基于内衬进气孔设计的低排放环形燃烧室研究

D. A. Dolmatov, Masoud Hajivand
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引用次数: 1

摘要

利用计算流体力学(CFD)对6种不同情况下,基于几何参数和不同进气孔的位置和排数,对环形燃烧室内衬的总温度特性、氮氧化物排放形成和模式因子进行了数值模拟,并利用ANSYS CFX进行了有限速率化学和涡动耗散模型的数值模拟。用于模拟液体煤油(喷气机A) -燃料液滴蒸发后的空气燃烧。进行了喷雾建模,包括松香-拉姆勒液滴分布。利用湍流k -e模型,研究了热生成和快速生成氮氧化物(NO x)来预测NO x排放特征。为了更好地实现燃油与空气的混合,本文建立了真实环形燃烧室的三维CAD模型,用于双径向空气旋流器的模拟。此外,还介绍了火焰的特性和火焰结构,包括燃烧室尾管出口总温度和NO浓度的等高线图以及从燃烧室喷油嘴中心沿X轴截面上的总温度和NO浓度的等高线图,包括速度和从喷油嘴中心沿尾管方向的NO、CO、CO 2、o2和总温度的线图。对于煤油与空气的燃烧,本文提出了两步动力学方案。结果表明,低浓度NO处理效果最好的是情况5,但压降率较高;情况3的NO处理效果最好,但压降率较低。
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On Low-Emission Annular Combustor Based on Designing of Liner Air Admission Holes
Numerical experiments was carried out to predict the total temperature characteristics and formation of nitrogen oxide emissions and pattern factor in an annular combustor liner based on geometrical parameters and location and rows of different air admission holes, for 6 various cases, using computational fluid dynamics (CFD) .The simulation has been performed using ANSYS CFX including finite rate chemistry and eddy dissipation model, for simulation of liquid kerosene (Jet A) – air combustion after fuel droplet evaporation. The spray modeling was performed, including Rosin-Rammler droplet distribution. Thermal and prompt nitrogen oxide (NO x ) formation was performed to predicting NO x emission characteristics with a k -e model of turbulent. In this investigation the 3D CAD model of the realistic annular combustion chamber is presented for the simulation with double radial air swirler for the better mixing fuel with air. Beside this the characteristic and the flame structure is presented including the contour plots of total temperature and NO concentration at the outlet of the combustor liner and in cross section plane along the X axis from the injector center of the combustor including the chart of the velocity and NO, CO, CO 2 , O 2 and the total temperature along the liner from the injector center. For the combustion of kerosene with air 2 step kinetic schemes are presented in this study. The results show that the best result with the low concentration of NO is the case 5 but with a high percentage of pressure drop and the case 3 have the maximum concentration of NO with the low percentage of pressure drop.
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