首页> 外文期刊>Numerical Heat Transfer, Part A. Application: An International Journal of Computation and Methodology >Numerical Investigation on the Effects of Inlet Air Temperature on Spray Combustion in a Wall Jet Can Combustor Using the k- Turbulence Model
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Numerical Investigation on the Effects of Inlet Air Temperature on Spray Combustion in a Wall Jet Can Combustor Using the k- Turbulence Model

机译:用k-湍流模型数值模拟进气温度对壁喷罐燃烧室喷雾燃烧的影响

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A three-dimensional numerical study was performed to assess the effects of inlet temperature and equivalence ratio on the spray combustion and subsequent NOx emission in a wall jet can combustor (WJCC) installed with twin-fluid air-assisted fuel atomizers. The RNG k- turbulence model, eddy breakup (EBU) combustion model, and the Zeldovich model of NOx formation were utilized in the numerical study. The WJCC was implemented with a swirling air jet at the fuel nozzle exit and two other air jets, known as primary and dilute jets, at downstream locations. The inlet air temperature and overall equivalence ratio were varied from 373 to 1000K and from 0.3 to 0.6, respectively. Our computational study showed that the inlet air of high temperature induced flow acceleration and sufficient jet penetration, which were desirable for achieving uniform temperature distribution at the combustor outlet but unfavorably yielded increased NOx emission. While the inlet air temperature had no prominent influence on the evaporation rate of the fuel drops in the upstream primary zone, its influence appeared to be prominent further downstream.
机译:进行了三维数值研究,以评估入口温度和当量比对装有双流体空气辅助燃料雾化器的壁喷罐燃烧室(WJCC)的喷雾燃烧和随后的NOx排放的影响。在数值研究中使用了RNG k湍流模型,涡流分解(EBU)燃烧模型和NOx形成的Zeldovich模型。 WJCC的实现是在燃油喷嘴出口处有旋转的空气射流,而在下游位置则有另外两个空气射流,分别称为一次和稀射流。进气温度和总当量比分别从373到1000K和0.3到0.6变化。我们的计算研究表明,高温诱导进气流量和足够的射流穿透力,这对于在燃烧器出口实现均匀的温度分布是理想的,但是却不利地增加了NOx的排放。虽然进气温度对上游主要区域中燃料滴的蒸发速率没有显着影响,但其影响似乎在下游更显着。

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