Experimental Study on Diesel Spray and Flame Asymmetry Characteristics of Dual-Orifice Nozzles for a Medium-Speed Engine

  • JU Dehao ,
  • LIU Rui ,
  • ZHENG Liang ,
  • DENG Jiahui ,
  • ZHANG Wenzheng ,
  • HUO Jinlu ,
  • HUANG Li
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  • 1. Shanghai Marine Diesel Engine Research Institute, Shanghai 201108, China
    2. National Key Laboratory of Marine Engine Science and Technology, Shanghai 201108, China
    3. Key Laboratory for Power Machinery and Engineering, Ministry of Education, Shanghai Jiao Tong University, Shanghai 200240, China

网络出版日期: 2025-01-09

基金资助

This work was financially supported by the Ministry of Science and Technology (National Key Research and Development Program - Strategic Technology Innovation Collaboration Project, Grant No: 2022YFE0209000), the Natural Science Foundation of Shanghai (Grant Nos. 21DZ1208100 & 22170712600) and Chongqing Natural Science Foundation (Grant No. CSTB2022NSCQ-MSX1589).

版权

Science Press, Institute of Engineering Thermophysics, CAS and Springer-Verlag GmbH Germany, part of Springer Nature 2024

Experimental Study on Diesel Spray and Flame Asymmetry Characteristics of Dual-Orifice Nozzles for a Medium-Speed Engine

  • JU Dehao ,
  • LIU Rui ,
  • ZHENG Liang ,
  • DENG Jiahui ,
  • ZHANG Wenzheng ,
  • HUO Jinlu ,
  • HUANG Li
Expand
  • 1. Shanghai Marine Diesel Engine Research Institute, Shanghai 201108, China
    2. National Key Laboratory of Marine Engine Science and Technology, Shanghai 201108, China
    3. Key Laboratory for Power Machinery and Engineering, Ministry of Education, Shanghai Jiao Tong University, Shanghai 200240, China

Online published: 2025-01-09

Supported by

This work was financially supported by the Ministry of Science and Technology (National Key Research and Development Program - Strategic Technology Innovation Collaboration Project, Grant No: 2022YFE0209000), the Natural Science Foundation of Shanghai (Grant Nos. 21DZ1208100 & 22170712600) and Chongqing Natural Science Foundation (Grant No. CSTB2022NSCQ-MSX1589).

Copyright

Science Press, Institute of Engineering Thermophysics, CAS and Springer-Verlag GmbH Germany, part of Springer Nature 2024

摘要

多孔喷雾的不对称性会导致船用柴油机热负荷不均匀,从而影响其工作性能和使用寿命。因此,深入了解多孔喷嘴的喷雾和火焰特性将指导喷嘴结构、针阀设计和柴油雾化燃烧过程的优化。为此,设计并定制了四组不同孔径(0.1~0.55mm)和质量流量的双孔喷嘴,覆盖典型的船用中速柴油机喷射工况,并使用高温高压定容弹模拟柴油机的实际缸内工作条件进行喷雾可视化实验。为了研究柴油机喷油器燃油喷雾的不对称性,本研究将多孔喷嘴简化为双孔喷嘴。结合X射线计算机断层扫描(CT)成像技术,研究了在构建的超临界环境中喷嘴内部结构对喷雾和火焰不对称性的影响。研究发现,入口角度和等效长径比的不对称性与双喷雾的不一致性呈正相关。随着喷射压力和喷孔直径的增加,双喷雾的不对称性变得更加明显,导致两种喷雾的点火延迟时间和点火位置存在更大的差异。此外,喷嘴直径的增加也会导致燃烧不稳定,导致火焰呈锯齿状。随着环境温度的升高,射流中液相的比例降低,喷雾前缘的相对密度降低。

本文引用格式

JU Dehao , LIU Rui , ZHENG Liang , DENG Jiahui , ZHANG Wenzheng , HUO Jinlu , HUANG Li . Experimental Study on Diesel Spray and Flame Asymmetry Characteristics of Dual-Orifice Nozzles for a Medium-Speed Engine[J]. 热科学学报, 2025 , 34(1) : 303 -322 . DOI: 10.1007/s11630-024-2057-2

Abstract

The asymmetry of the multi-orifice spray will cause uneven heat load of the marine diesel engine, thereby affecting its working performance and service life. Therefore, an in-depth understanding of the spray and flame characteristics of multi-orifice nozzles will guide the optimization of the nozzle structure, needle design and diesel atomization and combustion process. For this reason, four groups of dual-orifice nozzles with different hole diameters (0.1–0.55 mm) and mass flow rates covering the typical marine medium-speed diesel injections are designed and customized, and the constant volume chamber (CVC) with high temperature and pressure is used to simulate the actual in-cylinder working conditions of the diesel engine for the spray visualization experiment. To study the asymmetry of the fuel sprays discharged from a diesel injector, the multi-orifice nozzle is simplified as a dual-orifice nozzle in this study. Combined with X-ray Computed Tomography (CT) imaging technology, the influences of the nozzle internal structure on the spray and flame asymmetry are studied in the constructed supercritical environment. It is found that the asymmetry of the inlet angle and the equivalent length-diameter ratio is positively correlated with the inconsistency of the dual sprays. With an increase in the injection pressure and nozzle diameter, the asymmetry of the dual spray becomes more pronounced, resulting in greater disparities in the ignition delay times and ignition positions of the two sprays. Moreover, the increase in nozzle diameter also leads to combustion instability, resulting in a flame with a serrated appearance. With the increase of ambient temperature, the proportion of liquid phase in the jet decreases and the relative density of spray front decreases.

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