Numerical study of the combustion process and NOx evolution mechanism of ammonia-hydrogen compound fuel engine under different intake conditions

被引:0
|
作者
Jiang, Mengqi [1 ]
Sun, Wanchen [1 ]
Guo, Liang [1 ]
Zhang, Hao [1 ]
Zhu, Genan [1 ]
Yu, Changyou [1 ]
Zhang, Junfeng [1 ]
Zhang, Guanghao [1 ]
Wang, Xiaonan [1 ]
机构
[1] Jilin Univ, State Key Lab Automot Simulat & Control, Changchun 130025, Peoples R China
基金
中国国家自然科学基金;
关键词
Intake component; Fuel NOx; Thermal NOx; Oxygen concentration; ENERGY; PERFORMANCE; REDUCTION; OXIDATION; STORAGE;
D O I
10.1016/j.joei.2024.101759
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
To explore the distinction between generation atmosphere of fuel NOx and thermal NOx in an ammoniahydrogen compound fuel engine, a numerical calculation model was established based on a detailed ammonia-hydrogen oxidation mechanism. The combustion process and NOx evolution mechanism of the ammonia-hydrogen compound fuel engine under different intake conditions were studied. The researchresults for different equivalence ratios show that the in-cylinder hydrogen volume is the primary factor influencing the initial heat release. When the equivalence ratio is between 0.89 and 1.14, the mixture exhibits a higher combustion rate, leading to a shorter CD and an earlier CA50. At this point, the heat release process closer to TDC contributes improving engine combustion efficiency and indicated efficiency. Therefore, when the equivalence ratio is between 0.89 and 1.00, combustion efficiency is higher than 98 % and indicated efficiency is higher than 43 %, the ammonia-hydrogen compound fuel engine achieves relatively higher economy. Both over-rich and over-dilute mixtures induce an enhancement of fuel NOx, while the higher in-cylinder temperature caused by stoichiometric combustion leads to a boom of thermal NOx. Consequently, the total NOx emission from the ammonia-hydrogen compound fuel engine is higher at equivalence ratios between 0.80 and 1.00, and the NOx emission reaches its peak at an equivalence ratio of 0.89. Analysis of the evolution process of key N components in the cylinder shows that incomplete combustion plays a significant role in fuel NOx emissions, while thermal NOx emissions are mainly influenced by the distribution of in-cylinder components and combustion temperature. Specifically, thermal NOx emissions primarily depend on the in-cylinder components distribution in the narrow equivalence ratio range around stoichiometric ratio, and are significantly affected by in-cylinder temperature under other conditions. The in-cylinder oxygen concentration significantly affects fuel NOx emissions under most operating conditions. Further optimization of intake temperature shows that combustion efficiency exceeds 90% when the intake temperature is above 280 K. When the intake temperature reaches 310 K, the combustion efficiency reaches up to 98 %, thus an intake temperature of about 310 K is sufficient to meet the need for improving the combustion efficiency of ammonia-hydrogen compound fuel engine. To achieve high efficiency and lower NOx emissions, appropriate lean combustion combined with an intake temperature slightly above room temperature is recommended.
引用
收藏
页数:11
相关论文
共 50 条
  • [41] Optical diagnostic study of ammonia-kerosene dual-fuel engine combustion process
    Zhu, Genan
    Sun, Wanchen
    Zhang, Hao
    Guo, Liang
    Yan, Yuying
    Lin, Shaodian
    Zeng, Wenpeng
    Jiang, Mengqi
    Yu, Changyou
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 81 : 110 - 126
  • [42] Investigation of the combustion process of hydrogen jets under argon-circulated hydrogen-engine conditions
    Abu Mansor, Mohd Radzi
    Shioji, Masahiro
    [J]. COMBUSTION AND FLAME, 2016, 173 : 245 - 257
  • [43] Numerical simulation on the combustion and NOx emission characteristics of a turbocharged opposed rotary piston engine fuelled with hydrogen under wide open throttle conditions
    Gao, Jianbing
    Xing, Shikai
    Tian, Guohong
    Ma, Chaochen
    Zhao, Meng
    Jenner, Phil
    [J]. FUEL, 2021, 285
  • [44] Effect of air humidity on premixed combustion of ammonia/air under engine relevant conditions: numerical investigation
    Mohammad Parsa Ghofrani Maab
    SayedMehrdad Bathaei
    Mirae Kim
    Javad Abolfazli Esfahani
    Kyung Chun Kim
    [J]. Journal of Thermal Analysis and Calorimetry, 2023, 148 : 8347 - 8364
  • [45] Effect of air humidity on premixed combustion of ammonia/air under engine relevant conditions: numerical investigation
    Maab, Mohammad Parsa Ghofrani
    Bathaei, SayedMehrdad
    Kim, Mirae
    Esfahani, Javad Abolfazli
    Kim, Kyung Chun
    [J]. JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2023, 148 (16) : 8347 - 8364
  • [46] Experimental study on the effect of hydrogen substitution rate on combustion and emission characteristics of ammonia internal combustion engine under different excess air ratio
    Xin, Gu
    Ji, Changwei
    Wang, Shuofeng
    Hong, Chen
    Meng, Hao
    Yang, Jinxin
    [J]. FUEL, 2023, 343
  • [47] Effects of injection timing and pilot fuel on the combustion of a kerosene-diesel/ammonia dual fuel engine: A numerical study
    Tay, Kun Lin
    Yang, Wenming
    Chou, Siaw Kiang
    Zhou, Dezhi
    Li, Jing
    Yu, Wenbin
    Zhao, Feiyang
    Mohan, Balaji
    [J]. 8TH INTERNATIONAL CONFERENCE ON APPLIED ENERGY (ICAE2016), 2017, 105
  • [48] Impact of spray interaction on ammonia/diesel dual-fuel combustion and emission under engine relevant conditions
    Xu, Leilei
    Dong, Pengbo
    Zhang, Zhenxian
    Bu, Jingqi
    Tian, Jiangping
    Long, Wuqiang
    Liu, Haifeng
    Bai, Xue-Song
    [J]. PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2024, 40 (1-4)
  • [49] Numerical Study of the Filling Process of a Liquid Hydrogen Storage Tank under Different Sloshing Conditions
    Wei, Guomeng
    Zhang, Jianfei
    [J]. PROCESSES, 2020, 8 (09)
  • [50] Numerical study of combustion flow field characteristics of industrial gas turbine under different fuel blending conditions
    Chen, Jingzhen
    Du, Jingtao
    Liu, Yang
    Liu, Long
    Li, Aoqi
    Jiang, Jiawei
    Sun, Peng
    [J]. APPLIED THERMAL ENGINEERING, 2024, 251