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Modeling and optimization of processes for clean and efficient pulverized coal combustion in utility boilers

机译:公用锅炉中清洁高效粉煤燃烧过程的建模和优化

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Pulverized coal-fired power plants should provide higher efficiency of energy conversion, flexibility in terms of boiler loads and fuel characteristics and emission reduction of pollutants like nitrogen oxides. Modification of combustion process is a cost-effective technology for NOx control. For optimization of complex processes, such as turbulent reactive flow in coal-fired furnaces, mathematical modeling is regularly used. The NOx emission reduction by combustion modifications in the 350 MWe Kostolac B boiler furnace, tangentially fired by pulverized Serbian lignite, is investigated in the paper. Numerical experiments were done by an in-house developed three-dimensional differential comprehensive combustion code, with fuel- and thermal-NO formation/destruction reactions model. The code was developed to be easily used by engineering staff for process analysis in boiler units. A broad range of operating conditions was examined, such as fuel and preheated air distribution over the burners and tiers, operation mode of the burners, grinding fineness and quality of coal, boiler loads, cold air ingress, recirculation of flue gases, water-walls ash deposition and combined effect of different parameters. The predictions show that the NOx emission reduction of up to 30% can be achieved by a proper combustion organization in the case-study furnace, with the flame position control. Impact of combustion modifications on the boiler operation was evaluated by the boiler thermal calculations suggesting that the facility was to be controlled within narrow limits of operation parameters. Such a complex approach to pollutants control enables evaluating alternative solutions to achieve efficient and low emission operation of utility boiler units. [Projekat Ministarstva nauke Republike Srbije, br. TR-33018: Increase in energy and ecology efficiency of processes in pulverized coal-fired furnace and optimization of utility steam boiler air preheater by using in-house developed software tools].
机译:煤粉发电厂应提供更高的能量转换效率,锅炉负荷和燃料特性方面的灵活性以及减少氮氧化物等污染物的排放。改变燃烧过程是一种用于控制NOx的经济有效的技术。为了优化复杂的过程,例如燃煤炉中的湍流流动,通常使用数学模型。本文研究了在切碎的塞尔维亚褐煤切向燃烧的350 MWe Kostolac B锅炉炉中通过燃烧改性减少的NOx排放。通过内部开发的三维微分综合燃烧代码进行了数值实验,并建立了燃料-和热-NO形成/破坏反应模型。开发该代码是为了让工程人员可以轻松地在锅炉单元中进行过程分析。检查了广泛的运行条件,例如燃烧器和各层上的燃料和预热空气分配,燃烧器的运行方式,磨煤的细度和质量,锅炉负荷,冷空气进入,烟道气再循环,水冷壁灰分沉积和不同参数综合作用。预测表明,通过在案例研究炉中使用适当的燃烧机构并通过火焰位置控制,可以实现高达30%的NOx排放量减少。通过锅炉热计算评估燃烧对锅炉运行的影响,表明应在狭窄的运行参数范围内控制设施。这种复杂的污染物控制方法可以评估替代解决方案,以实现公用锅炉单元的高效和低排放运行。 [Projekat Ministarstva nauke Republike Srbije,br。 TR-33018:使用内部开发的软件工具,提高了粉煤燃烧炉过程的能源和生态效率,并优化了公用蒸汽锅炉空气预热器]。

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