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A comprehensive experimental and kinetic modeling study of dimethoxymethane combustion

  • Ning Li
  • , Wuchuan Sun
  • , Shenghua Liu
  • , Xiaokang Qin
  • , Yuwei Zhao
  • , Yanju Wei
  • , Yingjia Zhang
  • Xi'an Jiaotong University
  • Air Force Engineering University Xian

Research output: Contribution to journalArticlepeer-review

39 Scopus citations

Abstract

Dimethoxymethane (DMM, CH3OCH2OCH3), the simplest member in the class of polyoxymethylene dimethyl ethers (PODE), is regarded as a promising fuel substitute for compression ignition engines. To better understand its combustion characteristics, a comprehensive experimental and kinetic modeling study on the combustion of DMM was conducted. Ignition delay times (IDTs) of DMM/O2/Ar mixtures were measured in a shock tube at pressures from 1.0 to 10 atm, for temperatures from 1050 to 1450 K, and equivalence ratios of 0.5, 1.0 and 2.0. A predominantly ab initio derived detailed kinetic model of DMM with 121 species and 646 reactions was developed based on AramcoMech2.0 with an updated sub-mechanism of methyl formate (MF, CH3OCHO). C[sbnd]O bond fissions occurred in CH2[sbnd]O and CH3[sbnd]O moieties were demonstrated to be the dominating reaction pathways in DMM high temperature chemistry rather than the competing non-radical decomposition channels. Flux and sensitivity analyses indicated that the two C[sbnd]O bond fissions have a comparatively promoting effect on reactivity, while the DMM = CH3OCH2O + CH3 reaction was the dominating channel at high temperatures. The proposed model was also validated against literature experimental data, including ignition delay times, jet stirred reactor species concentrations, laminar pre-mixed flame speciation, laminar burning velocities and plug-flow reactor speciation. The good performance of the proposed model for reproducing these data revealed its ability to predict DMM combustion over a wide range of conditions. Major reaction pathways of DMM could also apply to larger PODE compounds.

Original languageEnglish
Article number111583
JournalCombustion and Flame
Volume233
DOIs
StatePublished - Nov 2021

Keywords

  • Chemical kinetics
  • Dimethoxymethane
  • Reaction mechanism
  • Shock tube

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