Analysis of the effect of the number of injector nozzles on the pressure and heat transfer coefficient in a hydrogen-diesel mixture diesel engine

被引:0
作者
Zareei, Javad [1 ]
Alvarez, Jose R. Nunez [2 ]
机构
[1] Ferdowsi Univ Mashhad, Dept Biosyst Engn, Mashhad, Iran
[2] Univ La Costa, Energy Dept, Barranquilla, Colombia
关键词
Injector; Nozzle; Heat transfer coefficient; Diesel; Hydrogen; NATURAL-GAS; COMBUSTION; PERFORMANCE; FLOW; CFD;
D O I
10.1016/j.ijhydene.2023.11.175
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In reciprocating internal combustion engines, the calculation of the heat transfer coefficient (HTC) is essential to estimate the heat transfer during combustion in the combustion chamber. The HTC calculation takes into account fluid flow and combustion processes and varies as a function of crank angle and location within the chamber. The mean HTC value is commonly used to calculate the thermo-mechanical analysis of various combustion chamber components. In this study, dynamic grids for the intake port, exhaust port and chamber are created in the chamber modelling section of the AVL-Fire software. The intake and combustion processes are then simulated and the calculated pressure data are compared with experimental data at 2800 rpm with 1, 3 and 6 hole injectors. Finally, the distribution of HTC over the chamber walls was evaluated using a time step method. The research also included verification of the HTC results with theoretical data obtained by Woschni and Hohenberg. In addition, with the decreasing availability of fossil fuels and the need for lower exhaust emissions from diesel engines, the use of blends of diesel and hydrogen fuel has become widespread. In this engine, a mixture of 10 % hydrogen and 90 % diesel fuel is used. The final results show that the heat transfer coefficient increases by approximately 1.72 % when hydrogen is added to diesel fuel due to the number of collisions between hydrogen and other fuel components.
引用
收藏
页码:1148 / 1156
页数:9
相关论文
共 55 条
  • [1] Variation of turbulent kinetic energy due to dimples in intake manifold for diesel engine
    Abidi, Shahim Haider
    Hasan, M. M.
    [J]. CASE STUDIES IN THERMAL ENGINEERING, 2021, 27
  • [2] Ahsan M., 2014, Beni-Suef Univ. J. Basic Appl. Sci., V3, P269, DOI [10.1016/j.bjbas.2014.12.001, DOI 10.1016/J.BJBAS.2014.12, DOI 10.1016/J.BJBAS.2014.12.001, 10.1016/j.bjbas.2014.12]
  • [3] A review of hydrogen usage in internal combustion engines (gasoline-Lpg-diesel) from combustion performance aspect
    Akal, Dincer
    Oztuna, Semiha
    Buyukakin, Mustafa Kemalettin
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (60) : 35257 - 35268
  • [4] Alkhareef H., 2017, Development of Ultra-Low Emissions Gas Turbine Combustor System
  • [5] Annand W., 1986, The Thermodynamics and Gas Dynamics of Internal Combustion Engines, V2
  • [6] Avl Fire, 2013, Avl Fire version 2013
  • [7] Avl Fire. Combustion, 2013, Avl Fire version 2013
  • [8] Heat transfer in premixed spark ignition engines part I: Identification of the factors influencing heat transfer
    Broekaert, Stijn
    Demuynck, Joachim
    De Cuyper, Thomas
    De Paepe, Michel
    Verhelst, Sebastian
    [J]. ENERGY, 2016, 116 : 380 - 391
  • [9] Influence of the wall temperatures of the combustion chamber and intake ports on the charge temperature and knock characteristics in a spark-ignited engine
    Cho, Seokwon
    Song, Chiheon
    Kim, Namho
    Oh, Sechul
    Han, Dong
    Min, Kyoungdoug
    [J]. APPLIED THERMAL ENGINEERING, 2021, 182
  • [10] Coosemans R, 2021, Phys Plasmas, P28