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Formation characteristics of nitric oxide in a three-staged air/LPG flame

机译:三级空气/液化石油气火焰中一氧化氮的形成特征

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Experimental and numerical studies have been done to examine the effects of excess air ratio and tertiary air swirl number on the formation characteristics of NO in a pilot scale combustor adopting a multi-air staged burner. In numerical calculation the mathematical models for turbulence, radiation and nitric oxide chemistry were taken into account. The radiative transfer equation was solved using the discrete ordinates method with the weighted sum of gray gases model. In the NO chemistry model, the chemical reaction rates for thermal and prompt NO were statistically averaged using a probability density function. The results were validated by comparison with measurements. For the experiment, a 0.2 MW pilot multi-staged air burner has been designed and fabricated. Using the numerical simulation developed here, a variation of thermal and prompt NO formation was predicted by changing the excess air ratio and tertiary air swirl number. As the excess air ratio increased up to 1.9, the formation of the total as well as thermal NO at exit increased while the prompt NO decreased. The formation of thermal NO was more affected by concentration of O_2 and N_2 than gas temperature. When the tertiary air swirl number increased, the formation of the total as well as the prompt NO slightly decreased because of enhanced mixing of fuel and oxygen in the upstream reaction zone and reduced gas temperature at exit.
机译:已经进行了实验和数值研究,以检验采用多级空气燃烧器的中试燃烧室中过量空气比和三次风旋流数对NO形成特性的影响。在数值计算中,考虑了湍流,辐射和一氧化氮化学反应的数学模型。使用离散坐标法和灰色气体模型的加权和求解辐射传递方程。在NO化学模型中,使用概率密度函数对热和即时NO的化学反应速率进行统计平均。通过与测量结果进行比较来验证结果。对于实验,已经设计并制造了一个0.2 MW的中试多级空气燃烧器。使用此处开发的数值模拟,可以通过改变过量空气比率和三次空气涡流数来预测热和迅速形成NO的变化。当过量空气比率增加到1.9时,出口处总NO和热NO的形成增加,而瞬态NO则减少。 O_2和N_2的浓度比气体温度对热NO形成的影响更大。当三次空气涡流数增加时,总氮的形成以及即时NO的生成会略有减少,这是因为上游反应区中燃料和氧气的混合增强,出口处的气体温度降低。

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