首页> 外文期刊>E3S Web of Conferences >Hybrid technology of reduction of nitrogen oxides (NOx) in exhaust gases; Part 2 – Numerical model of pilot scale regenerative rotary air heater (RAH) retrofited with selective catalyst reduction (SCR) modules
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Hybrid technology of reduction of nitrogen oxides (NOx) in exhaust gases; Part 2 – Numerical model of pilot scale regenerative rotary air heater (RAH) retrofited with selective catalyst reduction (SCR) modules

机译:减少废气中氮氧化物(NOx)的混合技术;第2部分–装有选择性催化剂还原(SCR)模块的中试规模再生式旋转空气加热器(RAH)的数值模型

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This article exhibits the results of the analysis performed to verify the effectiveness of the hybrid flue gas denitrification system (herein referred to as HDS) which involved the retrofitting for selective catalytic reduction (SCR) material into a regenerative rotary air heater (RAH). A numerical model corresponding to the actual pilot scale RAH operating conditions was developed. The ultimate intent of the numerical model is to provide a platform where the technology can be implemented on full scale air preheaters. The numerical analysis performed on the pilot scale HDS installation showed a 3% decrease in heat exchange efficiency in the exchanger. This decrease was significantly minimized by the use of blades adjusting the distribution of flue gases entering the RAH. This means that the exhaust gas temperature at the exchanger outlet increased by 4°C, which corresponds to an average of 0.3% increase in the boiler outlet loss. It was also recognized that the air temperature was reduced by 8°C, which does not translate into significant changes in boiler performance parameters. other boiler operating parameters in a noticeable way during operation.
机译:本文展示了为验证混合烟道气脱硝系统(在本文中称为HDS)的有效性而进行的分析结果,该系统涉及将选择性催化还原(SCR)材料改造成再生式旋转空气加热器(RAH)。建立了与实际飞行员规模RAH操作条件相对应的数值模型。数值模型的最终目的是提供一个平台,在该平台上可以在全尺寸空气预热器上实施该技术。在中试规模的HDS装置上进行的数值分析表明,交换器中的热交换效率降低了3%。通过使用调节进入RAH的烟气分布的叶片,可以最大程度地减少这种下降。这意味着交换器出口处的废气温度升高了4°C,相当于锅炉出口损失平均增加了0.3%。还认识到,空气温度降低了8°C,但这并未转化为锅炉性能参数的重大变化。在运行过程中,其他锅炉的运行参数也很明显。

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