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Investigation of particle radiation and its effect on NO prediction in a pilot-scale facility for both air and oxy-coal combustion

机译:在空气和氧气煤燃烧的中试规模设施中研究粒子辐射及其对NO预测的影响

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Radiation heat transfer plays an important role in pulverised coal combustion, influencing the overall combustion efficiency, pollutant formation and flame ignition and propagation. In this paper, the radiation properties of the particles as well as gas property models on the overall influence of the prediction of the formation of NOx pollutants in a pulverised coal combustion have been investigated. The non-grey weighted sum of grey gases (WSGG) model has been employed to calculate the radiation of the gas phase coupled with the radiation interaction from the particulate phase. The Mie theory, as well as constant or linear models, have been employed to describe the particle radiative properties. The prediction results, calculated from the data from a 250 kW pilot scale combustion test facility (CTF), are compared against experimental measurements under air-fired condition and a range of oxyfuel conditions. The results show that the choice of radiation solution can have a considerable impact on the radiative heat transfer results, in which the Mie theory shows a significant improvement in the incident wall heat flux compared to the constant or linear models. Also, the more accurate solution employed for radiation of gases and particles considerably improves the NOx prediction in the flame region.
机译:辐射传热在煤粉燃烧中起重要作用,影响整体燃烧效率,污染物形成以及火焰着火和扩散。本文研究了颗粒的辐射特性以及气体特性模型对煤粉燃烧过程中NOx污染物形成预测的总体影响。灰色气体的非灰色加权总和(WSGG)模型已用于计算气相的辐射以及颗粒相的辐射相互作用。米氏理论以及常数或线性模型已用于描述粒子的辐射特性。根据250 kW中试燃烧试验设备(CTF)的数据计算出的预测结果与在空燃条件和各种含氧燃料条件下的实验测量结果进行比较。结果表明,辐射解决方案的选择可能会对辐射传热结果产生重大影响,其中Mie理论显示出与恒定或线性模型相比,入射壁热通量显着改善。同样,用于气体和颗粒辐射的更精确解决方案大大改善了火焰区域的NOx预测。

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