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Effect of flow field for colorless distributed combustion (CDC) for gas turbine combustion

机译:流场对燃气轮机燃烧的无色分布燃烧(CDC)的影响

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Colorless distributed combustion (CDC) investigated here is focused on gas turbine combustion applications due to its significant benefits for, much reduced NOx emissions and noise reduction, and significantly improved pattern factor. CDC is characterized by distributed reaction zone of combustion which leads to uniform thermal field and avoidance of hot spot regions to provide significant improvement in pattern factor, lower sound levels and reduced NOx emission. Mixing between the combustion air and product gases to form hot and diluted oxidant prior to its mixing with the fuel is critical so that one must determine the most suitable mixing conditions to minimize the ignition delay. Spontaneous ignition of the fuel occurs to provide distributed reaction combustion conditions. The above requirements can be met with different configuration of fuel and air injections with carefully characterized flow field distribution within the combustion zone. This study examines four different sample configurations to achieve colorless distributed combustion conditions that reveal no visible color of the flame. They include a baseline diffusion flame configuration and three other configurations that provide conditions close to distributed combustion conditions. For all four modes same fuel and air injection diameters are used to examine the effect of flow field configuration on combustion characteristics. The results are compared from the four different configurations on flow field and fuel/air mixing using numerical simulations and with experiments using global flame signatures, exhaust emissions, acoustic signatures, and thermal field. Both numerical simulations and experiments are performed at a constant heat load of 25 kW, using methane as the fuel at atmospheric pressure using normal temperature air and fuel. Lower NOx and CO emissions, better thermal field uniformity, and lower acoustic levels have been observed when the flame approached CDC mode as compared to the baseline case of a diffusion flame. The reaction zone is observed to be uniformly distributed over the entire combustor volume when the visible flame signatures approached CDC mode.
机译:此处研究的无色分布式燃烧(CDC)专注于燃气轮机燃烧应用,因为它具有显着的优势,它大大减少了NOx的排放和噪音,并显着改善了模式因子。 CDC的特征在于分布的燃烧反应区,可导致均匀的热场并避免出现热点区域,从而显着改善了样式系数,降低了声级并减少了NOx排放。燃烧空气和产物气体在与燃料混合之前混合以形成热的稀释氧化剂是至关重要的,因此必须确定最合适的混合条件以最小化点火延迟。发生燃料的自燃以提供分布的反应燃烧条件。可以通过在燃烧区内仔细表征流场分布的燃料和空气喷射的不同配置来满足上述要求。这项研究检查了四种不同的样品配置,以实现无色分布的燃烧条件,该条件表明火焰没有可见的颜色。它们包括基线扩散火焰配置和提供接近分布式燃烧条件的其他三种配置。对于所有四种模式,使用相同的燃料和空气喷射直径来检查流场配置对燃烧特性的影响。使用数值模拟,对使用四种不同配置的流场和燃料/空气混合结构的结果进行了比较,并与使用整体火焰特征,废气排放,声学特征和热场的实验进行了比较。数值模拟和实验都是在25 kW的恒定热负荷下进行的,使用常压空气和燃料在常压下使用甲烷作为燃料。与扩散火焰的基线情况相比,当火焰接近CDC模式时,观察到较低的NOx和CO排放,更好的热场均匀性和较低的声级。当可见火焰信号接近CDC模式时,观察到反应区均匀分布在整个燃烧室容积上。

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