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Simulating HCCI Blending Octane Number of Primary Reference Fuel with Ethanol

机译:模拟主要参考燃料与乙醇的HCCI混合辛烷值

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摘要

The blending of ethanol with primary reference fuel (PRF) mixtures comprising n-heptane and iso-octane is known to exhibit a non-linear octane response; however, the underlying chemistry and intermolecular interactions are poorly understood. Well-designed experiments and numerical simulations are required to understand these blending effects and the chemical kinetic phenomenon responsible for them. To this end, HCCI engine experiments were previously performed at four different conditions of intake temperature and engine speed for various PRF/ethanol mixtures. Transfer functions were developed in the HCCI engine to relate PRF mixture composition to autoignition tendency at various compression ratios. The HCCI blending octane number (BON) was determined for mixtures of 2-20 vol % ethanol with PRF70. In the present work, the experimental conditions were considered to perform zero-dimensional HCCI engine simulations with detailed chemical kinetics for ethanol/PRF blends. The simulations used the actual engine geometry and estimated intake valve closure conditions to replicate the experimentally measured start of combustion (SOC) for various PRF mixtures. The simulated HCCI heat release profiles were shown to reproduce the experimentally observed trends, specifically on the effectiveness of ethanol as a low temperature chemistry inhibitor at various concentrations. Detailed analysis of simulated heat release profiles and the evolution of important radical intermediates (e.g., OH and HO) were used to show the effect of ethanol blending on controlling reactivity. A strong coupling between the low temperature oxidation reactions of ethanol and those of n-heptane and iso-octane is shown to be responsible for the observed blending effects of ethanol/PRF mixtures.
机译:已知乙醇与包含正庚烷和异辛烷的主要参考燃料(PRF)混合物的共混物表现出非线性的辛烷响应。然而,人们对潜在的化学反应和分子间的相互作用了解甚少。需要精心设计的实验和数值模拟才能理解这些混合效应以及造成它们的化学动力学现象。为此,先前针对各种PRF /乙醇混合物在进气温度和发动机转速的四种不同条件下进行了HCCI发动机实验。在HCCI发动机中开发了传递函数,以将PRF混合物的组成与各种压缩比下的自燃趋势联系起来。确定2-20体积%乙醇与PRF70的混合物的HCCI混合辛烷值(BON)。在当前的工作中,实验条件被认为可以执行零维HCCI发动机模拟,并具有乙醇/ PRF混合物的详细化学动力学。该模拟使用实际的发动机几何形状和估计的进气门关闭条件来复制各种PRF混合物的实验测量燃烧开始(SOC)。结果表明,模拟的HCCI放热曲线可以重现实验观察到的趋势,特别是乙醇在各种浓度下作为低温化学抑制剂的有效性。对模拟的放热曲线和重要的自由基中间体(例如OH和HO)的演变进行了详细分析,以显示乙醇混合对控制反应性的影响。乙醇的低温氧化反应与正庚烷和异辛烷的低温氧化反应之间的强耦合显示出所观察到的乙醇/ PRF混合物的共混效果。

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