Effect of piston shapes and fuel injection strategies on stoichiometric stratified flame ignition (SFI) hybrid combustion in a PFI/DI gasoline engine by numerical simulations

被引:27
|
作者
Wang, Xinyan [1 ]
Zhao, Hua [1 ,2 ]
Xie, Hui [1 ]
机构
[1] Tianjin Univ, State Key Lab Engines, Tianjin 300072, Peoples R China
[2] Brunel Univ, Ctr Adv Powertrain & Fuels, London, England
关键词
Computational fluid dynamics; Hybrid combustion; Stratified mixture; Controlled auto-ignition; Gasoline engine; SINGLE;
D O I
10.1016/j.enconman.2015.03.063
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this research, the stratified flame ignition (SF!) hybrid combustion process was proposed to enhance the control of SI-CAI hybrid combustion and moderate the maximum pressure rise rate (PRRmax) by the combination of port fuel injection (PFI) and direct injection (DI). The effect of the stratified flame formed by different piston shapes, start of direct injection (SOI) timings and direct injection ratios (rot) on the stoichiometric SFI hybrid combustion and heat release process was studied using the three-dimensional computational fluid dynamics (3-D CFD) simulations. The spark ignited flame propagation near the spark plug and the auto-ignition heat release process of the diluted mixture were modelled in the framework of 3-Zones Extended Coherent Flame Model (ECFM3Z) by the extended coherent flame model and tabulated auto-ignition chemistry of a 4-component gasoline surrogate, respectively. The operating load of indicated mean effective pressure (IMEP) 3.6 bar was selected to represent a typical part-load operation. The sweep of the spark timing (ST) was performed for different pistons, SOI timings and direct injection ratios. The SFI hybrid combustion process with the same combustion phasing was investigated in details. The optimal stratified mixture pattern, characterized with the central rich mixture around spark plug and stratified lean mixture at the peripheral region, formed by the newly designed Piston A and B effectively lowers the PRRmax with a slight deterioration of IMEP. The later SOI timing advances the crank angle of 50% total heat release (CA50) and significantly reduces the PRRmax with a little deterioration of IMEP. As the direct injection ratio is increased, both the PRRmax, and IMEP decrease. During the SFI hybrid heat release process, spark timing is effective to control CA50, IMEP and PRRmax, regardless the piston shapes, SOI timings and direct injection ratios. However, the sensitivity of SFI hybrid combustion to the stratified mixture varies with the spark timing. The reduction of the PRRmax. caused by the stratified flame enables the advance of spark timing to achieve maximum IMEP. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:387 / 400
页数:14
相关论文
共 24 条
  • [21] Effect of direct injection dimethyl ether on the micro-flame ignited (MFI) hybrid combustion and emission characteristics of a 4-stroke gasoline engine
    Fu, Xue-Qing
    He, Bang-Quan
    Li, Hong-Tao
    Chen, Tao
    Xu, Si-Peng
    Zhao, Hua
    FUEL PROCESSING TECHNOLOGY, 2017, 167 : 555 - 562
  • [22] Effect of direct injection dimethyl ether on the micro-flame ignited (MFI) hybrid combustion characteristics of an optical gasoline engine at ultra-lean conditions
    Li, Xiao
    He, Bang-Quan
    Zhao, Hua
    FUEL PROCESSING TECHNOLOGY, 2020, 203
  • [23] Three-dimensional numerical simulations on the effect of ignition timing on combustion characteristics, nitrogen oxides emissions, and energy loss of a hydrogen fuelled opposed rotary piston engine over wide open throttle conditions
    Gao, Jianbing
    Tian, Guohong
    Ma, Chaochen
    Xing, Shikai
    Huang, Liyong
    FUEL, 2021, 288 (288)
  • [24] Investigation of the chemical effect of pilot injection on main combustion in a gasoline controlled auto-ignition engine by in-cylinder measurements and numerical simulation of H2O2, HO2, and OH radicals
    Steeger, Fabian
    Raffius, Thomas
    Schulz, Christian
    Ratz, Frederik
    Morcinkowski, Bastian
    Lehrheuer, Bastian
    Gruenefeld, Gerd
    Pischinger, Stefan
    COMBUSTION AND FLAME, 2022, 244