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A mixing based model for DME combustion in diesel engines

机译:柴油发动机DME燃烧的混合模型

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A series of studies has been conducted investigating the behavior of di-methyl ether (DME) fuel jets injected into quiescent combustion chambers. These studies have shown that it is possible to make a good estimate of the penetration of the jetbased on existing correlations for diesel fuel, by using appropriate fuel properties.The results of the spray studies have been incorporated into a first generation model for DME combustion. The model is entirely based on physical mixing, where chemical processes have been assumed to be very fast in relation to mixing. The assumption wasmade on the basis of the very high Cetane number for DME. A spray model similar to that proposed by Hiroyasu et. Al. (1983) has been used, with the assumption that rapid combustion occurs when the local mixture attains a stoichiometric air fuel ratio. The spray structure is based on steady state spray theory, where the shape of the spray has been modified to match the measured spray penetration rates. The spray theory and experimentally determined penetrations implicitly determine the rate of airentrainment into the spray.The results show that the combustion rates calculated during the mixing controlled portion of combustion agree well with experimental measurements from a previous study, without additional adjustment.
机译:已经进行了一系列研究,研究了注入静态燃烧室的二甲基醚(DME)燃料喷射的行为。这些研究表明,通过使用适当的燃料特性,可以对喷射燃料对柴油燃料的现有相关性的渗透进行良好估计。喷射研究的结果已被掺入DME燃烧的第一代模型中。该模型完全基于物理混合,其中假设化学过程与混合相比非常快。该假设是基于DME的非常高的十六烷数量的。类似于Hiroyasu等提出的喷雾模型。 al。已经使用(1983),假设当局部混合物达到化学计量空燃比时发生快速燃烧。喷雾结构基于稳态喷涂理论,其中喷涂的形状已被修改以匹配测量的喷射渗透率。喷雾理论和实验确定的渗透隐含地确定飞入喷雾的飞行率。结果表明,在燃烧的混合控制部分期间计算的燃烧率与前一项研究的实验测量相一致,无需额外调整。

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