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660 MW 燃煤机组变负荷过程 SCR 脱硝性能研究

Translated title of the contribution: Study on SCR Denitrification Performance on 660 MW Coal-Fired Power Plant During Load-cycling Processes
  • Junjie Yin
  • , Ming Liu
  • , Qingyang Wu
  • , Hui Yan
  • , Junjie Yan
  • School of Energy and Power Engineering

Research output: Contribution to journalArticlepeer-review

Abstract

Coal-fired power generation produces nitrogen oxides (NOx) that are extremely harmful to the environment. Selective catalytic reduction (SCR) denitrification technology effectively reduces NOx emissions of coal-fired units. However, in the frequent load-cycling processes, it is difficult to accurately control the NH3 injection rate of SCR system, resulting in large fluctuation of NOx emission. In this paper, the dynamic simulation model of thermal system and SCR system model of coal-fired units are developed, and the denitrification performance in load-cycling processes are analyzed. It is found that the NOx emission in the load-lifting process of coal-fired units is lower than the set value of 45 mg·m3, and the average NOx emission concentration is 42.124 mg·m3. While in the load-shedding process, NOx emission is higher than the set value, which is 52.536 mg·m3, but NH3 escape is significantly lower than that in the load-lifting process. The study shows that in the transient process, the NH3 storage effect of SCR catalyst layer leads to the difference between the NOx reduction reaction rate and the transfer rates of heat and mass of fluegas, which results in the instability of denitrification performance in load-cycling processes. The research results provide a theoretical basis for the optimization of NH3 injection control logic of SCR system.

Translated title of the contributionStudy on SCR Denitrification Performance on 660 MW Coal-Fired Power Plant During Load-cycling Processes
Original languageChinese (Traditional)
Pages (from-to)1504-1511
Number of pages8
JournalKung Cheng Je Wu Li Hsueh Pao/Journal of Engineering Thermophysics
Volume47
Issue number5
StatePublished - May 2026
Externally publishedYes

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