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首页> 外文期刊>Journal of Thermal Science and Engineering Applications: Transactions of the ASME >Experimental and Numerical Study on Optimizing the Dry Low NO_x Micromix Hydrogen Combustion Principle for Industrial Gas Turbine Applications
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Experimental and Numerical Study on Optimizing the Dry Low NO_x Micromix Hydrogen Combustion Principle for Industrial Gas Turbine Applications

机译:工业燃气轮机干式低NO_x微混合氢气燃烧原理优化实验与数值研究

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Combined with the use of renewable energy sources for its production, hydrogen represents a possible alternative gas turbine fuel for future low-emission power generation. Due to the difference in the physical properties of hydrogen compared to other fuels such as natural gas, well-established gas turbine combustion systems cannot be directly applied to dry low NO_x (DLN) hydrogen combustion. The DLN micromix combustion of hydrogen has been under development for many years, since it has the promise to significantly reduce NO_x emissions. This combustion principle for air-breathing engines is based on crossflow mixing of air and gaseous hydrogen. Air and hydrogen react in multiple miniaturized diffusion-type flames with an inherent safety against flashback and with low NO_x emissions due to a very short residence time of the reactants in the flame region. The paper presents an advanced DLN micromix hydrogen application. The experimental and numerical study shows a combustor configuration with a significantly reduced number of enlarged fuel injectors with high-thermal power output at constant energy density. Larger fuel injectors reduce manufacturing costs, are more robust and less sensitive to fuel contamination and blockage in industrial environments. The experimental and numerical results confirm the successful application of high-energy injectors, while the DLN micromix characteristics of the design point, under part-load conditions, and under off-design operation are maintained. Atmospheric test rig data on NO_x emissions, optical flame-structure, and combustor material temperatures are compared to numerical simulations and show good agreement. The impact of the applied scaling and design laws on the miniaturized micromix flamelets is particularly investigated numerically for the resulting flow field, the flame-structure, and NO_x formation.
机译:结合使用可再生能源进行生产,氢气代表了未来低排放发电的可能替代燃气轮机燃料。由于氢气与天然气等其他燃料相比的物理性质不同,成熟的燃气轮机燃烧系统不能直接应用于干式低NO_x(DLN)氢气燃烧。DLN氢气的微混合燃烧已经开发多年,因为它有望显着减少NO_x排放。吸气式发动机的这种燃烧原理基于空气和气态氢的错流混合。空气和氢气在多个小型扩散型火焰中反应,具有固有的防回火安全性,并且由于反应物在火焰区域的停留时间非常短,因此NO_x排放低。本文介绍了一种先进的DLN微混氢应用。实验和数值研究表明,燃烧室配置在恒定能量密度下具有高热功率输出的扩大喷油器数量显着减少。更大的喷油器降低了制造成本,更坚固,对工业环境中的燃油污染和堵塞不那么敏感。实验和数值结果证实了高能喷油器的成功应用,同时保持了设计点、部分负载条件下和非设计操作下的DLN微混特性。将NO_x排放、光学火焰结构和燃烧器材料温度的大气试验台数据与数值模拟进行了比较,并显示出良好的一致性。应用缩放和设计定律对小型化微混小火的影响,特别针对由此产生的流场、火焰结构和NO_x形成进行了数值研究。

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