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Kinetic Study of the Ignition Process of Methane/n-Heptane Fuel Blends under High-Pressure Direct-Injection Natural Gas Engine Conditions

机译:高压直喷天然气发动机条件下甲烷/正庚烷燃料共混物点火过程的动力学研究

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摘要

High-pressure direct-injection (HPDI) natural gas engines continue to draw much attention for the highly efficient and clean combustion process compared to traditional diesel engines. However, the real ignition processes of HPDI natural gas engines are very different from the ignition processes of in -heptane/methane/air mixtures. In this work, the ignition of homogeneous in -heptane/methane mixtures in a constant-volume chamber under HPDI natural gas enginelike conditions is numerically studied. Results show that the temperature and equivalence ratio have a significant effect on ignition delays over a wide range of conditions, whereas the effects of the pressure and the methane mass fraction are only profound at low temperatures. A small number of intermediate species almost does not influence the effects of various factors (temperature, equivalence ratio, pressure, and methane mass fraction) on the ignition of the fuel blends. With more intermediate species, the effects of equivalence ratio on the ignition of the fuel blends are further mitigated. Based on the calculated results, ignition delay regions were categorized into four major regions by the equivalence ratio and methane mass fraction in fuel/air mixtures. A small number of intermediate species almost does not affect the four regions. However, with more intermediate species, the four regions are very different from those of fuel/air mixtures. The sensitivity analysis indicates that intermediate species can significantly reduce the effects of in -heptane-related reactions. Rates of production (ROP) analyses show that a small number of intermediate species almost has no effect on ROPs, whereas more intermediate species mainly affect not only the ROPs but also the temperature. Reaction path analysis shows that the intermediate species have a significant influence on the reaction paths of both in -heptane and methane. This work can provide a theoretical basis for further investigation of the ignition control of HPDI dual-fuel engines.
机译:与传统的柴油发动机相比,高压直喷(HPDI)天然气发动机继续吸引高效和清洁的燃烧过程。然而,HPDI天然气发动机的真实点火过程与 N胚环/空气混合物的点火过程非常不同。在这项工作中,在数值下研究了在HPDI天然气通向条件下恒定体积室中均相 N-庚烷/甲烷混合物的点火。结果表明,温度和等效比对点火延迟在广泛的条件下具有显着影响,而压力和甲烷质量分数的影响仅在低温下深度。少数中间物种几乎不会影响各种因素(温度,等效比,压力和甲烷质量分数)对燃料混合物点火的影响。通过更多的中间物种,进一步减轻了燃料混合物点火上的等效比的影响。基于计算结果,点火延迟区域通过燃料/空气混合物中的等效比和甲烷质量分分为四个主要区域。少数中间物种几乎不会影响四个区域。然而,具有更多中间物种,四个区域与燃料/空气混合物的四个区域非常不同。敏感性分析表明中间物质可以显着降低与N庚烷相关反应的影响。生产率(ROP)分析表明,少量的中间物种几乎对ROP没有影响,而更多的中间物种主要影响ROP,而且影响温度。反应路径分析表明中间物质对 N-庚烷和甲烷的反应路径有显着影响。这项工作可以为进一步调查HPDI双燃料发动机的点火控制提供理论依据。

著录项

  • 来源
    《Energy & fuels》 |2020年第11期|14796-14813|共18页
  • 作者单位

    State Key Laboratory of Engines Tianjin University;

    State Key Laboratory of Engines Tianjin University;

    State Key Laboratory of Engines Tianjin University;

    State Key Laboratory of Engines Tianjin University;

    State Key Laboratory of Engines Tianjin University;

    CSSC Marine Power Co. Ltd;

    CSSC Marine Power Co. Ltd;

    State Key Laboratory of Engines Tianjin University;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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