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APS -APS March Meeting 2017 - Event - Combustion of Biofuel as a Renewable Energy Source in Sandia Flame Geometry

机译:APS -APS 3月会议2017年 - 生物燃料燃烧为桑迪亚火焰几何的可再生能源

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Energy security and climate change are two important key causes of wide spread employment of biofuel notwithstanding of problems associated with its usage. In this research, combustion of biofuel as a renewable energy source was numerically investigated in the well-known and practical Sandia flame geometry. Combustion performance of the flame has been simulated by burning biodiesel (methyl decanoate, methyl 9-decenoate, and n-heptane) oxidation with 118 species reduced/skeletal mechanism. The open-source code OpenFoam was used for simulating turbulent biodiesel-air combustion in the cylindrical chamber using the standard k-epsilon model. To check the accuracy of numerical results, the system was initially validated with methane-air Sandia national laboratories flame D experimental results. Excellent agreements between numerical and experimental results were observed at different cross sections. After ignition, temperature distributions at different distances of axial and radial directions as well as species mass fraction were investigated. It is concluded that biofuel has the capability of implementation in the turbulent jet flame that is a step forward in promotion of sustainable energy technologies and applications.
机译:能源安全和气候变化是消费的广泛供应的两个重要关键原因,尽管与其使用相关的问题。在这项研究中,在众所周知的和实用的桑迪亚火焰几何形状中,在数值研究生物燃料作为可再生能源的燃烧。通过用118种降低/骨骼机制燃烧生物柴油(癸酸甲酯,甲基甲酯,甲基甲酯,甲基甲酯和正庚烷)氧化来模拟火焰的燃烧性能。使用标准K-EPSILON模型,使用标准K-EPSILON模型用于在圆柱形室中模拟湍流生物柴油 - 空气燃烧。为了检查数值结果的准确性,系统最初用甲烷 - 空气桑迪亚国家实验室火焰D实验结果验证。在不同的横截面观察到数值和实验结果之间的良好协议。在点火之后,研究了在不同距离的轴向和径向方向的温度分布以及物质质量分数。结论是,生物燃料能够在湍流喷射火焰中实施,这是促进可持续能源技术和应用方面的一步。

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