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Prediction of NOx emissions throughflame radical imaging and neural network based soft computing

机译:通过火焰自由基成像和基于神经网络的软计算预测NOx排放

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The characteristics of reacting radicals in a flame are crucial for an in-depth understanding of the formation process of combustion emissions. This paper presents an algorithm for the prediction of NOx (NO and NO2) emissions in flue gas through flame radical imaging, flame temperature monitoring and application of Neural Network techniques. Radiation images of flame radicals OH*, CN*, CH* and C2* are captured using an intensified multi-wavelength imaging system. Flame temperature is determined using a spectrometer and two-color pyrometry. Based on these images, the characteristic values of the flame radicals are extracted. These characteristic values, together with the flame temperature, are then used to predict NOx emissions. Experimental results from a laboratory-scale gas-fired combustion rig have shown the effectiveness of the proposed method for the prediction of NOx emissions.
机译:火焰中自由基的反应特征对于深入了解燃烧排放物的形成过程至关重要。本文提出了一种通过火焰自由基成像,火焰温度监测和神经网络技术应用预测烟气中NOx(NO和NO2)排放的算法。使用增强型多波长成像系统捕获火焰自由基OH *,CN *,CH *和C2 *的辐射图像。使用分光计和双色高温计确定火焰温度。基于这些图像,提取出火焰自由基的特征值。然后将这些特征值与火焰温度一起用于预测NOx排放。实验室规模的燃气燃烧机的实验结果表明,该方法可用于预测NOx排放的有效性。

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