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Numerical Study on the Required Surrounding Gas Conditions for Stable Autoignition of an Ethanol Spray

机译:乙醇喷雾稳定自燃所需围绕气体条件的数值研究

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This study deals with the development of controlled-ignition technology for high-performance compression ignition alcohol engines. Among the alcohol fuels, we focus on ethanol as it is a promising candidate of alternative fuels replacing petroleum. The objective of this study is to reveal the physical and chemical phenomena in the mixture formation process up to autoignition of an ethanol spray. In our previous numerical study, we showed the mixture formation process for gas oil and ethanol sprays in the form of spatial excess air ratio and temperature distributions inside a spray and their temporal histories from fuel injection. The results showed a good agreement with those of theoretical analysis based on the momentum theory of spray penetration. Calculation was also confirmed as reasonable by comparing to the experimental results. Through the series of our experimental and numerical studies, the reason for poor autoignition quality of an ethanol spray was revealed, that is, difficulty in simultaneous attainments of autoignition-suitable concentration and temperature in the spray mixture formation due to its fuel and thermal properties of smaller stoichiometric air-fuel ratio and much greater heat of evaporation compared to conventional diesel fuels. However, autoignition of an ethanol spray has not been obtained yet in either experiments or numerical analysis. As the next step, we numerically examined several surrounding gas pressure and temperature conditions to make clear the surrounding gas conditions enough to obtain stable autoignition. One of the commercial CFD codes CONVERGE was used in the computational calculation with the considerations of turbulence, atomization, evaporation, and detailed chemical reaction. Required surrounding gas pressure and temperature for stable autoignition with acceptable ignition delay of an ethanol spray and feasibility of the development of high-performance compression ignition alcohol engines are discussed in this paper.
机译:本研究涉及高性能压缩点火酒精发动机的控制点火技术的发展。在酒精燃料中,我们专注于乙醇,因为它是替代石油的替代燃料的有希望的候选者。本研究的目的是揭示混合物形成过程中的物理和化学现象,从而自燃乙醇喷雾。在我们以前的数值研究中,我们展示了气体油和乙醇喷雾的混合物形成过程,以空间过剩的空气比和喷雾中的温度分布以及来自燃料喷射的时间历史的温度分布。结果表明,基于喷射渗透的动量理论的理论分析良好。通过与实验结果相比,还证实了计算。通过我们的实验性和数值研究的系列,揭示了乙醇喷雾差的差的自燃质量不佳的原因,即由于其燃料和热性质而在喷雾混合物形成中同时达到自燃合适的浓度和温度难以与传统的柴油燃料相比,较小的化学计量空燃比和蒸发热量大得多。然而,在实验或数值分析中尚未获得乙醇喷雾的自燃。作为下一步,我们在数值上检查了几个周围的气体压力和温度条件,以使周围的气体条件足够清除以获得稳定的自燃。其中一种商业CFD代码收敛于计算计算中使用湍流,雾化,蒸发和详细的化学反应的考虑。本文讨论了所需的环形气体压力和用于稳定自燃的温度,具有可接受的点火延迟的乙醇喷雾和高性能压缩点火酒精发动机的可行性。

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  • 来源
    《Journal of combustion 》 |2019年第1期| 1329389.1-1329389.12| 共12页
  • 作者单位

    Sojo Univ Dept Mech Engn West Ward Ikeda 4-22-1 Kumamoto 860082 Japan;

    Sojo Univ Dept Mech Engn West Ward Ikeda 4-22-1 Kumamoto 860082 Japan;

    Sojo Univ Dept Mech Engn West Ward Ikeda 4-22-1 Kumamoto 860082 Japan;

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  • 正文语种 eng
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