Numerical Investigation on the Effect of the Ignition Changes on the Combustion Process of a Free Piston Engine Generator Through Computational Fluid Dynamics

  • Xiaoxu Hu
  • , Huihua Feng*
  • , Chang Liu*
  • , Boru Jia
  • , Qiming Lei
  • , Lei Xu
  • , Yidi Wei
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

To address the challenges of short dwell time near top dead center (TDC) and uneven heat release, this paper presents a comprehensive analysis of the effects of different ignition schemes on combustion characteristics, flame formation and development, and emissions. A three-dimensional model of coupled reaction’s kinetic mechanism was established using Converge 3.0 and validated by experimental data. The results show that ignition position, whether synchronous or asynchronous changes, significantly influence pressure. The pressure in synchronous cases can reach up to 62.5 bar, representing a 10.8% increase, exhibiting a distinct upward trend with advanced ignition position. In asynchronous cases, the pressure variation shows a distinct nonlinear characteristic due to the negative effects of in-cylinder airflow and flame core collision. When the ignition position is advanced, the ignition delay increases for both synchronous and asynchronous strategies. However, for synchronous cases, the combustion duration is reduced by up to 1.5 ms, whereas for asynchronous cases, the reduction is only 0.135 ms. Regardless of the schemes, the layout and the strong counterclockwise swirl lead to the flame core gradually developing from right to left, ultimately engulfing the left-side flame core. Compared then to that case, the left and right flame kernels may collide prematurely, leading to incomplete local combustion and consequently reducing combustion efficiency. Compared to synchronous changes, the emission differences during asynchronous changes are smaller and maintained at a relatively low level.

Original languageEnglish
Article number10907
JournalApplied Sciences (Switzerland)
Volume15
Issue number20
DOIs
Publication statusPublished - Oct 2025
Externally publishedYes

Keywords

  • combustion process
  • dual spark plugs
  • emissions
  • flame propagation
  • free piston engine generator
  • ignition strategy

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