长自燃燃烧。火焰前部和自动点火部位的结构也证明了缸内运动对燃烧过程的重大影响。发现燃烧模式过渡对缸内湍动能,温度和温度及其不均匀性非常敏感,这表明这些流动和热条件可用于优化混合燃烧模式的运行。它也证明了缸内流量的波动,并且热条件可能是导致火花点火控制的自动点火混合燃烧中不同周期之间变化显着的原因。

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