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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >Characteristics of the internal flow and the near-field spray of a single-hole injector and a multi-hole injector for diesel engines
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Characteristics of the internal flow and the near-field spray of a single-hole injector and a multi-hole injector for diesel engines

机译:柴油机单孔喷油器和多孔喷油器的内部流动和近场喷雾特性

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摘要

The geometric structure of a diesel fuel injector plays a significant role in the injected spray behaviours. Furthermore, the characteristics of diesel fuel spray are well known to have a crucial impact on the combustion process and the resulting engine performance. A single-hole diesel injector is usually applied in fundamental internal flow, spray and combustion research. On the contrary, under most realistic operating conditions, an axisymmetric multi-hole injector is used to couple with the combustion chamber. In the present paper, a detailed experimental investigation of the diesel fuel spray emerging from a single-hole nozzle and a multi-hole nozzle and a computational study of the internal flow inside these two kinds of configuration are reported. Globally, the analysis mainly focused on the different injection processes (the injection rate) and the spray structures of the single-hole nozzle and the multi-hole nozzle, keeping the same sac configuration, the same nozzle hole diameter of 0.1 mm and the same hole length of 0.8 mm for an injection quantity of 2 mm(3) per hole. High-speed images of the spray development were freeze captured by Mie scattering at 10,000 frames/s under the conditions where the rail pressure varies from 80 to 180 MPa, the ambient pressure is 1.5 MPa, the room temperature T = 298K and there is an air environment. Image-processing algorithms were used to determine the fuel spray characteristics. The experimental results revealed that the spray of a multi-hole nozzle with 10 holes had a longer injection duration, a lower injection rate, a shorter spray tip penetration, a wider spray angle and a wider spray cone angle than those of a single-hole nozzle. The spray behaviours of the multi-hole nozzle were more sensitive to variation in the pressure than those of the single-hole nozzle. Moreover, aiming to correlate the observed spray properties to the internal flow phenomenon, computational fluid dynamics simulations were also carried out under the baseline conditions. The more complicated internal flow inside the multi-hole nozzle provided added insight into the different spray characteristics for these two nozzles.
机译:柴油喷射器的几何结构在喷射的喷雾行为中起着重要作用。此外,众所周知,柴油喷雾的特性对燃烧过程和所产生的发动机性能具有至关重要的影响。单孔柴油喷射器通常用于基本的内部流动,喷雾和燃烧研究。相反,在最现实的工况下,轴对称多孔喷油器用于与燃烧室连接。在本文中,对单孔喷嘴和多孔喷嘴产生的柴油喷雾进行了详细的实验研究,并对这两种结构内部的内部流动进行了计算研究。在全球范围内,分析主要针对单孔喷嘴和多孔喷嘴的不同注射过程(注射速率)和喷雾结构,保持相同的囊状结构,相同的喷嘴孔直径(0.1 mm)和相同的每个孔的注射量为2 mm(3)时孔的长度为0.8 mm。在导轨压力从80到180 MPa变化,环境压力为1.5 MPa,室温T = 298K,且温度为190°F的条件下,通过10,000帧/秒的Mie散射冻结了喷雾显影的高速图像。空气环境。图像处理算法用于确定燃油喷雾特性。实验结果表明,与单孔喷嘴相比,具有10个孔的多孔喷嘴的喷射时间更长,喷射速率更低,喷嘴的针入度更短,喷射角度更大,锥角更大。喷嘴。与单孔喷嘴相比,多孔喷嘴的喷雾行为对压力变化更为敏感。此外,为了使观察到的喷雾特性与内部流动现象相关,还在基准条件下进行了计算流体动力学模拟。多孔喷嘴内部更复杂的内部流动提供了对这两个喷嘴不同喷雾特性的深入了解。

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