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Computational studies of fuel injection strategies on natural gas combustion characteristics in direct-injection engines

机译:直喷发动机天然气燃烧特性燃油喷射策略的计算研究

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摘要

This paper studies the influences of different fuel injection strategies on flame propagation and combustion characteristics in a glow plug assisted direct-injection natural gas engine. Our previously existing version of the KIVA-3V CFD code incorporates a model of internal flows in the gaseous fuel injector and also a detailed model of the glow plug and its shield. This study was conducted by using the KIVA-3V code with added improved emissions models, including a detailed kinetic chemical model and a modified phenomenological soot model. In the simulation, a low temperature natural gas mechanism is selected to estimate the gaseous species, and acetylene was chosen as the key species to model the soot formation. The simulation indicated that the fuel injection duration, injector nozzle size and injection angle can affect the natural gas combustion characteristics. Generally, shorter injection duration reduces both peak cylinder pressure and emissions in the natural gas engine; however, the natural gas flame propagation cannot be maintained once the injected fuel mass is lower than a limit. The simulation also reveals that the injector nozzle size highly affects the natural gas combustion by inducing diffusion combustion for a small diameter nozzle and partially premixed combustion for a large diameter nozzle. Compared to a large nozzle, a small nozzle results in a faster pressure rise with more engine emissions and lower combustion efficiency. The fuel injection angle can influence natural gas combustion characteristics by affecting the flame propagation out of the glow plug shield in the initial combustion stage.
机译:本文研究了不同燃料喷射策略对发光插头辅助直喷天然气发动机中的火焰传播和燃烧特性的影响。我们以前现有的Kiva-3V CFD代码的版本包含了气体燃料喷射器中的内部流模型,也是发光塞及其屏蔽的详细模型。本研究通过使用kiva-3v码进行了添加的改进的排放模型,包括详细的动力学化学模型和修饰的现象学烟灰模型。在模拟中,选择低温天然气机制以估计气态物质,选择乙炔作为模拟烟灰地层的关键物种。模拟表明燃料喷射持续时间,喷射器喷嘴尺寸和注射角度可以影响天然气燃烧特性。通常,更短的注射持续时间减少了天然气发动机中的峰值气缸压力和排放。然而,一旦注入的燃料质量低于极限,就不能保持天然气火焰传播。仿真还揭示了喷射器喷嘴尺寸通过诱导小直径喷嘴的扩散燃烧和用于大直径喷嘴的部分预混燃烧来高度影响天然气燃烧。与大喷嘴相比,小喷嘴导致更快的压力升高,具有更多的发动机排放和较低的燃烧效率。燃料喷射角度可以通过影响初始燃烧阶段中的发光塞屏蔽的火焰传播来影响天然气燃烧特性。

著录项

  • 来源
    《Fuel》 |2021年第15期|119823.1-119823.19|共19页
  • 作者

    Pan Kang; Wallace James;

  • 作者单位

    Univ Toronto Dept Mech & Ind Engn 5 Kings Coll Rd Toronto ON M5S 3G8 Canada;

    Univ Toronto Dept Mech & Ind Engn 5 Kings Coll Rd Toronto ON M5S 3G8 Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Natural gas; Fuel injection; Engine emissions; Flame propagation; Combustion efficiency;

    机译:天然气;燃油喷射;发动机排放;火焰繁殖;燃烧效率;
  • 入库时间 2022-08-19 01:50:24
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