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Investigating auto-ignition behavior of n-heptane/iso-octane/ethanol mixtures for gasoline surrogates through rapid compression machine measurement and chemical kinetics analysis

机译:通过快速压缩机测量和化学动力学分析研究正庚烷/异辛烷/乙醇混合物对汽油代用品的自燃行为

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Overall ignition delay time (OID) is used as indicator to characterize reactivity and anti-knock quality of fuel. In this work, both experimental measurement and modeling work have been conducted to evaluate OID properties for six ternary blends comprising n-heptane/iso-octane/ethanol. Experimental measurement was performed in a rapid compression machine, while modeling work was based on the gasoline surrogate mechanism. The decoupling study on research octane number (RON)/motor octane number (MON) and octane sensitivity (S) has been carried out by adjusting fuel composition. The thermal conditions of experiments cover low-to-medium temperatures from 640 K to 740 K and pressures from 9.5 bar to 21 bar. Oxygen is utilized as the oxidizer while nitrogen and argon are regarded as the buffer gas to adjust thermal conditions. Combined with chemical kinetics analysis, negative temperature coefficient (NTC) behavior in the experiment is entirely attributed to iso-octane and the timing of the first peak HO2 radical concentration has more significant influence on NTC behavior than peak value itself. Octane number and/or S cannot fully revealed fuel anti-knock quality, which is substantially influence by the property of fuels and thermal conditions. At low temperature (640 K), fuels with higher S exhibit better anti-knock performance. However, this advantage will disappear when temperature falls into NTC region. For engine operating in this area, high RON but low S fuels are recommended. Ethanol extends the beneficial area of high S contents due to its low temperature chemical inertness. The low temperature boundary of NTC for iso-octane can be regarded as the demarcation line to determine whether high S contents should be utilized, which is an important reference for fuel-engine co-optima research.
机译:总点火延迟时间(OID)用作表征燃料反应性和抗爆质量的指标。在这项工作中,已经进行了实验测量和建模工作以评估包含正庚烷/异辛烷/乙醇的六元三元共混物的OID性能。实验测量是在快速压缩机中进行的,而建模工作则基于汽油替代机制。通过调节燃料成分,进行了研究辛烷值(RON)/电机辛烷值(MON)和辛烷值敏感性(S)的解耦研究。实验的热条件涵盖了640 K至740 K的中低温度和9.5 bar至21 bar的压力。氧气用作氧化剂,氮气和氩气用作调节热条件的缓冲气体。结合化学动力学分析,实验中的负温度系数(NTC)行为完全归因于异辛烷,并且第一个HO2自由基浓度峰值的时间比峰值本身对NTC行为的影响更大。辛烷值和/或S不能完全显示出燃料的抗爆质量,这在很大程度上取决于燃料的性质和热工况。在低温(640 K)下,具有较高S的燃料表现出更好的抗爆性能。但是,当温度降至NTC区域时,此优势将消失。对于在该区域运行的发动机,建议使用高RON但低S的燃油。乙醇由于其低温化学惰性而扩展了高S含量的有益领域。 NTC异辛烷的低温边界可以作为确定是否应使用高S含量的分界线,这对燃料发动机的优化研究具有重要的参考意义。

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