Energies, Vol. 18, Pages 5609: Investigation of Ammonia-Coal Co-Combustion Performance and NOx Formation Mechanisms Under Varied Ammonia Injection Strategies
Energies, Vol. 18, Pages 5609: Investigation of Ammonia-Coal Co-Combustion Performance and NOx Formation Mechanisms Under Varied Ammonia Injection Strategies
Energies doi: 10.3390/en18215609
Authors:
Yuhang Xiao
Jie Cui
Honggang Pan
Liang Zhu
Benchuan Xu
Xiu Yang
Honglei Zhao
Shuo Yang
Yan Zhao
Manfred Wirsum
Youning Xu
In the context of carbon neutrality, ammonia-coal co-firing is considered an effective way to reduce emissions from coal-fired units. This paper takes a 125 MW tangential combustion boiler as the research object and combines CFD and CHEMKIN models to study the effects of ammonia injection position (L1–L3) and blending ratio (0–30%) on combustion characteristics and NO generation. The results indicate that L1 (same-layer premixed injection) can form a continuous and stable flame structure and maintain low NO emissions. L2 (fuel-staged configuration) shows the highest burnout rate and strong denitration potential under high mixing conditions, while L3 has an unstable flow field and the worst combustion structure. NO emissions show a typical “first rise and then fall” trend with the blending ratio. L1 performs optimally in the range of 15–20%, and L2 peaks at 20%. Mechanism analysis indicates that R430 is the main NO generation reaction, while R15 and R427 dominate the NO reduction process. The synergistic reaction between NHx free radicals and coke can effectively inhibit the formation of NO and improve combustion efficiency.
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