Understanding the ignition process and flame structure of conventional and oxygenated fuels under engine relevant conditions – An optical study

IF 5.3 2区 工程技术 Q2 ENERGY & FUELS Proceedings of the Combustion Institute Pub Date : 2024-08-30 DOI:10.1016/j.proci.2024.105682
Rajavasanth Rajasegar, Aleš Srna
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Abstract

Renewably generated synthetic fuels such as poly-oxymethylene ethers (OME) have a significant potential to effectively break the soot-NO trade-off in compression ignition engines by using exhaust gas recirculation (EGR) to maintain low nitrogen oxide (NO) emissions while maintaining good efficiency and simultaneously contributing to circular carbon economy. However, owing to the fundamental differences in properties of OME when compared to fossil-based diesel fuels, it is critical to fully understand its ignition and combustion phenomenology to take advantage of this fuel to its utmost potential. In this context, this work outlines the results of a systematic experimental study performed in a heavy-duty, single-cylinder, optical engine probing the spatial and temporal progression of fuel decomposition and ignition behavior of OME when compared to n-dodecane, a diesel-fuel surrogate. Thermodynamic analysis and optical diagnostics techniques including simultaneous HCHO-PLIF and OH-PLIF complemented by high-speed OH* chemiluminescence were employed along with parametric sweeps of intake temperature and EGR dilution rates. OME does not exhibit any observable low temperature heat release irrespective of the ambient oxygen concentration. Differences in the observed diffusive flame structure such as longer flame lift-off length, less pronounced combustion recession, faster premixed burn at ignition (“volumetric” ignition), non-sooting behavior suggest that the inherent presence of fuel-bound oxygen in OME can skew the air-fuel ratio (AFR) distribution within the jet thereby reducing the reliance of combustion on mixing and air entrainment. This leads to rapid late-cycle oxidation leading to shorter combustion duration and favorable combustion phasing. Results also suggest that OME exhibits relatively weak negative temperature coefficient (NTC) behavior, however, the OME fuel-decomposition kinetic-pathways produce significant concentration of HCHO, which might be erroneously interpreted as a product of cool-flames.
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了解发动机相关条件下传统燃料和含氧燃料的点火过程和火焰结构 - 一项光学研究
聚氧化亚甲基醚(OME)等可再生合成燃料具有巨大的潜力,可通过使用废气再循环(EGR)来有效打破压燃式发动机中的烟尘-氮氧化物权衡,从而在保持良好效率的同时维持较低的氮氧化物(NO)排放,并为循环碳经济做出贡献。然而,由于 OME 的特性与化石柴油燃料存在本质区别,因此必须充分了解其点火和燃烧现象,才能最大限度地发挥这种燃料的潜力。在此背景下,本研究概述了在重型单缸光学发动机中进行的系统实验研究的结果,该实验与柴油代用燃料正十二烷相比,探测了 OME 燃料分解和点火行为的空间和时间进展。采用了热力学分析和光学诊断技术,包括同步 HCHO-PLIF 和 OH-PLIF,并辅以高速 OH* 化学发光,以及进气温度和 EGR 稀释率的参数扫描。无论环境中的氧气浓度如何,OME 都没有表现出任何可观察到的低温热释放。观察到的扩散火焰结构的差异,如火焰腾空长度较长、燃烧衰退不明显、点火时预混合燃烧速度较快("体积 "点火)、无熄灭行为等,表明 OME 中固有的燃料结合氧可以扭曲喷流中的空燃比(AFR)分布,从而减少燃烧对混合和空气夹带的依赖。这将导致快速的后期氧化,从而缩短燃烧持续时间,并有利于燃烧阶段的划分。结果还表明,OME 表现出相对较弱的负温度系数(NTC)行为,但是,OME 燃料分解动力学途径会产生大量的 HCHO,这可能会被错误地解释为冷焰的产物。
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来源期刊
Proceedings of the Combustion Institute
Proceedings of the Combustion Institute 工程技术-工程:化工
CiteScore
7.00
自引率
0.00%
发文量
420
审稿时长
3.0 months
期刊介绍: The Proceedings of the Combustion Institute contains forefront contributions in fundamentals and applications of combustion science. For more than 50 years, the Combustion Institute has served as the peak international society for dissemination of scientific and technical research in the combustion field. In addition to author submissions, the Proceedings of the Combustion Institute includes the Institute''s prestigious invited strategic and topical reviews that represent indispensable resources for emergent research in the field. All papers are subjected to rigorous peer review. Research papers and invited topical reviews; Reaction Kinetics; Soot, PAH, and other large molecules; Diagnostics; Laminar Flames; Turbulent Flames; Heterogeneous Combustion; Spray and Droplet Combustion; Detonations, Explosions & Supersonic Combustion; Fire Research; Stationary Combustion Systems; IC Engine and Gas Turbine Combustion; New Technology Concepts The electronic version of Proceedings of the Combustion Institute contains supplemental material such as reaction mechanisms, illustrating movies, and other data.
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