首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >OPTIMIZATION OF FUEL NOZZLE DIAMETER IN A NOVEL CROSS FLOW LEAN DIRECT INJECTION BURNER
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OPTIMIZATION OF FUEL NOZZLE DIAMETER IN A NOVEL CROSS FLOW LEAN DIRECT INJECTION BURNER

机译:新型交叉流动直喷式燃烧器中燃料喷嘴直径的优化

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Lean Direct Injection (LDI) concept proves to be an ultra-low NOx combustion scheme for future gas turbine combustors because of its ability to operate at very lean conditions. For LDI burners, the Fuel Nozzle Diameters (FND) play a vital role in deciding a balance between the various performance criteria demanded bv the gas turbine industry like efficient usage of fuel, a wide range of flame stability, uniform exit temperature distribution and very low overall emissions. This paper attempts to find the optimum FND in terms of some key combustion parameters, for a novel multi-swirl LDI burner having a cross-flow mixing between fuel jets and swirling air. At first, lean blow out limits were detected from experiments with different FND using two different fuels, methane and liquefied petroleum gas, within a range of air flow rates. It was observed that with the decrease in FND the flame extinguished at a higher equivalence-ratio. Then their performances were compared through CFD simulations with two different combustion models, namely. Eddy Dissipation and PDF Flamelet. The combined results of cold and hot flow simulations showed that with the decrease in FND the fuel jet was able to penetrate deeper into the air swirl by overcoming the air momentum, which resulted in enhanced mixing leading to more efficient utilization of fuel and also uniform exit temperature distribution resulting in lower pattern factor. Thus the findings of this research work should be resourceful in the development of modern cross flow LDI combustors.
机译:精益直接注射(LDI)概念被证明是未来燃气涡轮机燃烧器的超低NOx燃烧方案,因为它在非常贫条件下运行的能力。对于LDI燃烧器,燃料喷嘴直径(FND)在决定BV燃气轮机行业的各种性能标准之间的平衡方面发挥着至关重要的作用,如燃料的有效使用,广泛的火焰稳定性,均匀的出口温度分布和非常低整体排放。本文试图根据一些关键燃烧参数找到最佳FND,用于具有在燃料喷射器和旋流空气之间的交叉流动混合的新型多旋流LDI燃烧器。首先,使用两种不同的燃料,甲烷和液化石油气在一系列空气流速中,从不同FND的实验中检测到瘦爆炸限制。观察到,随着FND的降低,火焰以较高的等值比熄灭。然后通过具有两种不同的燃烧模型的CFD仿真进行比较它们的表演。涡流耗散和PDF燧弹。冷热流动模拟的组合结果表明,随着FND的减少,燃料射流能够通过克服空气动量来深入进入空气旋流,这导致增强的混合导致燃料更有效地利用燃料和均匀的出口温度分布导致较低的图案因子。因此,这项研究工作的结果应该是高度促进现代交叉流动LDI燃烧器的启发。

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