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Study of Turbulent Entrainment Quasi-Dimensional Combustion Model for HCNG Engines with Variable Ignition Timings

机译:具有可变点火器时机HCNG发动机的湍流夹带准燃烧模型研究

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Presently, urban transportation highly depends on the fossil fuels, but its rapid fluctuating economic issues and environmental consequences impose the variegation of energy sources. Hydrogen enriched compressed natural gas (HCNG) engines offer the potential of higher brake thermal efficiency with low emissions, which also satisfies the strict pollutant emission standards. The two-zone turbulent entrainment quasi-dimensional combustion model is developed to predict the combustion process of spark-ignited hydrogen enriched compressed natural gas-fueled engines. The fundamentals of thermodynamic process, turbulent flame propagation model and other sub-models like laminar burning velocity, adiabatic temperature and ignition lag model are introduced for the better accuracy. The experiments have been conducted for three different fuels; pure CNG, 20% HCNG, and 40% HCNG blends under MAP of 105 kPa for various excess air ratios (λ) and ignition timing (θi). The three calibration coefficient of the model; Turbulent intensity coefficient C2, the Taylor length scale coefficient C3, and Ignition lag coefficient Cig are tuned to generate the pressure traces which closely resembled to experimental results. After comparing the numerical simulation results with the experiment’s outcomes it is found that the predictive accuracy of the presented model is quite impressive, and it is well accepted for the extremely fuel lean conditions where issues of bad combustion become serious.
机译:目前,城市交通高度取决于化石燃料,但其快速波动的经济问题和环境后果施加了能源的差异。富含氢气压缩的天然气(HCNG)发动机的发动机具有更高的制动热效率的潜力,低排放量也满足严格的污染物排放标准。开发了双区域湍流夹带准燃烧模型以预测火花点燃氢气富集的压缩天然气燃料发动机的燃烧过程。引入了热力学过程,湍流火焰传播模型和其他子模型,如层流燃烧速度,绝热温度和点火滞后模型,以获得更好的准确性。已经进行了三种不同的燃料进行了实验;纯CNG,20%HCNG和40%HCNG混合物在105kPa的地图下,各种过量空气比(λ)和点火正时(θi)。模型的三个校准系数;湍流强度系数C2,泰勒长度系数C3和点火滞后系数CIG被调整以产生紧密地与实验结果密切相关的压差。在将数值模拟结果与实验结果进行比较之后,发现所提出的模型的预测精度是令人印象深刻的,并且对于极端燃料的贫民条件,它是很好的燃烧问题变得严重的极度良好的。

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