Laminar burning velocity and Markstein length of ammonia/air flames up to the initial mixture pressure of 2.0 MPa

被引:0
|
作者
Hayakawa, Akihiro [1 ]
Nagaoka, Takehiro [1 ,2 ]
Kosada, Hajime [1 ,2 ]
Takeishi, Hiroyuki [3 ]
Kudo, Taku [1 ]
Nakamura, Hisashi [1 ]
机构
[1] Tohoku Univ, Inst Fluid Sci, 2-1-1 Katahira,Aoba Ku, Sendai, Miyagi 9808577, Japan
[2] Tohoku Univ, Dept Aerosp Engn, 6-6-01 Aoba,Aoba Ku, Sendai, Miyagi 9808579, Japan
[3] Mitsubishi Heavy Ind Co Ltd, Res & Innovat Ctr, 2-1-1 Shinhama,Arai Cho, Takasago, Hyogo 6768686, Japan
关键词
Ammonia; Laminar burning velocity; Markstein length; High pressure; High temperature; PREMIXED FLAMES;
D O I
10.1016/j.proci.2024.105778
中图分类号
O414.1 [热力学];
学科分类号
摘要
The utilization of ammonia as a fuel is a promising method to achieve carbon neutrality by 2050. Ammonia utilization in the power generation sector is one of potential applications with numerous studies on ammonia combustion having been carried out for its application in gas turbines. The pressure ratio of the latest large-scale gas turbines is as high as over 20. Therefore, fundamental combustion characteristics at high pressure need to be clarified to employ ammonia for the fuel of large-scale gas turbines. In this study, laminar burning velocity and Markstein length were experimentally evaluated up to 2.0 MPa for the first time using a newly designed constant volume combustion chamber withstand a maximum pressure of 12 MPa. Spherically propagating ammonia/air premixed flames were observed using high-speed schlieren photography with a continuous light source and highspeed camera. Since laminar burning velocity of ammonia is slow, significant influence of buoyancy on laminar flame propagation characteristics should be taken into account. In this study, ignition influenced period and buoyancy influenced period were carefully determined. Using a non-linear relationship between flame propagation speed and flame stretch rate, the laminar burning velocity and Markstein length were determined. Laminar burning velocity was also evaluated using numerical simulations with detailed reaction mechanisms. As results, it was clarified that the reaction mechanisms developed by Gotama et al. and Han et al. agreed well with experimental results. In addition, an increase in flame propagation speed was observed especially at high pressure conditions due to the hydrodynamic instability even for ammonia flames which has a greater flame thickness. The results of this study are valuable for understanding and validating ammonia combustion chemistry at high pressure conditions.
引用
收藏
页数:7
相关论文
共 50 条
  • [31] Measuring the laminar burning velocity and Markstein length of premixed methane/nitrogen/air mixtures with the consideration of nonlinear stretch effects
    Miao, Haiyan
    Liu, Yan
    FUEL, 2014, 121 : 208 - 215
  • [32] Laminar Burning Velocity and Markstein Length of CH4/CO2/Air Premixed Flames at Various Equivalence Ratios and CO2 Concentrations Under Elevated Pressure
    Anggono, Willyanto
    Hayakawa, Akihiro
    Okafor, Ekenechukwu C.
    Gotama, Gabriel Jeremy
    Wongso, Stevan
    COMBUSTION SCIENCE AND TECHNOLOGY, 2021, 193 (14) : 2369 - 2388
  • [33] Experimental Study on the Effect of Hydrogen Addition on the Laminar Burning Velocity of Methane/Ammonia-Air Flames
    Yasiry, Ahmed
    Wang, Jinhua
    Zhang, Longkai
    Dai, Hongchao
    Abdulraheem, Ahmed A. A.
    Shahad, Haroun A. K.
    Huang, Zuohua
    APPLIED SCIENCES-BASEL, 2023, 13 (10):
  • [34] Laminar burning velocity and Markstein length of nitrogen diluted natural gas/hydrogen/air mixtures at normal, reduced and elevated pressures
    Miao, Haiyan
    Ji, Min
    Jiao, Qi
    Huang, Qian
    Huang, Zuohua
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2009, 34 (07) : 3145 - 3155
  • [35] Effects of Pressure, Temperature and Dilution on Fuels/Air Mixture Laminar Flame Burning Velocity
    Brusca, Sebastian
    Lanzafame, Rosario
    Garrano, Adriana Marino Cugno
    Messina, Michele
    70TH CONFERENCE OF THE ITALIAN THERMAL MACHINES ENGINEERING ASSOCIATION, ATI2015, 2015, 82 : 125 - 132
  • [36] Laminar Burning Velocities of Ammonia/n-Heptane/Air Mixtures at Pressures up to 1.0 MPa
    Liu, Biao
    Zhou, Mengni
    Zhang, Zunhua
    Song, Qingfeng
    Belal, Belal Y.
    Li, Gesheng
    ENERGY & FUELS, 2024, 38 (17) : 16896 - 16910
  • [37] Measurement of Laminar Burning Velocities and Markstein Lengths for Diethyl Ether-Air Mixtures at Different Initial Pressure and Temperature
    Di, Yage
    Huang, Zuohua
    Zhang, Ni
    Zheng, Bin
    Wu, Xuesong
    Zhang, Zhiyuan
    ENERGY & FUELS, 2009, 23 (5-6) : 2490 - 2497
  • [38] Laminar burning velocity of Ammonia/Air mixtures at high pressures
    Alvarez, Luis F.
    Shaffer, James
    Dumitrescu, Cosmin E.
    Askari, Omid
    FUEL, 2024, 363
  • [39] Laminar burning velocity of nitromethane plus air flames: A comparison of flat and spherical flames
    Naucler, Jenny D.
    Nilsson, Elna J. K.
    Konnov, Alexander A.
    COMBUSTION AND FLAME, 2015, 162 (10) : 3803 - 3809
  • [40] Effects of CH4 mixing on the laminar burning velocity and Markstein length of RP-3/air premixed flame
    Liu, Yu
    Wang, Jinduo
    Gu, Wu
    Ma, Hongan
    Zeng, Wen
    FUEL, 2021, 289