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Soot particles generated by n-heptane and n-heptane/OME3 in an inverse diffusion flame: A comparative analysis of physical properties and oxidative reactivity

作者:Ye Liu, Ran Zhang, Chenxi Wang, Haibo Chen, Gang Lyu, Jun Wang, Huayu Tian, He Yang, Yajun Wang, Chenyang Fan, Bin Xu, Xiaowei Wang, Hongyuan Wei, Dimitris Margaritis · 发表于:Fuel · 年份:2025 · DOI:10.1016/j.fuel.2025.135097 · 被引用次数:8 · 研究领域:Advanced Combustion Engine Technologies、Atmospheric chemistry and aerosols、Catalytic Processes in Materials Science

• The addition of OME 3 distinctly alters the nanostructure and physical properties of soot. • The smaller size of primary soot particles caused by adding OME 3 may poses greater health risk. • Less ordered soot aggregates generated by n -heptane/OME 3 fuel may increase solar radiation. • The addition of OME 3 results in a reduction in fringe length and an increase in fringe tortuosity and separation distance. The widespread adoption of E-fuel, oxymethylene ether-3 (OME 3 ), is a promising solution to accelerate the decarbonisation of the transport sector. However, the application of OME 3 inevitably alters the combustion characteristics, affecting the soot generation process and consequently changing the physical properties of these soot particles. These alterations, in turn, influence not only associated health and climate concerns but also the control strategies of diesel particulate filter (DPF) regeneration. Here, high-resolution transmission electron microscopy (HRTEM) and thermogravimetric analysis (TGA) were employed to explore the effects of blending OME 3 on soot primary particle size, fractal dimension, nanostructure, and oxidative characteristics. The results show that the addition of OME 3 form smaller soot precursors and accelerates the oxidation of soot particles, which subsequently reduces the size of primary particles. The smaller size of soot particles favours oxidation, but they are likely to pose more severe health risks. The smaller primary particles exhi...