天然气SI作业重入碗效应的数值模拟

Jinlong Liu, C. Dumitrescu
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引用次数: 5

摘要

重型压缩点火(CI)发动机转换为天然气(NG)火花点火(SI)操作,有可能增加天然气在交通运输领域的使用。通过在进气歧管中添加一个低压气体喷射器,并在柴油喷射器中添加一个火花塞,将传统的CI燃烧室几何形状(即复入式燃烧室和平头)转换为SI操作的单缸CI发动机的燃烧稳定性、性能和排放进行了3D数值模拟。基于g方程的三维CFD模拟研究了三种不同的燃烧室结构,在恒定压缩比和间隙高度下改变了压扁区域的大小。结果表明:不同的火焰传播速度可导致双区燃烧现象;更大的压扁区域增加了火焰燃烧速度,减少了燃烧后期的持续时间。所有这些发现都支持进一步研究燃烧室形状设计的必要性,以便在CI发动机转换为NG SI发动机时实现最佳发动机性能和排放。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Simulation of Re-Entrant Bowl Effects on Natural Gas SI Operation
Heavy-duty compression-ignition (CI) engines converted to natural gas (NG) spark ignition (SI) operation have the potential to increase the use of NG in the transportation sector. A 3D numerical simulation was used to predict how the conventional CI combustion chamber geometry (i.e., re-entrant bowl and flat head) affects the combustion stability, performance and emissions of a single-cylinder CI engine that was converted to SI operation by adding a low-pressure gas injector in the intake manifold and a spark plug in place of the diesel injector. The G-equation based 3D CFD simulation investigated three different combustion chamber configurations that changes the size of the squish region at constant compression ratio and clearance height. The results show that the different flame propagation speeds inside and outside the re-entrant bowl can create a two-zone combustion phenomenon. More, a larger squish region increased flame burning speed, which decreased late-combustion duration. All these findings support the need for further investigations of combustion chamber shape design for optimum engine performance and emissions in CI engines converted to NG SI operation.
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