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Optimizing the performance of a fuel induced flue gas recirculation (FIR) system for low NO{sub}x boiler burner applications

机译:优化燃料诱导烟气再循环(FIR)系统的低NO {SUB} X锅炉燃烧器应用的性能

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New burner design technologies are using the momentum of fuel gas injection to entrain flue gas for the purpose of diluting the combustible mixture in order to reduce NO{sub}x emissions. Using an eductor, these designs entrain flue gas from above the convection section of a furnace stack and mix with the fuel downstream of the eductor. This diluted flue-gas/fuel mixture results in lower local adiabatic flame temperatures providing a reduction in NO{sub}x emissions. Test results show that NO{sub}x reduction performance is strongly dependent on the mass ratio of flue-gas to fuel. An entrainment mass ratio of flue-gas/fuel typically ranges between 2 to 3 pound flue-gas per pound fuel, leading to a NO{sub}x reduction of approximately 50 to 70 % for boiler burner applications. The flue gas entrainment performance is effected by pressure drop through the upstream and downstream FIR piping system. This paper describes optimization of an existing FIR system not meeting initial design performance. To improve the entrainment ratio several tools were used to re-design and optimize the FIR system. These tools included Computational Fluid Dynamics (CFD), semi-empirical modeling and cold flow test results. A detailed description and discussion of the results are presented.
机译:新的燃烧器设计技术正在使用燃料气体喷射的势头来纳入烟气,以稀释可燃混合物以减少{Sub} x排放。使用喷射器,这些设计从炉子堆叠的对流部分上方夹带烟道气,并与喷射器下游的燃料混合。这种稀释的烟道气/燃料混合物导致较低的局部绝热火焰温度,从而减少NO {次} x排放。测试结果表明,没有{Sub} x x降低性能强烈地取决于烟道气的质量比。烤烟 - 气/燃料的夹带质量比通常在每磅燃料2至3磅烟气之间的范围内,导致锅炉燃烧器应用的NO {Sub} x减少约50%至70%。烟道气夹带性能通过压力下降通过上游和下游冷杉管道系统实现。本文介绍了现有FIR系统的优化,不符合初始设计性能。为了提高夹带比率,使用多种工具来重新设计和优化FIR系统。这些工具包括计算流体动力学(CFD),半经验造型和冷流量测试结果。提出了对结果的详细描述和讨论。

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