Numerical simulation of ignition delay time for petroleum and renewable fuels

被引:5
|
作者
Lee, Hao [1 ]
Dahiya, Anurag [2 ]
Lin, Kuang C. [2 ]
Chen, Xiang-Xin [1 ]
Wang, Wei-Cheng [1 ]
机构
[1] Natl Cheng Kung Univ, Dept Aeronaut & Astronaut, Tainan 70101, Taiwan
[2] Natl Tsing Hua Univ, Dept Engn & Syst Sci, Hsinchu 300044, Taiwan
关键词
HRJ; HRD; Chemical kinetic mechanism; Surrogates; Ignition delay time; PHYSICS-BASED APPROACH; CONSTANT VOLUME SPRAY; SOOTING INDEX TSI; JET FUEL; REAL-FUEL; COMBUSTION CHEMISTRY; CHEMICAL-PROPERTIES; SURROGATE FUEL; AUTOIGNITION; OXIDATION;
D O I
10.1016/j.fuel.2021.121345
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
In this research, the composition and proportion of surrogates were first determined according to the composition of the petrochemical and renewable fuels. Then, the CHBR model in CHEMKIN-Pro software was used to verify the ignition delay time of HRJ, JP-5, and HRD. The differences in the ignition delay time of the fuels under an equivalence ratio of 1.0, different pressures (8, 11, 30 bar), and a pressure of 20 bar, and different equivalence ratios (0.5, 1.0, 1.5) are discussed. Among the three types of aviation fuel, the ignition delay time of HRJ in the low-temperature range was the shortest, while that of JP-5 was the longest. The average ignition delay time of HRJ in the low-temperature range under different equivalence ratios and pressures was approximately 59% and 57% lower than that of JP-5, respectively. On the other hand, the average ignition delay time of HRD in the lowtemperature range at different equivalence ratios and pressures was 45% and 55% lower than that of petrochemical diesel, respectively. The ignition delay time of all of the fuels was shorter when the pressure was increased.
引用
收藏
页数:10
相关论文
共 50 条
  • [41] Data assimilation for combustion ignition delay time simulation using schlieren image velocimetry
    Yakeno, Aiko
    Inamura, Rin
    Watanabe, Naoki
    Yoshimura, Ryoichi
    Obayashi, Shigeru
    Kurimoto, Naoki
    Skeen, Scott
    FLOW MEASUREMENT AND INSTRUMENTATION, 2024, 97
  • [42] Numerical calculation of minimum ignition energy for hydrogen and methane fuels
    Kim, HJ
    Chung, SH
    Sohn, CH
    KSME INTERNATIONAL JOURNAL, 2004, 18 (05): : 838 - 846
  • [43] Numerical Calculation of Minimum Ignition Energy for Hydrogen and Methane Fuels
    Hong Jip Kim
    Suk Ho Chung
    Chae Hoon Sohn
    KSME International Journal, 2004, 18 : 838 - 846
  • [44] Numerical simulation of back discharge ignition
    Jansky, Jaroslav
    Gaychet, Sylvain
    Bessieres, Delphine
    Soulem, Nicolas
    Paillol, Jean
    Lemont, Florent
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2014, 47 (06)
  • [45] Research on numerical simulation and ignition time for ship-based missile launch
    Chen, Yu-Jun
    Jiang, Yi
    Zhao, Gang-Lian
    Guti Huojian Jishu/Journal of Solid Rocket Technology, 2011, 34 (06): : 698 - 702
  • [46] NUMERICAL-SIMULATION OF IGNITION PROCESSES
    WARNATZ, J
    NUMERICAL COMBUSTION, 1989, 351 : 149 - 170
  • [47] Numerical simulation of the ignition of a fill with time-dependent gas flow through
    Scheidemann, E
    Adomeit, G
    COMBUSTION AND INCINERATION - EIGHTEENTH DUTCH-GERMAN CONFERENCE ON FLAMES, 1997, 1313 : 579 - 583
  • [48] Application of a spark ignition engine simulation tool for alternative fuels
    Mustafi, Nirendra N.
    Raine, Robert R.
    JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER-TRANSACTIONS OF THE ASME, 2008, 130 (01):
  • [49] Numerical study on laminar burning velocity and ignition delay time of ammonia flame with hydrogen addition
    Li, Jun
    Huang, Hongyu
    Kobayashi, Noriyuki
    Wang, Chenguang
    Yuan, Haoran
    ENERGY, 2017, 126 : 796 - 809
  • [50] Algorithm for time-delay interferometry numerical simulation and sensitivity investigation
    Wang, Gang
    Ni, Wei-Tou
    Han, Wen-Biao
    Qiao, Cong-Feng
    PHYSICAL REVIEW D, 2021, 103 (12)