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Effects of the direct-injected fuel's physical and chemical properties on dual-fuel combustion

机译:直喷燃料的理化性质对双燃料燃烧的影响

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摘要

An experimental and computational study was conducted to explore the effects of the physical properties of the high reactivity fuel in a Reactivity Controlled Compression Ignition (RCCI) combustion dual-fuel strategy. The objective is to systematically isolate the effects of the boiling characteristics of the direct injected fuel in dual-fuel combustion strategies with different levels of fuel stratification. In all studies, iso-octane was used as the low reactivity fuel. The effect of high reactivity fuel physical properties was investigated by comparing the results of engine experiments using two fuels with equal cetane numbers (CN), but different boiling characteristics. The two fuels are 1) a certification grade Ultra Low Sulfur Diesel (ULSD) fuel with a cetane number of 45 and 2) a blend of 21% iso-octane and 89% n-heptane with a cetane number of 45. Computational fluid dynamics (CFD) modeling using the KIVA-3v code with a discrete multi-component evaporation model capable of capturing important physical property influences and a multi-fuel chemistry model capable of describing the chemical kinetics of single and multicomponent fuels was used to explain the observed differences in the experiments. It was found that the different boiling curves of the two fuels have minimal effect on the combustion phasing at early and late injection timings. Differences in the combustion phasing were explained by differences in the chemical characteristics of each fuel that could not be matched solely by fixing the CN. (C) 2017 Elsevier Ltd. All rights reserved.
机译:进行了实验和计算研究,以探索高反应性燃料的物理性质在反应性控制压缩点火(RCCI)燃烧双燃料策略中的影响。目的是在燃料分层不同的情况下,系统隔离直喷燃料在双燃料燃烧策略中沸腾特性的影响。在所有研究中,异辛烷均用作低反应性燃料。通过比较使用十六烷值(CN)相同但沸腾特性不同的两种燃料的发动机实验结果,研究了高反应性燃料物理性能的影响。这两种燃料是1)十六烷值为45的认证级超低硫柴油(ULSD)燃料和2)十六烷值为45的21%异辛烷和89%正庚烷的混合物。计算流体动力学(CFD)使用KIVA-3v代码,能够捕获重要物理性能影响的离散多组分蒸发模型和能够描述单组分和多组分燃料的化学动力学的多燃料化学模型来解释观察到的差异在实验中。已经发现,两种燃料的不同沸腾曲线在早期和晚期喷射正时对燃烧阶段的影响最小。燃烧阶段的差异是由每种燃料的化学特性差异所解释的,而这些化学特性差异不能仅通过固定CN来匹配。 (C)2017 Elsevier Ltd.保留所有权利。

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