Characterizing injection and ignition of hydrogen and hydrogen-methane blend fuels in a static combustion chamber

被引:0
作者
Delbari, Hengameh [1 ]
Munshi, Sandeep [2 ]
McTaggart-Cowan, Gordon [1 ]
机构
[1] Simon Fraser Univ, Sch Sustainable Energy Engn, Surrey, BC, Canada
[2] Westport Fuel Syst Inc, Vancouver, BC, Canada
关键词
Gaseous jet; Hydrogen; Hydrogen-Methane blend; Hot surface ignition; Underexpanded jet; UNDER-EXPANDED HYDROGEN; NATURAL-GAS ENGINE; JETS;
D O I
10.1016/j.fuel.2024.133562
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Hydrogen offers a pathway to significant reductions in greenhouse gas emissions from transportation. Burning hydrogen in an internal combustion engine, either as the sole fuel or as a blend with natural gas, can leverage existing and accepted vehicle propulsion technologies. High net system efficiencies can be achieved with direct fuel injection late in the compression stroke to retain a diesel-like non-premixed combustion. Both hydrogen and methane have strong resistance to auto-ignition, meaning that a positive ignition source is required for reliable ignition. Understanding the interaction between ignition source and the gaseous fuel jet is critical to ensuring stable and robust ignition. In this work, the injection and ignition of hydrogen and blends with methane are evaluated in an optically accessible static combustion chamber. Schlieren imaging and in-chamber pressure were used to quantify the jet penetration and subsequent ignition. The impacts of changing gaseous fuel composition and injection parameters on jet penetration, momentum and dispersion are found to be minimal. Compared to methane, the lower density of hydrogen was offset by a higher nozzle exit velocity, leading to similar penetration rates. The transient jets were then ignited using a hot surface element in the path of the jet. The ignition delay was found to decrease with higher nozzle pressure ratios, with shorter transit time from the injector to the ignitor being the main factor. Reductions in chemical delay, quantified as the time between the arrival of the jet at the hot surface and subsequent ignition was primarily impacted by hot surface temperature. Under the conditions in the static chamber, ignition occurred primarily on the downstream side of the hot surface and the subsequent flame propagated in the downstream direction. Ignition delays increased substantially with methane-hydrogen blends, with stable ignition detected for concentrations of 60 % or more hydrogen by volume at the hot surface ignitor's maximum temperature of 1116 degrees C, while hydrogen jets were ignitable at temperatures as low as 760 degrees C. The results demonstrate the importance of the geometry, chamber pressure, and transit time on the ignition of the jet.
引用
收藏
页数:14
相关论文
共 50 条
  • [21] Limits of self-ignition in the process of hydrogen-methane mixtures release under high pressure into unconfined space
    Smygalina, A. E.
    Kiverin, A. D.
    JOURNAL OF ENERGY STORAGE, 2023, 73
  • [22] Effect of injection strategy on the hydrogen mixture distribution and combustion of the hydrogen-fueled engine with passive pre-chamber ignition under lean burn condition
    Qiang, Yanfei
    Cai, Xiaoqian
    Xu, Song
    Wang, Fuzhi
    Zhang, Lijun
    Wang, Shuofeng
    Ji, Changwei
    FUEL, 2024, 375
  • [23] Effects of split port/direct injection of methane and hydrogen in a spark ignition engine
    Biffiger, H.
    Soltic, P.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2015, 40 (04) : 1994 - 2003
  • [24] Comprehensive analysis of the combustion of low carbon fuels (hydrogen, methane and coke oven gas) in a spark ignition engine through CFD modeling
    Ortiz-Imedio, Rafael
    Ortiz, Alfredo
    Ortiz, Inmaculada
    ENERGY CONVERSION AND MANAGEMENT, 2022, 251
  • [25] Effect of hydrogen on hydrogen-methane turbulent non-premixed flame under MILD condition
    Mardani, Amir
    Tabejamaat, Sadegh
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (20) : 11324 - 11331
  • [26] Geobiological Features of Storage Hydrogen-Methane Mixtures in Underground Reservoirs
    Abramova, O. P.
    Filippova, D. S.
    SOCAR PROCEEDINGS, 2021, Oil Gas Scientific Research Project Institute : 66 - 74
  • [27] Laminar burning velocity of hydrogen-methane/air premixed flames
    Di Sarli, V.
    Di Benedetto, A.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2007, 32 (05) : 637 - 646
  • [28] Effect of combustion chamber geometry on performance and emissions of direct injection hydrogen engines
    Li, Lezhen
    Zheng, Zhaolei
    Rao, Shunlu
    Li, Qian
    Tang, Xuelin
    Deng, Wei
    FUEL, 2025, 382
  • [29] A Comparative Study of Sequential Hydrogen-methane and Independent Methane Production from Kitchen Wastes
    Zhao, M. -X.
    Yan, Q.
    Ruan, W. -Q.
    Miao, H. -F.
    Ren, H. -Y.
    Xu, Y.
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2012, 34 (11) : 1046 - 1054
  • [30] A Comprehensive Review on the Prospects of Using Hydrogen-Methane Blends: Challenges and Opportunities
    Makaryan, Iren A.
    Sedov, Igor, V
    Salgansky, Eugene A.
    Arutyunov, Artem, V
    Arutyunov, Vladimir S.
    ENERGIES, 2022, 15 (06)