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Gasoline-ethanol blend formulation to mimic laminar flame speed and auto- ignition quality in automotive engines

机译:汽油-乙醇混合物配方可模拟汽车发动机的层流火焰速度和自动点火质量

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Several environment agencies worldwide have identified biofuels as a viable solution to meet the stringent targets imposed by future regulations in terms of on-road transport emissions. In the last decades, petroleum-based gasoline has been increasingly blended with oxygenated fuels, mostly ethanol. Blending ethanol with gasoline has two major effects: an increase of the octane number, thus promoting new scenarios for engine efficiency optimization, and a potential reduction of soot emissions.3D-CFD simulations represent a powerful tool to optimize the use of ethanol-gasoline blends in internal combustion engines. Since most of the combustion models implemented in 3D-CFD codes are based on the "flamelet assumption", they require laminar flame speed as an input. Therefore, a thorough understanding of the gasoline-ethanol blend chemical behavior at engine-relevant conditions is crucial. While several laminar flame speed correlations are available in literature for both gasoline and pure ethanol at ambient conditions, none is available, to the extent of authors' knowledge, to describe laminar flame speed of gasoline-ethanol blends (for different ethanol volume contents) at engine relevant conditions. For this reason, in the present work, laminar flame speed correlations based on 1D detailed chemical kinetics calculations are derived targeting typical full-load engine-like conditions, for different ethanol-gasoline blends. A methodology providing a surrogate able to match crucial properties of a fuel is presented at first and validated against available experimental data. Then, laminar flame speed correlations obtained from 1D chemical kinetics simulations are proposed for each fuel blend surrogate.
机译:全球数家环境机构已将生物燃料确定为一种可行的解决方案,可以满足未来法规对公路运输排放提出的严格目标。在过去的几十年中,石油基汽油越来越多地与含氧燃料(大多数为乙醇)混合。乙醇与汽油的混合具有两个主要作用:增加辛烷值,从而促进了发动机效率优化的新场景以及潜在的烟尘排放减少。3D-CFD模拟代表了一种优化乙醇-汽油混合物使用的强大工具。在内燃机中。由于3D-CFD代码中实现的大多数燃烧模型都是基于“小火焰假设”,因此它们需要层流火焰速度作为输入。因此,对发动机相关条件下汽油-乙醇混合物化学行为的透彻了解至关重要。尽管在文献中可以找到环境条件下汽油和纯乙醇的几种层流火焰速度相关性,但据作者所知,尚无描述层状火焰速度的汽油-乙醇混合物(针对不同乙醇体积含量)的相关性。发动机相关条件。因此,在本工作中,针对不同的乙醇汽油混合物,针对典型的满负荷发动机状条件,得出了基于一维详细化学动力学计算的层流火焰速度相关性。首先介绍了一种能够替代燃料的关键特性的替代方法,并针对可用的实验数据进行了验证。然后,针对每种燃料混合物替代品,提出了从一维化学动力学模拟获得的层流火焰速度相关性。

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